Restoration of MPTP-induced dopamine and tyrosine hydroxylase depletion in the mouse brain through ethanol and nicotine

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Ethanol and nicotine, alone or combined, restored dopamine and tyrosine hydroxylase levels depleted by MPTP in mouse brains, suggesting a potential therapeutic strategy for Parkinson's disease.

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The study examined whether acute intraperitoneal ethanol and/or nicotine could restore dopamine (DA), DA metabolites, and tyrosine hydroxylase (TH) disruption induced by MPTP in C57BL/6N male mice, sampling striatum and hippocampus 1 hour after treatment. MPTP-treated mice received saline, ethanol (1.0–3.0 g/kg), nicotine (0.5–2.0 mg/kg), or a combination, and outcomes were measured by HPLC–electrochemical detection for DA/DOPAC/3-MT/HVA and by Western blot for TH expression and TH Ser31 phosphorylation. Ethanol at 2.0 and 3.0 g/kg and nicotine at 1.0 and 2.0 mg/kg each increased DA, DOPAC, and HVA, along with TH expression and Ser31 phosphorylation, compared with the MPTP group, and the combination produced an additive increase. A key limitation explicitly noted is that this is a preprint and not yet peer reviewed, and the authors used an acute timepoint and an MPTP/PD model rather than directly assessing chronic outcomes. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Abstract Here, we investigate whether ethanol (EtOH) and nicotine (Nic) alone or in co-exposure can restore the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP)-induced depletion of dopamine (DA), DA metabolites, and tyrosine hydroxylase (TH) in the striatum and hippocampus of C57BL/6N mice. MPTP-treated mice were treated intraperitoneally with saline (control), EtOH (1.0–3.0 g/kg), Nic (0.5–2.0 mg/kg), or a combination of EtOH and Nic. Brain samples were collected 1 h after treatment. DA and its metabolites 3,4-dihydroxyphenylacetic acid (DOPAC), 3-methoxytyramine (3-MT), and homovanillic acid (HVA) were measured by HPLC-ECD, while TH expression and Ser31 phosphorylation were quantified by Western blot. EtOH (2.0 and 3.0 g/kg) alone reversed the effects of MPTP treatment in both studied brain regions, as evidenced by an increase in DA, DOPAC, and HVA contents, TH expression, and its phosphorylation at Ser31 compared to the MPTP group, indicating restorative effects on DA neurons in the MPTP model. Likewise, Nic (1.0 and 2.0 mg/kg) alone reversed MPTP treatment effects, with treated mice showing increased DA, DOPAC, and HVA contents, TH expression, and Ser31 phosphorylation compared to MPTP mice. Co-administration of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) further increased DA, DOPAC and HVA tissue contents, TH expression, and Ser31, indicating an additive effect. These results show that moderate to high doses of EtOH and Nic induce similar increases in brain DA and TH via TH phosphorylation activation in MPTP model mice. EtOH and Nic showed an additive effect in combination, suggesting that their co-application could be a potent therapeutic strategy for treating PD.
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Restoration of MPTP-induced dopamine and tyrosine hydroxylase depletion in the mouse brain through ethanol and nicotine | Research Square window.SnipcartSettings = { analytics: { enabled: false } }; (function() { var accessVector = localStorage.getItem('access_vector') || ''; window.dataLayer = window.dataLayer || []; if (accessVector) { window.dataLayer.push({ user: { profile: { profileInfo: { snid: accessVector } } } }); } })(); (function(w,d,s,l,i){w[l]=w[l]||[];w[l].push({'gtm.start':new Date().getTime(),event:'gtm.js'});var f=d.getElementsByTagName(s)[0],j=d.createElement(s),dl=l!='dataLayer'?'&l='+l:'';j.async=true;j.src='https://www.googletagmanager.com/gtm.js?id='+i+dl;f.parentNode.insertBefore(j,f);})(window,document,'script','dataLayer','GTM-K279D39R'); Browse Preprints In Review Journals COVID-19 Preprints AJE Video Bytes Research Tools Research Promotion AJE Professional Editing AJE Rubriq About Preprint Platform In Review Editorial Policies Our Team Advisory Board Help Center Sign In Submit a Preprint Cite Share Download PDF Research Article Restoration of MPTP-induced dopamine and tyrosine hydroxylase depletion in the mouse brain through ethanol and nicotine Mostofa Jamal, Sella Takei, Ikuko Tsukamoto, Takanori Miki, Ken-Ichi Ohta, and 2 more This is a preprint; it has not been peer reviewed by a journal. https://doi.org/ 10.21203/rs.3.rs-4097975/v1 This work is licensed under a CC BY 4.0 License Status: Published Journal Publication published 12 Feb, 2025 Read the published version in Neurotoxicity Research → Version 1 posted 9 You are reading this latest preprint version Abstract Here, we investigate whether ethanol (EtOH) and nicotine (Nic) alone or in co-exposure can restore the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP)-induced depletion of dopamine (DA), DA metabolites, and tyrosine hydroxylase (TH) in the striatum and hippocampus of C57BL/6N mice. MPTP-treated mice were treated intraperitoneally with saline (control), EtOH (1.0–3.0 g/kg), Nic (0.5–2.0 mg/kg), or a combination of EtOH and Nic. Brain samples were collected 1 h after treatment. DA and its metabolites 3,4-dihydroxyphenylacetic acid (DOPAC), 3-methoxytyramine (3-MT), and homovanillic acid (HVA) were measured by HPLC-ECD, while TH expression and Ser31 phosphorylation were quantified by Western blot. EtOH (2.0 and 3.0 g/kg) alone reversed the effects of MPTP treatment in both studied brain regions, as evidenced by an increase in DA, DOPAC, and HVA contents, TH expression, and its phosphorylation at Ser31 compared to the MPTP group, indicating restorative effects on DA neurons in the MPTP model. Likewise, Nic (1.0 and 2.0 mg/kg) alone reversed MPTP treatment effects, with treated mice showing increased DA, DOPAC, and HVA contents, TH expression, and Ser31 phosphorylation compared to MPTP mice. Co-administration of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) further increased DA, DOPAC and HVA tissue contents, TH expression, and Ser31, indicating an additive effect. These results show that moderate to high doses of EtOH and Nic induce similar increases in brain DA and TH via TH phosphorylation activation in MPTP model mice. EtOH and Nic showed an additive effect in combination, suggesting that their co-application could be a potent therapeutic strategy for treating PD. Ethanol Nicotine MPTP Dopaminergic function Mouse brain Figures Figure 1 Figure 2 Figure 3 Figure 4 Figure 5 Figure 6 Figure 7 Figure 8 Figure 9 Introduction Parkinson’s disease (PD) is the most prevalent chronic neurodegenerative disorder, resulting from the progressive loss of dopaminergic neurons in the midbrain substantia nigra (German et al., 1992 ; Vaillancourt and Mitchell, 2020 ). 1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) is a neurotoxin used for generating PD in animal models. MPTP causes damage to the nigrostriatal dopaminergic neurons, inducing PD-like symptoms in rodents (Heikkila et al., 1985 ; Yokoyama et al., 2011 ; Kinoshita et al., 2015 ). Peripherally administered MPTP enters the brain, which converts to the toxic metabolite 1-methyl-4-phenylpyridinium (MPP + ). MPP + is taken up into dopamine (DA) neurons by DA transporters and inhibits mitochondrial complex I, leading to dopaminergic neuronal damage (Moore et al., 2005 ; Meredith and Rademacher, 2011). The MPTP mouse model, particularly the C57BL/6 strain, has been widely accepted as the most used model of PD (Heikkila and Sonsalla, 1987 ; Bhaduri et al., 2018 ; Mustapha and Mat Taib, 2021 ). Ethanol (EtOH) is one of the most widely used chemicals in the world. It primarily acts as a depressant to the central nervous system (CNS) at higher doses but can also act as a stimulant at lower doses (Gulick and Gould, 2007 ). EtOH affects multiple neurotransmitter systems, including γ-aminobutyric acid, glutamate, endogenous opioids, acetylcholine, and DA (Vengeliene et al., 2008 ), which can lead to changes in memory, attention, and locomotion (Silvers et al., 2003 ; Mira et al., 2019 ; Wang et al., 2020 ). Among the various neurotransmitter systems involved in the pharmacological effects of EtOH, DA has received considerable attention due to its potential role in the motivational effects of EtOH (McBride et al., 1991 ; Engel et al., 1992 ; Brabant et al., 2014 ). EtOH induces DA synthesis in the animal brain (Siciliano al., 2017), primarily by activating tyrosine hydroxylase (TH) (Tran et al., 2017 ). Studies have shown that systemic EtOH (0.75–2.25 g/kg) administration increases extracellular DA in the animal brain (Tang et al., 2003 ; Melendez et al., 2003 ). Similarly, direct perfusion of a high concentration of EtOH (500 or 860 mM) in the striatum increases extracellular levels of DA in vivo in rats (Yim et al., 1997 ) and mice (Jamal et al., 2016 ). Our recent study found that a high concentration of EtOH (3.0 g/kg) could enhance DA metabolism in the mouse brain, as evidenced by an increase in 4-dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA) (Jamal et al., 2022 ). Studies have shown that in humans, chronic low-to-moderate alcohol consumption is associated with a lower risk of PD (Liu et al., 2013 ; Zhang et al., 2014 ), while higher alcohol consumption is correlated with an increased risk of PD (Liu et al., 2013 ). Therefore, determining whether low to moderate or high doses of EtOH in an acute exposure model can restore DA function in the brains of MPTP-treated mice, which serves as an animal model of PD, is of interest. Nicotine (Nic) is a widely used psychoactive drug often consumed in combination with other substances, such as EtOH. Nic can produce various CNS effects in both humans and animals (Ksir, 1994 ; Le Foll and Goldberg, 2009 ). The central effects of Nic are mediated by changes in the release of neurotransmitters, including DA (Toth et al., 1992 ; Barazangi and Role, 2001 ). Many studies have shown that Nic stimulates extracellular levels of DA, particularly in the nucleus accumbens (Mifsud et al., 1989 ; Kleijn et al., 2011 ), and enhances DA turnover and metabolism in the animal brain (Andersson et al., 1981 ; Haikala et al., 1986 ; Brazell et al., 1990 ). Nic has also been shown to increase TH levels (Carr et al., 1989 ; Mitchell et al., 1993 ; Hiremagalur et al., 1993 ) and DA release (Turner, 2004 ; Kleijn et al., 2011 ). A large body of experimental data supports the neuroprotective effects of Nic in PD models (Quik et al., 2006 ; Cai et al., 2017; Nicholatos et al., 2018 ). For example, Nic prevents MPTP-induced loss of striatal dopaminergic neurons and attenuates behavioral deficits (Yang et al., 2019 ; Cai et al., 2017). Recently, Nic was found to improve MPTP-induced motor impairment and neuroapoptosis and enhance TH activity in the substantia nigra and striatal regions of PD mice (Ruan et al., 2023 ). There is strong and consistent evidence that Nic is associated with a decreased risk of PD (Hernan et al., 2002 ; Li et al., 2015 ). However, the relationship between EtOH intake and PD remains controversial. Epidemiological studies have reported that EtOH is inversely associated with PD (Zhang et al., 2014 ; Jimenez-Jimenez et al., 2019 ). Therefore, in addition to Nic, we conducted a study on EtOH to determine its association with PD in mice. EtOH and Nic are the two most commonly abused substances, and many people use them together. Combined exposure to EtOH and Nic has been shown to increase ventral tegmental DA neurons firing both in vitro (Clark and Little, 2004 ) and in vivo (Tolu et al., 2017 ) and enhance the release of DA in the nucleus accumbens compared to either drug alone (Tizabi et al., 2002 , 2007 ). This suggests that the effects of EtOH and Nic may be additive when used together. Therefore, this study aimed to investigate whether administrating EtOH and Nic alone or in combination in mice could protect against MPTP-induced DA loss, a toxin known to induce PD in humans. The rationale for considering EtOH and Nic is based on previous findings that suggest mutual reinforcement between the two drugs (Larsson and Engel, 2004 ) despite their different mechanisms of action and effects. However, no reports have examined the effects of combining EtOH and Nic in animal PD models, and the mechanisms underlying their effects, as well as whether the combination has a higher effect than either drug alone, have yet to be reported. To address this, we used an MPTP-induced PD mouse model to measure DA and its metabolites DOPAC, 3-methoxytyramine (3-MT), and HVA as well as TH and its phosphorylation at Ser31 in the striatum and hippocampus of C57BL/6N mice. The striatum, which receives dense dopaminergi c projections, is a crucial region of the dopaminergic system. DA in the hippocampus plays a vital role in hippocampus-dependent learning and memory (Broussard et al., 2016; Bakhtiarzadeh et al., 2023 ). Therefore, the depletion of hippocampal DA is likely to contribute to a deficit in long-term potentiation in PD models (Zhu et al., 2012 ). To reverse the deficits in DA release and TH phosphorylation induced by MPTP, we administered EtOH and Nic alone or in combination to the mice via intraperitoneal (IP) injection. DA and its metabolites were simultaneously analyzed using high-performance liquid chromatography coupled to electrochemical detection (HPLC–ECD), and TH and Ser31 phosphorylation were measured by western blotting. We hypothesized that the co-administration of EtOH and Nic would provide better protection in MPTP-treated mice than each compound alone. Materials and Methods Animals C57BL/6N mice were purchased from Japan SLC Inc. (Hamamatsu, Shizuoka). Mice were housed in groups of 4 and kept at 23 ± 1°C with 12 h of light exposure (06:00–18:00) per day. All experiments were conducted with male mice. Each mouse was 10–12 weeks in age and weighed 23–26 g. All the animal experiments were approved by the Institutional Animal Care and Use Committee of Kagawa University, Japan. All animal experiments should be carried out in accordance with the U.K. Animals (Scientific Procedures) Act, 1986 and associated guidelines, EU Directive 2010/63/EU for animal experiments and the National Research Council's Guide for the Care and Use of Laboratory Animals. Besides, all procedures performed in the study involving animals were in compliance with the ARRIVE guidelines. MPTP injection Mice were randomly assigned to the A. vehicle group (n = 6) or B. MPTP group (MPTP hydrochloride, Sigma-Aldrich, St. Louis, MO, USA). The vehicle group received an equal volume of 0.9% sodium chloride. The mice in the MPTP group received MPTP (20 mg/kg in saline, IP) injections twice a day with a 1 h interval for two consecutive days, resulting in a total dose of 80 mg/kg per mouse. The MPTP dosing regimen was chosen based on a previous report, with a slight modification (Sonsalla and Heikkila, 1986 ). Mice remained in cages with free access to food and water. The lesions were allowed to stabilize for 7 days before the mice were subjected to an EtOH or Nic injection. All procedures involving MPTP were conducted in strict accordance with published safety and handling guidelines (Jackson-Lewis and Przedborski, 2007 ). Open field activity The open field activity (OFA) was performed on day 1 before the first vehicle and MPTP injection and on days 3, 5, and 8 after the first vehicle and MPTP treatment. The open field task was conducted in a square Plexiglas box (dimensions: 31 cm length, 29 cm width, 30 cm height), enclosed by white paper. The mouse was placed in the center of the testing chamber and allowed to move freely for 10 min for adaptation, followed by a 10-min recording period. The movements were recorded using an overhead video tracking system and stored on a computer. After the experiment, computer-tracking programs were used to analyze the total distance traveled and velocity over time. The apparatus was cleaned with a cotton pad soaked in 10% EtOH after each 10-min session and dried between each test to eliminate odor trails. Experimental groups The MPTP-treated mice were divided into eight groups, with six mice in each group (n = 6/group). The groups were as follows: a) saline, b) EtOH at 1.0 g/kg (20% w/v), c) EtOH at 2.0 g/kg, d) EtOH at 3.0 g/kg, e) Nic at 0.5 mg/kg (freebase), f) Nic at 1.0 mg/kg, g) Nic at 2.0 mg/kg, and h) EtOH at 2.0 g/kg + Nic 1.0 mg/kg. All injections were administered via IP on day 8 after the first injection of MPTP. Mice were euthanized 1 h after injection. The doses of Nic and EtOH were adjusted based on the results of previous work (Gubner and Phillips, 2015 ; Jamal et al., 2022 ). EtOH was administered at a concentration that produced physiologically relevant blood concentrations, reaching approximately 8 to 40 mM at 60 min in the EtOH 1.0 to 4.0 g/kg groups, respectively (Jamal et al., 2016 ). EtOH and Nic hydrogen tartrate (Sigma-Aldrich Corp., St. Louis, MO, USA) was dissolved in physiological saline for all experiments. Brain tissue preparation Brains were removed and rinsed with ice-cold isotonic saline. One half of the striatum and hippocampus was placed in a 2-ml tube for ex vivo analysis of DA and its metabolites using HPLC-ECD, and the other half was placed in another 2-ml tube for protein analysis. The tubes were stored at − 80°C until use. Ex vivo HPLC-ECD The tissue samples were homogenized using a Polytron® homogenizer (Kinematica AG, Lucerne, Switzerland) in 0.2 M perchloric acid (10 µl/mg of tissue), which included 100 µM EDTA-2Na and 1 ng/µl (10 ul) isoproterenol (Tokyo Company Industry Ltd, Japan) as an internal standard (IS). The samples were kept on ice for 30 min and then centrifuged at 15,000 x g at 4°C for 15 min. The supernatants were filtered through 0.45 µm Minisart sterile filters (Sartorius Stedim Biotech GmbH, Germany) and mixed with 1 M Na-acetate to adjust the pH to 3.0. 10 µL of the resulting solution was injected into the HPLC-ECD to determine the levels of DA and its metabolites DOPAC, 3-MT and HVA. To determine the ex vivo concentrations of DA and its metabolites in the brain, we used an HPLC system equipped with an ECD-300 (Eicom, Japan). The main operative conditions for HPLC were as follows: column (EicompaK SC-5ODS; 3.0 mm × 150 mm), oven temperature of 25°C, detector, oxidation potential (+ 750 mV versus Ag/AgCl reference analytical electrode), mobile phase: 83% citrate-acetate buffer (pH 3.5) containing 17% methanol, 190 mg/l sodium octane sulfonate and 5 mg/l EDTA-2Na at a flow rate of 0.23 ml/min. The samples were analyzed for 30 min. The chromatograms were recorded using PowerChrom software version 2.5 (eDAQ Pty Ltd., Densitone East, Australia). Stock standard solutions of 1.0 ng/µl DA and its metabolites were purchased from Eicom (Japan) and stored at 4°C until use. Western blotting The other half of the striatum and hippocampus were homogenized using a Polytron® homogenizer in 0.4 ml of RIPA lysis buffer (Santa Cruz Biotechnology, Inc., Dallas, TX, USA). Added phenylmethylsulfonyl fluoride, sodium orthovanadate, and protease inhibitor cocktail (4 µl each; Santa Cruz Biotechnology, Inc.) to each tube. After centrifugation at 10,000 × g at 4°C for 10 min, the supernatant was used for Western blot analysis. The protein content of the supernatant was determined using the Bradford assay with bovine serum albumin as the standard (Bio-Rad Laboratories, Inc., Hercules, CA, USA). Samples were subjected to 10% sodium dodecyl sulfate-polyacrylamide gel electrophoresis with molecular weight markers (Bio-Rad Laboratories, Inc.), and then transferred to polyvinylidene difluoride membranes. The membrane was blocked overnight with 5% skim milk in phosphate-buffered saline at 4°C and then incubated with the following primary antibodies: rabbit anti-TH (1:4000; Cell Signaling Technology, #2792), rabbit anti-phospho-Ser31 (1:1000; Cell Signaling, #3370), and mouse anti-β-actin (1:2000; Wako Pure Chemical Industries, Ltd., Osaka, Japan). The membrane was then incubated with corresponding horseradish peroxidase-linked secondary antibodies. Band intensities were evaluated using an ImageQuant LAS-4000 chemiluminescent imager (GE Healthcare, Tokyo, Japan). The relative protein expressions were normalized to those of β-actin in each sample. Statistical analysis Data were expressed as the mean ± SEM. Statistical analyses were performed by using a one-way analysis of variance (ANOVA) followed by a post hoc Tukey–Kramer test. The Student’s t -test was used to compare the MPTP and vehicle groups. The significance level for the post hoc tests was set at P < 0.05. All analyses were conducted using GraphPad Prism software version 5.0 (GraphPad, La Jolla, CA, USA). P values less than 0.05 were considered statistically significant. The percentage change from the vehicle was calculated using the formula: (vehicle – MPTP) / vehicle × 100. The percentage change from MPTP was calculated using the formula: (MPTP − treated) / MPTP × 100. Results Effects of MPTP on locomotion, body weight, and mortality The OFA test evaluated spontaneous motor activity in a novel environment. No notable differences in OFA were found between mice treated with MPTP and those treated with a vehicle (MPTP-free) on days 3, 5, and 8, as shown in Fig. 1 A–B. Therefore, the MPTP-treated mice exhibited motor behavior similar to the vehicle group. No motor behavioral measures were performed in mice subjected to similar MPTP and drug treatments. Body weights were measured before MPTP treatment and on day 7 after initiation of MPTP treatment. No considerable difference in body weight was observed between MPTP and vehicle mice on day 7 after MPTP treatment, as shown in Table 1A. These findings are consistent with a previous study that demonstrated that subacute administration of MPTP (30 mg/kg) had no significant effect on mouse weight or motor impairments in the OFA test (Zhang et al., 2017 ). MPTP-treated mice had a mortality rate of 9.3%, as shown in Table 1B. Effects of MPTP on striatal DA and its metabolites, TH and Ser31 Ex vivo analyses (Fig. 2 A) revealed a significant decrease in the levels of DA (by 82.5%, p < 0.001, t -test) and its metabolites DOPAC (by 70.4%, p < 0.001), 3-MT (by 45.7%, p < 0.001) and HVA (by 68.1%, p < 0.001) in mice treated with MPTP compared to those in the vehicle-treated mice. Western blotting was performed to measure the protein levels of TH and Ser31 in MPTP-treated mice (Fig. 2 B). Consistent with the changes in DA and its metabolites, MPTP intoxication considerably reduced TH (by 26.9%, p < 0.001, t -test) and Ser31 (by 54.9%, p < 0.001) expression levels compared to those in the vehicle-treated mice. Effects of MPTP on hippocampal DA and its metabolites, TH and Ser31 Ex vivo analyses (Fig. 3 A) revealed that MPTP treatment resulted in a significant decrease in the levels of DA (by 27.7%, p < 0.001, t -test) and its metabolite HVA (by 42.8%, p < 0.001) compared to those treated with the vehicle, in which a trace to no detection of DOPAC and 3-MT was observed. Western blotting was performed to measure the protein levels of TH and Ser31 (Fig. 3 B). The results showed a significant reduction in TH (41.9%, p < 0.001, t -test) levels in MPTP-treated mice compared to those in the vehicle-treated mice. Similarly, the protein levels of Ser31 (53.1%, p < 0.001) significantly decreased in MPTP-treated mice compared to those in the vehicle-treated mice. EtOH ameliorated the MPTP-induced striatal deficits in DA and its metabolites, TH and Ser31 As shown in Fig. 4 A, administration of EtOH at 2.0 and 3.0 g/kg significantly attenuated the MPTP-induced depletion of ex vivo DA [F(3,18) = 10.979, by 139.4%, p = 0.006, EtOH 2.0 g/kg; by 158.7%, p = 0.001, EtOH 3.0 g/kg, one-way ANOVA], DOPAC [F(3,18) = 13.940, by 135.4%, p = 0.015, EtOH 2.0 g/kg; by 167.5%, p < 0.001, EtOH 3.0 g/kg], and HVA [F(3,18) = 22.248, by 115.9%, p = 0.002, EtOH 2.0 g/kg; by 137.6%, p < 0.001, EtOH 3.0 g/kg] compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on DA (p = 0.940), DOPAC (p = 0.740) or HVA (p = 0.523). We next used western blotting to test the change in TH (Fig. 4 B) and Ser31 (Fig. 4 C) after EtOH administration in MPTP-treated mice. EtOH administration significantly restored the MPTP-induced depletion of TH [F(3,18) = 40.110, by 134.2%, p < 0.001, EtOH 2.0 g/kg; 271.1%, p < 0.001, EtOH 3.0 g/kg, one-way ANOVA] and Ser31 [F(3,18) = 38.405, 27.9%, p < 0.001, EtOH 2.0 g/kg; 50.4%, p < 0.001, EtOH 3.0 g/kg] expression compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on TH (p = 0.994) or Ser31 (p = 0.197) expression. EtOH ameliorated the MPTP-induced hippocampal deficits in DA and its metabolites, TH and Ser31 As shown in Fig. 5 A, EtOH at 2.0 and 3.0 g/kg significantly reduced the MPTP-induced decrease in the levels of ex vivo DA [F(3,18) = 12.389, by 59.3%, p = 0.014, EtOH 2.0 g/kg; by 90.1%, p < 0.001, EtOH 3.0 g/kg, one-way ANOVA] and HVA [F(3,18) = 41.442, by 37.1%, p = 0.036, EtOH 2.0 g/kg; by 107.5%, p < 0.001, EtOH 3.0 g/kg] compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on DA (p = 0.947) or HVA (p = 0.280). We next used western blotting to test the change in TH (Fig. 5 B) and Ser31 (Fig. 5 C) after EtOH administration in MPTP-treated mice. EtOH administration significantly restored the MPTP-induced impairment in TH [F(3,18) = 11.739, 58.6%, p = 0.002, EtOH 2.0 g/kg; 85.6%, p < 0.001, EtOH 3.0 g/kg, one-way ANOVA] and Ser31 [F(3,18) = 27.669, 63.9%, p < 0.001, EtOH 2.0 g/kg; 91.3%, p < 0.001, EtOH 3.0 g/kg] expression. EtOH at 1.0 g/kg had no significant effect on TH (p = 0.277) or Ser31 (p = 0.692) expression. Nic ameliorated the MPTP-induced striatal deficits of DA and its metabolites, TH and Ser31 Ex vivo analysis (Fig. 6 A) showed that Nic treatment at doses of 1.0 and 2.0 mg/kg significantly attenuated the MPTP-induced decline of DA [F(3,17) = 8.010, by 99.2%, p = 0.046, Nic 1.0 mg/kg; by 145.3%, p = 0.017, Nic 2.0 mg/kg], DOPAC [F(3,17) = 14.469, by 106.6%, p < 0.001, Nic 1.0 mg/kg; by 121.8%, p < 0.001, Nic 2.0 mg/kg], and HVA [F(3,17) = 9.692, by 88.1%, p = 0.044, Nic 1.0 mg/kg; by 133.9%, p = 0.001, Nic 2.0 mg/kg] contents compared to those in the MPTP group. We next used western blotting to test the change in TH (Fig. 6 B) and Ser31 (Fig. 6 C) protein levels after Nic administration in MPTP-treated mice. Nic administration significantly restored the MPTP-induced suppression of TH [F(3,17) = 17.325, 80.3%, p = 0.002, Nic1.0 mg/kg; 119.9%, p < 0.001, Nic 2.0 mg/kg, one-way ANOVA] and Ser31 [F(3,17) = 12.963, 23.1%, p = 0.388, Nic 1.0 mg/kg; 61.4%, p < 0.001, Nic 2.0 mg/kg] expression compared to those in the MPTP group. Nic at a dose of 0.5 mg/kg did not alter the expression of either TH (p = 0.959) or Ser31 (p = 0.319). Nic ameliorated the MPTP-induced hippocampal deficits of DA and its metabolites, TH and Ser31 Ex vivo analyses (Fig. 7 A) showed that Nic treatment at doses of 1.0 and 2.0 mg/kg significantly reduced the MPTP-induced depletion of DA [F(3,17) = 8.338, by 63.3%, p = 0.048, Nic 1.0 mg/kg; by 98.7%, p = 0.001, Nic 2.0 mg/kg, one-way ANOVA) and HVA [ (3,17) = 8.547, by 31.3%, p = 0.049, Nic 1.0 mg/kg; by 42.4%, p = 0.045, Nic 2.0 mg/kg] tissue contents compared to those in the MPTP group. Neither EtOH nor Nic dose altered the 3-MT content in either studied brain region. We examined the changes in TH (Fig. 7 B) and Ser31 (Fig. 7 C) protein levels after Nic administration in MPTP-treated mice via western blotting. Nic administration consistently restored the MPTP-induced suppression of TH [F(3,18) = 15.585, 72.8%, p < 0.001, Nic 1.0 mg/kg; 97.2%, p < 0.001, Nic 2.0 mg/kg, one-way ANOVA] and Ser31 [F(3,18) = 15.712, 61.4%, p < 0.001, Nic1.0 mg/kg; 89.9%, p < 0.001, Nic 2.0 mg/kg] expression compared to those in the MPTP group. Nic at a dose of 0.5 mg/kg did not alter the expression of either TH (p = 0.334) or Ser31 (p = 0.832). EtOH and Nic combination further ameliorated the MPTP-induced deficits of striatal DA and its metabolites, TH and Ser31 Ex vivo analysis (Fig. 8 A) showed that the combination of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) produced a significant increase in DA [F(3,16) = 24.664, by 25.6%, p = 0.048 vs EtOH 2.0 g/kg, one-way ANOVA; by 51.1%, p = 0.003 vs Nic 1.0 mg/kg], DOPAC [F(3,16) = 16.644, by 51.2%, p = 0.021 vs EtOH 2.0 g/kg; by 72.2%, p = 0.004 vs Nic 1.0 mg/kg], and HVA [F(3,16) = 33.799, 21.4%, p = 0.049 vs EtOH 2.0 g/kg; by 39.5%, p = 0.002 vs Nic 1.0 mg/kg] tissue contents compared to EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone. Western blotting was performed to measure the expression levels of TH (Fig. 8 B) and Ser31 (Fig. 8 C) in the combined EtOH + Nic group. Similarly, EtOH and Nic led to a significant increase in TH expression [F(3,18) = 10.597, by 45.8%, p = 0.048 vs EtOH 2.0 g/kg; by 89.4%, p = 0.004 vs Nic 1.0 mg/kg, one-way ANOVA] and Ser31 phosphorylation [F(3,18) = 74.627, by 93.5%, p < 0.001 vs EtOH 2.0 g/kg; by 101.2%, p < 0.001 vs Nic 1.0 mg/kg]. EtOH and Nic combination further ameliorated the MPTP-induced deficits of hippocampal DA and its metabolites, TH and Ser31 Ex vivo analysis (Fig. 9 A) showed that the combination of the two treatments (EtOH, 2.0 g/kg + Nic, 1.0 mg/kg) resulted in a significant increase in DA [F(3,18) = 20.013, by 46.1%, p = 0.006 vs EtOH 2.0 g/kg; by 42.5%, p = 0.002 vs Nic 1.0 mg/kg, one-way ANOVA] and HVA [F(3,18) = 8.480, 54.6%, p = 0.049 vs EtOH 2.0 g/kg; by 61.3%, p = 0.045 vs Nic 1.0 mg/kg] tissue contents compared to EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone. Western blotting was performed to measure the expression levels of TH (Fig. 9 B) and Ser31 (Fig. 9 C) in the combined EtOH + Nic group. Similarly, the combination significantly increased the levels of TH [F(3,18) = 116.087, by 92.3%, p < 0.001 vs EtOH 2.0 g/kg; by 76.5%, p < 0.001 vs Nic 1.0 mg/kg, one-way ANOVA] and Ser31 [F(3,18) = 43.100, by 51.7%, p < 0.001 vs EtOH 2.0 g/kg; by 54.8%, p < 0.001 vs Nic 1.0 mg/kg]. Clearly, these findings show that EtOH and Nic modulate the MPTP-induced deficit of dopaminergic function in combination, suggesting further attenuation in these parameters. Discussion We used mice that were administered MPTP as a sub-acute model to investigate whether EtOH and Nic alone or in combination could restore the depletion of dopaminergic function caused by MPTP in the striatum and hippocampus. To accomplish this, we evaluated several measures, such as DA, DOPAC, 3-MT, HVA, TH, and Ser31 phosphorylation, confirming the effects of EtOH and/or Nic in counteracting the dramatic reduction of brain dopaminergic function after MPTP treatment. We found that MPTP decreased DA, DOPAC, 3-MT, and HVA, and the expression of the DA-synthesizing enzyme TH in both the striatum and hippocampus. However, treatment with EtOH (2.0 or 3.0 g/kg) or Nic (1.0 or 2.0 mg/kg) alone noticeably reversed this effect, as evidenced by increased DA and its metabolite (DOPAC and HVA) tissue contents. Western blotting further supported this result, showing that EtOH and Nic alone increased TH expression and Ser31 phosphorylation. The EtOH- or Nic-induced increase in the levels of DOPAC and HVA indicated that part of the DA was further metabolized to DOPAC and HVA. Notably, combined treatment with EtOH (2.0 g/kg) and Nic (1.0 mg/kg) showed a significant increase in DA, DOPAC, and HVA tissue contents accompanied by an increase in TH expression and Ser31 phosphorylation. This increase was greater when EtOH and Nic were administered concurrently than when these drugs were administered separately. Neither EtOH at 1.0 g/kg nor Nic at 0.5 mg/kg altered any of the dopaminergic parameters studied in the MPTP-treated mice, suggesting that these concentrations are insufficient to restore DA neurons. None of these treatments modified the 3-MT level in either brain region examined. Our findings indicate that EtOH and Nic alone preserve dopaminergic function and TH expression that were lost with MPTP treatment. Notably, the combination treatment resulted in an additive increase, suggesting that the co-application of EtOH and Nic has potential as a treatment strategy to restore dopaminergic function in PD. Mice that received MPTP (cumulative dose; 80 mg/kg of MPTP) exhibited a significant reduction in the levels of DA and its metabolites. In particular, DA levels in the striatum decreased by 82.5% (Fig. 2 A) and in the hippocampus by 27.7% (Fig. 3 A), which aligns with a previous study of MPTP-treated mice (Itzhak et al., 1999 ). In addition, MPTP caused a decrease in TH protein expression, with a 26.9% reduction in the striatum (Fig. 2 B) and a 41.9% reduction in the hippocampus (Fig. 3 B), consistent with previous studies on MPTP-induced PD mice (von Bohlen und Halbach et al., 2005; Alam et al., 2017 ). In addition to DA depletion, the neurotoxic effect of MPTP on motor activity depends on several factors, including the administration route, the MPTP dose, sex, and strain (Sedelis et al., 2001 ). Mice treated with MPTP did not show any motor activity deficits on days 3, 5, and 8 after MPTP treatment in the open field box (Fig. 1 B). One possible explanation could be that, in these cases, testing was performed when functional recovery might have already occurred. Interestingly, some reports have indicated that MPTP-treated mice continue to exhibit reduced locomotion and rearing activity even weeks later (Arai et al., 1990 ; Fornai et al., 2005 ). However, many other studies have shown no changes in locomotion or even increased activity in MPTP-treated mice (Willis et al., 1987; Chia et al., 1996 ; Itzhak et al., 1999 ; Zhang et al., 2017 ), which supports our findings. Therefore, it is reasonable to suggest that a loss of 82.5% DA alone cannot result in PD-like motor deficits in mice. This is supported by a previous study demonstrating that MPTP-induced motor deficits require a loss of DA and a concurrent loss of norepinephrine (Rommelfanger et al., 2007 ). Furthermore, another study has indicated that serotonin helps regulate motor activity (Mitra et al., 1992 ). In this study, EtOH and Nic were administered on day 8 after development of striatal and hippocampal damage that MPTP caused. This regimen was chosen to investigate whether EtOH and Nic could contribute to the reduced PD incidence. We tested three different doses of EtOH (1.0–3.0 g/kg) and Nic (0.5–2.0 mg/kg) alone or in combination with DA and its metabolites and TH as a new entity in MPTP-treated mice. First, we examined the individual effects of EtOH and Nic and found that combining them had advantages, which led us to test EtOH and Nic combined. With the current dosing schedule of EtOH and Nic, there was a potential restoration of dopaminergic function in the striatum and hippocampus, as both drugs improved function after an injury caused by MPTP. The neurotoxic effects of MPTP likely caused this damage. Previously, we and other researchers showed that EtOH and Nic alone could increase DA and its metabolites, DOPAC and HVA in the animal brain (Haikala et al., 1986 ; Brazell, et al., 1990 ; Saeed Dar and Wooles, 1984 ; Jamal et al., 2022 ; Yim et al., 1997 ). There is abundant evidence to demonstrate the rewarding and reinforcing properties of Nic (Xue et al., 2020 ; Chellian et al., 2021 ), which are mediated, in part, by its effects on mesolimbic DA neurons (Sun and Laviolette, 2014 ; Kleijn et al., 2011 ). EtOH can potentiate some of the rewarding and behavioral effects of Nic in humans and animals (Rose et al., 2004 ; Meck, 2007 ). Similarly, Nic can enhance the reinforcing and DA-activating properties of EtOH (Söderpalm et al., 2000 ). EtOH and Nic modify the activity of dopaminergic neurons in the ventral tegmental area, potentially leading to increased DA release in the nucleus accumbens and affecting the reward system (Morel et al., 2018). The fact that both EtOH and Nic target similar neurotransmitter systems suggests the possibility of synergistic interactions between the two substances (Tizabi et al., 2007 ; Truitt et al., 2015 ). Consistent with this hypothesis, the combination of EtOH and Nic can result in heightened reward and neuroadaptation (Gubner and Phillips, 2015 ; Waeiss et al., 2020 ). Therefore, the combined application of EtOH and Nic is of particular interest because, despite their increasing use, there is limited information on the effects of combining these substances in PD models. This paper provides evidence that the combination of EtOH and Nic can have better restorative effects by preserving DA function in mice treated with MPTP. The findings reported here highlight three novel observations. First, MPTP-treated mice that received EtOH (2.0 or 3.0 g/kg) treatment showed increased levels of DA and its metabolites DOPAC and HVA in the striatum and hippocampus compared to those in the MPTP group (Fig. 4 , 5 A). Similarly, EtOH at doses of 2.0 and 3.0 g/kg increased the expression of TH and Ser31 phosphorylation in the brain regions studied in MPTP-treated mice (Fig. 4 , 5 B-C). Notably, increased availability of TH might lead to higher levels of DA in specific brain regions. Thus, an EtOH-induced increase in DA and its metabolites might result from increased expression and phosphorylation of TH. Several reports, including ours, have shown that EtOH significantly increases DA and its metabolites in the brains of mice and Zebrafish (Chatterjee et al., 2014 ; Saeed Dar and Wooles, 1984 ; Jamal et al., 2022 ). Furthermore, EtOH increased TH protein and activity in mammals, including mice (Baizer et al. 1981 ) and rats (Masserano et al., 1983 ). Even high concentrations of EtOH (25–200 mM) can enhance TH protein and mRNA expression in the N1E-115 neuronal cell line in vitro (Gayer et al., 1991 ). Based on these findings, we suggest that the EtOH-induced increase in DA may occur through increased TH activity via an increase in TH protein expression and TH phosphorylation (Tran et al., 2017 ). This study is the first to report the effects of EtOH in MPTP-treated mice, and these findings provide substantial evidence that EtOH at medium to high doses (2.0 or 3.0 g/kg) has restorative effects on the loss of striatal and hippocampal DA and TH caused by MPTP. Evidence indicates that prolonged and excessive consumption of EtOH contributes to various neurodegenerative diseases, including PD (Kamal et al., 2020 ; Peng et al., 2020 ). Therefore, a potential link between excessive EtOH intake and the development of PD is being hypothesized. Conversely, EtOH at low to moderate concentrations (10–30 mM) may have protective effects in vitro against various toxicants (Belmadani et al., 2004 ; Ramlochansingh et al., 2011 ). In some other studies, EtOH (1.0 g/kg) and its first toxic metabolite, acetaldehyde (AcH, 250 mg/kg), increased MPTP toxicity in the brains of mice (Corsini et al., 1985 ; Zuddas et al., 1989a ). This was evident through the depletion of DA and its metabolites DOPAC and HVA and the loss of TH-immunoreactive cells. However, in these experiments, EtOH or AcH was administered 10 min before MPTP (30 mg/kg), and the treatment of EtOH/AcH + MPTP was repeated after 16 h. Their findings suggest that the effects of EtOH on MPTP neurotoxicity might be related to AcH formation. The discrepancies between those results and ours regarding the effects of EtOH could be attributed to the dose and frequency of MPTP administration, and most importantly, the dose and timing of EtOH administration. The mechanism of the restorative effects of EtOH on MPTP-induced DA depletion in the brain is largely unknown at this time. A previous study showed that AcH at a dose of 250 mg/kg could increase MPP + retention in the striatum of MPTP-treated mice, likely due to slow clearance of MPP + (Zuddas et al., 1989b ). This could allow a large amount of MPP + to be stored inside DA neurons, leading to toxic effects. However, EtOH at a dose of 1.0 g/kg does not appear to modify MPP + retention levels in the striatum compared to those with MPTP alone (Zuddas et al., 1989b ), suggesting that EtOH at this dose does not considerably affect the clearance of MPP + in the brain. Therefore, in our study, EtOH at 1.0 g/kg did not restore the deficit of DA and its metabolite contents and TH caused by MPTP in the brain (Fig. 4 – 5 ). Based on these findings, we hypothesize that a moderate to high dose of EtOH (2.0 or 3.0 g/kg) reduces interference with the clearance of MPP + , leading to a decreased MPP + retention level in the brain, which in turn, may attenuate dopaminergic loss. In addition, EtOH (4.0 g/kg) itself attenuates DA clearance, resulting in increased DA levels (Shnitko et al., 2014 ). Another possible explanation for the restoration of DA function is that EtOH resists MPTP/MPP + neurotoxicity, possibly by activating TH gene expression or phosphorylation. TH phosphorylation at Ser31 or Ser40 modulates DA availability (Salvatore et al., 2001 ), and an increase in Ser31 TH phosphorylation may increase TH activity in response to TH loss. Therefore, EtOH could restore damaged dopaminergic neurons induced by MPTP to compensate for DA loss in PD. Additionally, α-synuclein, a presynaptic neuronal protein linked to PD, has been shown to regulate the production of DA in cell cultures through its interaction with TH (Perez et al., 2002 ). EtOH may also protect neurons against synapse damage induced by α-synuclein (Bate and Williams, 2011 ), further supporting our study on the effects of EtOH on restoring dopaminergic function in PD mice. In contrast, EtOH can decrease dopaminergic neurons relevant to PD (Eriksson et al., 2013 ; Peng et al., 2020 ), possibly by inducing cytochrome P450 2E1 (CYP2E1) (Heit et al., 2013 ). CYP2E1 metabolizes EtOH into AcH, which can enhance MPTP-induced Parkinsonism in mice (Vaglini et al., 2013 ). This effect was primarily observed with chronic alcohol consumption or exposure to AcH (Vaglini et al., 2013 ; Zhang et al., 2014 ). In the present study, we used an acute EtOH exposure model and found that EtOH restored dopaminergic function in the brains of PD mice. However, further studies are required to ascertain the molecular mechanisms by which EtOH protects dopaminergic function in MPTP-treated mice. Second, we found that Nic at medium to high doses (1.0 or 2.0 mg/kg) exhibited restorative effects against MPTP-induced DA and its metabolite loss in both the striatum and hippocampus. This was evidenced by a significant increase in DA, DOPAC, and HVA levels compared to those in the MPTP group (Fig. 6 , 7 A). As observed in western blot analysis, Nic enhanced TH expression and Ser31 phosphorylation in both brain regions (Fig. 6 , 7 B-C), which is consistent with our DA result. These findings suggest that Nic was able to significantly restore most of the altered MPTP-induced parameters in the mouse brain. Our results align with several previous studies demonstrating that Nic can increase DA and its metabolites, DOPAC and HVA, in the brains of MPTP-treated mice (Janson et al., 1992 ; Gao et al., 1998 ). A similar increase in TH has been noted following Nic administration in mice with Parkinsonism induced by MPTP (Parain et al., 2003 ; Ruan et al., 2023 ). There are two possible ways to minimize MPTP neurotoxicity: 1) by inhibiting the formation of the active neurotoxin MPP + from MPTP (Heikkila et al., 1984 ) and 2) by blocking the uptake of MPP + into the DA neurons (Javitch et al., 1985 ; Sundström et al., 1986 ). We hypothesize that the restorative effects of Nic observed in our study in the MPTP model mice may be caused by an increased release of DA, which can compete with MPP + for uptake into the striatal and hippocampal DA neurons. Another mechanism that warrants consideration is the role of the nicotinic acetylcholine receptor (nAChR) in minimizing MPTP/MPP + –induced damage and restoring DA in MPTP-treated mice. Nic acts on nAChRs located on the dopaminergic nerve terminals to increase DA release in the brain (Besson et al., 2012 ). MPTP induces astrocyte activation in the mouse brain, which leads to neuronal death (Hu et al., 2011 ). Interestingly, Nic can inhibit astrocyte activation caused by MPTP/MPP + via its action at α7-nAChR (Liu et al., 2012 ). This leads to a decrease in the production of pro-inflammatory factors, thus improving dopaminergic loss. The results further support the hypothesis that Nic can effectively ameliorate dopaminergic damage in the brain of MPTP-induced PD mice. The third important finding of this study is that the combination of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) increased the tissue contents of DA, DOPAC, and HVA and TH expression and Ser31 phosphorylation compared to those with EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone in the striatum and hippocampus of MPTP-treated mice (Fig. 8 , 9 ). Numerous studies have examined the neurobiological effects of EtOH and Nic co-administration (Morel et al., 2019 ; Cross et al., 2021). However, little is known about the restorative effects of these two agents on MPTP-induced deficits in dopaminergic function. Therefore, we investigated the combined effects of EtOH and Nic on MPTP-induced deficits in dopaminergic function in the mouse brain. Several studies have demonstrated interactions between EtOH and Nic, where Nic may restore some of EtOH's toxic or adverse effects (Prendergast et al., 2000 ; Penland et al., 2001 ; Gould and Lommock, 2003 ; Tizabi et al., 2005 ). Conversely, EtOH may reduce nicotine-induced seizures (Korkosz et al., 2006a ), enhance the effects of Nic in operant behavior (Popke et al., 2000 ), or increase nicotine-induced place preference (Korkosz et al., 2006b ). EtOH and Nic together have also been shown to exhibit antinociceptive analgesic effects (Campbell et al., 2006 ). Similarly, combined treatment with EtOH and Nic is synergistic in increasing the firing rate of DA-sensitive neurons in the ventral tegmental area of mice, which can potentiate the stimulatory effects of Nic in rats (Schaefer and Michael, 1992 ; Clark and Little, 2004 ). For the first time, we demonstrate that EtOH combined with Nic results in a greater increase in DA response in the brain of MPTP-treated mice compared to the effects of EtOH or Nic alone, suggesting an additive effect. Our results are similar to those of a previous study (Tizabi et al., 2002 ) that combined systemic EtOH with the central administration of Nic into the ventral tegmental area, which resulted in additive or exaggerated DA release in the nucleus accumbens shell. With the combination of EtOH and Nic, the treatment leads to a greater restoration of dopaminergic function in the brain after damage caused by MPTP compared to either drug alone. This finding and previous reports on the synergistic or additive dopaminergic effects of the EtOH and Nic combination support the hypothesis that combining drugs is essential for restoring DA function in mice treated with MPTP. Conclusion When administered alone, moderate to high doses of EtOH and Nic caused a significant increase in DA, DOPAC, and HVA levels and TH expression and Ser31 phosphorylation in the striatum and hippocampus of MPTP-treated mice. When EtOH and Nic were administered together, the drugs further increased DA and its metabolite contents, TH expression, and Ser31 phosphorylation. This suggests an additive restorative effect on the dopaminergic function. These findings provide the first evidence that EtOH and Nic could be promising substances for PD treatment, especially when combined. Declarations Declaration of competing interest The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper. Author Contribution Mostofa Jamal: Writing – original draft, Methodology, and Data curation Sella Takei: Visualization and Investigation Ikuko Tsukamoto: ValidationTakanori Miki: Data analysis Ken-Ichi Ohta: Data curationMd Zakir Hossain: VisualizationHiroshi Kinoshita: Review and Supervision Acknowledgements This work was supported by a Grant-in-Aid for Scientific Research [Grant No. (c) 19K10687] from the Ministry of Education, Culture, Sports, Science and Technology, Japan. References Alam G, Edler M, Burchfield S, Richardson JR. Single low doses of MPTP decrease tyrosine hydroxylase expression in the absence of overt neuron loss. Neurotoxicology 2017; 60:99-106. Andersson K, Fuxe K, Agnati LF. Effects of single injections of nicotine on the ascending dopamine pathways in the rat. Evidence for increases of dopamine turnover in the mesostriatal and mesolimbic dopamine neurons. Acta. Physiol. Scand. 1981; 112(3):345-47. Arai N, Misugi K, Goshima Y, Misu Y. Evaluation of a 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine-treated C57 black mouse model for parkinsonism. Brain Res. 1990; 515:57–63. Baizer L, Masserano JM, Weiner N. Ethanol-induced changes in tyrosine hydroxylase activity in brains of mice selectively bred for differences in sensitivity to ethanol. Pharmacol. Biochem. Behav. 1981; 15:945-49. Bakhtiarzadeh F, Shahpasand K, Shojaei A, Fathollahi Y, Roohi N, Barkley V, Mirnajafi-Zadeh. Age-dependent effects of dopamine on working memory and synaptic plasticity in hippocampal CA3-CA1 synapses in mice. J. Neurosci. 2023; 532:14-22. Barazangi N and Role LW. Nicotine-induced enhancement of glutamatergic and GABAergic synaptic transmission in the mouse amygdala. J. Neurophysiol. 2001; 86(1):463-74. Bate C and Williams A. Ethanol protects cultured neurons against amyloid-β and α-synuclein-induced synapse damage. Neuropharmacology 2011; 61(8):1406-12. Belmadani A, Kumar S, Schipma M, Collins MA, Neafsey EJ. Inhibition of amyloid-beta-induced neurotoxicity and apoptosis by moderate ethanol preconditioning. Neuroreport. 2004; 15:2093–96. Besson M, David V, Baudonnat M, Cazala P, Guilloux JP, Reperant C, Cloez-Tayarani I, Changeux JP, Gardier AM, Granon S. Alpha7-nicotinic receptors modulate nicotine-induced reinforcement and extracellular dopamine outflow in the mesolimbic system in mice. Psychopharmacology (Berl). 2012; 220(1):1-14. Bhaduri B, Abhilash PL, Alladi PA. Baseline striatal and nigral interneuronal protein levels in two distinct mice strains differ in accordance with their MPTP susceptibility. J. Chem. Neuroanat. 2018; 91:46-54. Brazell MP, Mitchell SN, Joseph MH, Gray JA. Acute administration of nicotine increases the in vivo extracellular levels of dopamine, 3,4-dihydroxyphenylacetic acid and ascorbic acid preferentially in the nucleus accumbens of the rat: comparison with caudate-putamen. Neuropharmacology 1990; 29(12):1177-185. Brabant C, Guarnieri DJ, Quertemont E. Stimulant and motivational effects of alcohol: lessons from rodent and primate models. Pharmacol. Biochem. Behav. 2014; 122:37-52. Broussard JI, Yang K, Levine AT, Tsetsenis T, Jenson D, Cao F, Garcia I, Arenkiel BR, Zhou FM, De Cai Y, Zhang X, Zhou X, Wu X, Li Y, Yao J, Bai J. Nicotine suppresses the neurotoxicity by MPP + /MPTP through activating α7nAChR/PI3K/Trx-1 and suppressing ER stress. Neurotoxicology 2017; 59:49-55. Campbell VC, Taylor RE, Tizabi Y. Antinociceptive effects of alcohol and nicotine: involvement of the opioid system. Brain Res. 2006; 1097(1):71-77. Carr LA, Rowell PP, Pierce WM Jr. Effects of subchronic nicotine administration on central dopaminergic mechanisms in the rat. Neurochem. Res. 1989; 14(6):511-15. Chatterjee D, Shams S, Gerlai R. Chronic and acute alcohol administration induced neurochemical changes in the brain: comparison of distinct zebrafish populations. Amino Acids 2014; 46:921–30. Chellian R, Behnood-Rod A, Wilson R, Bruijnzeel AW. Rewarding effects of nicotine self-administration increase over time in male and female rats. Nicotine Tob Res. 2021; 23(12):2117-126. Chia LG, Ni DR, Cheng LJ, Kuo JS, Cheng FC, Dryhurst G. Effects of 1-methyl-4- phenyl-1,2,3,6-tetrahydropyridine and 5,7-dihydroxytryptamine on the locomotor activity and striatal amines in C57BL/6 mice. Neurosci. Lett. 1996; 218:67–71. Clark A and Little HJ. Interactions between low concentrations of ethanol and nicotine on firing rate of ventral tegmental dopamine neurons. Drug Alcohol Depend. 2004: 75: 199–206. Corsini GU, Pintus S, Chiueh CC, Weiss JF, Kopin IJ. 1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) neurotoxicity in mice is enhanced by pretreatment with diethyldithiocarbamate. Eur. J. Pharmacol. 1985; 119(1-2):127-28. Cross SJ and Leslie FM. Combined nicotine and ethanol age-dependently alter neural and behavioral responses in male rats. Behav. Pharmacol. 2021; 32(4):321-34. Engel JA, Fahlke C, Hård E, Johannessen K, Svensson L, Söderpalm B. Serotonergic and dopaminergic involvement in ethanol intake. Clin. Neuropharmacol. 1992; 15 Suppl 1 Pt A:64A-65A. Eriksson AK, Lofving S, Callaghan RC, Allebeck P. Alcohol use disorders and risk of Parkinson’s disease: Findings from a Swedish national cohort study 1972–2008. BMC Neurol. 2013; 13:190. Fornai F, Schlüter OM, Lenzi P, Gesi M, Ruffoli R, Ferrucci M, Lazzeri G, Busceti CL, Pontarelli F, Battaglia G, Pellegrini A, Nicoletti F, Ruggieri S, Paparelli A, Südhof TC. Parkinson-like syndrome induced by continuous MPTP infusion: convergent roles of the ubiquitin-proteasome system and alpha-synuclein. Proc. Natl. Acad. Sci. USA. 2005; 102:3413–418. Gao ZG, Cui WY, Zhang HT, Liu CG. Effects of nicotine on 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine-induced depression of striatal dopamine content and spontaneous locomotor activity in C57 black mice. Pharmacol. Res. 1998; 38(2):101-06. Gayer GG, Gordon A, Miles MF. Ethanol increases tyrosine hydroxylase gene expression in N1E-115 neuroblastoma cells. J. Biol. Chem. 1991; 266(33):22279-284. German DC, Manaye KF, Sonsalla PK, Brooks BA. Midbrain dopaminergic cell loss in Parkinson's disease and MPTP-induced parkinsonism: sparing of calbindin-D28k-containing cells. Ann. NY. Acad. Sci. 1992; 648:42-62. Gould TJ and Lommock JA. Nicotine enhances contextual fear conditioning and ameliorates ethanol-induced deficits in contextual fear conditioning. Behav. Neurosci. 2003;117(6):1276-282. Gubner NR and Phillips TJ. Effects of nicotine on ethanol-induced locomotor sensitization: A model of neuroadaptation. Behav. Brain Res. 2015; 288:26-32. Gulick D and Gould TJ. Acute ethanol has biphasic effects on short- and long-term memory in both foreground and background contextual fear conditioning in C57BL/6 mice. Alcohol Clin. Exp. Res. 2007; 31(9):1528-537. Haikala H, Karmalahti T, Ahtee L. The nicotine-induced changes in striatal dopamine metabolism of mice depend on body temperature. Brain Res. 1986; 375(2):313-19. Heikkila RE, Manzino L, Cabbat FS, Duvoisin RC. Protection against the dopaminergic neurotoxicity of 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine by monoamine oxidase inhibitors. Nature 1984; 311(5985):467-69. Heikkila RE, Nicklas WJ, Duvoisin RC. Dopaminergic toxicity after the stereotaxic administration of the 1-methyl-4-phenylpyridinium ion (MPP+) to rats. Neurosci. Lett. 1985; 59(1): 135-40. Heikkila RE and Sonsalla PK. The use of the MPTP-treated mouse as an animal model of Parkinsonism. Can. J. Neurol. Sci. 1987; 14(3 Suppl): 436-40. Heit C, Dong H, Chen Y, Thompson DC, Deitrich RA, Vasiliou VK. The role of CYP2E1 in alcohol metabolism and sensitivity in the central nervous system. Subcell. Biochem. 2013; 67: 235–47. Hernan MA, Takkouche B, Caamano-Isorna F, Gestal-Otero JJ. A meta-analysis of coffee drinking, cigarette smoking, and the risk of Parkinson's disease. Ann Neurol 2002; 52(3): 276–284. Hiremagalur B, Nankova B, Nitahara J, Zeman R, Sabban EL. Nicotine increases expression of tyrosine hydroxylase gene. Involvement of protein kinase A-mediated pathway. J. Biol. Chem. 1993; 268(31):23704-711. Hu J, Zhu C, Liu Y, Wang F, Huang Z, Fan W, Wu J. Dynamic alterations of gene expression of nicotinic acetylcholine receptor alpha7, alpha4 and beta2 subunits in an acute MPTP-lesioned mouse model. Neurosci. Lett. 2011; 494:232–36. Itzhak Y, Martin JL, Black MD, Ali SF. Effect of the dopaminergic neurotoxin MPTP on cocaine-induced locomotor sensitization. Pharmacol. Biochem. Behav. 1999; 63(1):101-7. Jackson-Lewis V and Przedborski S. Protocol for the MPTP mouse model of Parkinson’s disease. Nat. Protoc. 2007; 2:141–51. Jamal M, Ameno K, Miki T, Tanaka N, Ito A, Ono J, Takakura A, Kumihashi M, Kinoshita H. Ethanol and acetaldehyde differentially alter extracellular dopamine and serotonin in Aldh2-knockout mouse dorsal striatum: A reverse microdialysis study. Neurotoxicology 2016; 52:204-09. Jamal M, Ito A, Miki T, Suzuki S, Ohta KI, Kinoshita H. Ethanol concentration induces production of 3,4-dihydroxyphenylacetic acid and homovanillic acid in mouse brain through activation of monoamine oxidase pathway. Neurosci. Lett. 2022; 782:136689. Janson AM, Fuxe K, Goldstein M. Differential effects of acute and chronic nicotine treatment on MPTP-(1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine) induced degeneration of nigrostriatal dopamine neurons in the black mouse. Clin. Investig. 1992; 70(3-4):232-38. Javitch JA, D'Amato RJ, Strittmatter SM, Snyder SH. Parkinsonism-inducing neurotoxin N-methyl-4-phenyl-1,2,3,6-tetrahydropyridine: uptake of the metabolite l-methyl-4-phenylpyridine by dopamine neurons explains selective toxicity. Proc. Natl. Acad. Sci. USA 1985; 82: 2173-177. Jimenez-Jimenez FJ, Alonso-Navarro H, Garcia-Martin E, Agundez JAG. Alcohol consumption and risk for Parkinson's disease: a systematic review and meta-analysis. J. Neurol. 2019; 266(8): 1821-1834. Kamal H, Tan GC, Ibrahim SF, Shaikh MF, Mohamed IN, Mohamed RMP, Hamid AA, Ugusman A, Kumar J. Alcohol use disorder, neurodegeneration, Alzheimer's and Parkinson's disease: interplay between oxidative stress, neuroimmune response and excitotoxicity. Front. Cell Neurosci. 2020; 14:282. Kinoshita K, Tada Y, Muroi Y, Unno T, Ishii T. Selective loss of dopaminergic neurons in the substantia nigra pars compacta after systemic administration of MPTP facilitates extinction learning. Life Sci. 2015; 137:28-36. Kleijn J, Folgering JHA, van der Hart MCG, Rollema H, Cremers TIFH, Westerink BHC. Direct effect of nicotine on mesolimbic dopamine release in rat nucleus accumbens shell. Neurosci. Lett. 2011; 493(1-2):55-58. Korkosz A, Zatorski P, Taracha E, Plaznik A, Kostowski W, Bienkowski P. Ethanol blocks nicotine-induced seizures in mice: comparison with midazolam and baclofen. Alcohol 2006a; 40(3):151-57. Korkosz A, Scinska A, Taracha E, Plaznik A, Kukwa A, Kostowski W, Bienkowski P. Nicotine-induced conditioned taste aversion in the rat: effects of ethanol. Eur. J. Pharmacol. 2006b; 537(1-3):99-105. Ksir C. Acute and chronic nicotine effects on measures of activity in rats: a multivariate analysis. Psychopharmacology (Berl) 1994, 115(1-2):105-09. Larsson A and Engel JA. Neurochemical and behavioral studies on ethanol and nicotine interactions. Neurosci. Biobehav. Rev. 2004; 27(8):713-20. Le Foll B and Goldberg SR. Effects of nicotine in experimental animals and humans: an update on addictive properties. Handb. Exp. Pharmacol. 2009; (192):335-67. Li X, Li W, Liu G, Shen X, Tang Y. Association between cigarette smoking and Parkinson's disease: a meta-analysis. Arch. Gerontol. Geriatr. 2015; 61(3): 510–516. Liu R, Guo X, Park Y, Wang J, Huang X, Hollenbeck A, Blair A, Chen H. Alcohol consumption, types of alcohol, and Parkinson’s disease. PLoS One 2013; 8(6):e66452. Liu Y, Hu J, Wu J, Zhu C, Hui Y, Han Y, Huang Z, Ellsworth K, Fan W. α7 nicotinic acetylcholine receptor-mediated neuroprotection against dopaminergic neuron loss in an MPTP mouse model via inhibition of astrocyte activation. J. Neuroinflammation 2012; 9 (98):1-15. Masserano JM, Takimoto GS, Weiner N. Tyrosine hydroxylase activity in the brain and adrenal gland of rats following chronic administration of ethanol. Alcohol Clin. Exp. Res. 1983; 7:294-98. McBride WJ, Murphy JM, Gatto GJ, Levy AD, Lumeng L, Li TK. Serotonin and dopamine systems regulating alcohol intake. Serotonergic and dopaminergic involvement in ethanol intake. Alcohol Alcohol Suppl. 1991; 1:411-16. Meck WH. Acute ethanol potentiates the clock-speed enhancing effects of nicotine on timing and temporal memory. Alcohol Clin. Exp. Res. 2007; 31(12):2106-113. Melendez RI, Rodd-Henricks ZA, McBride WJ, Murphy JM. Alcohol stimulates the release of dopamine in the ventral pallidum but not in the globus pallidus: a dual-probe microdialysis study. Neuropsychopharmacology 2003; 28(5):939-46. Mitra N, Mohanakumar KP, Ganguly DK. Dissociation of serotoninergic and dopaminergic components in acute effects of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine in mice. Brain Res. Bull. 1992; 28(3):355-64. Mifsud JC, Hernandez L, Hoebel BG. Nicotine infused into the nucleus accumbens increases synaptic dopamine as measured by in vivo microdialysis. Brain Res. 1989; 478:365-67. Mira RG, Tapia-Rojas C, Pérez MJ, Jara C EH, Q, Vergara uintanilla RA, Cerpa W. Alcohol impairs hippocampal function: From NMDA receptor synaptic transmission to mitochondrial function. Drug Alcohol Depend. 2019, 205:107628. Mitchell SN, Smith KM, Joseph MH, Gray JA. Increases in tyrosine hydroxylase messenger RNA in the locus coeruleus after a single dose of nicotine are followed by time-dependent increases in enzyme activity and noradrenaline release. Neuroscience 1993; 56(4):989-97. Moore DJ, West AB, Dawson VL, Dawson TM. Molecular pathophysiology of Parkinson’s disease. Annu. Rev. Neurosci. 2005; 28, 57–87. Morel C, Montgomery S, Han MH. Nicotine and alcohol: the role of midbrain dopaminergic neurons in drug reinforcement. Eur. J. Neurosci. 2019; 50(3):2180-200. Mustapha M and Mat Taib CN. MPTP-induced mouse model of Parkinson's disease: A promising direction of therapeutic strategies. Bosn. J. Basic Med. Sci. 2021; 21(4):422-33. Review. Nicholatos JW, Francisco AB, Bender CA, Yeh T, Lugay FJ, Salazar JE, Glorioso C, Libert S. Nicotine promotes neuron survival and partially protects from Parkinson's disease by suppressing SIRT6. Acta Neuropathol. Commun. 2018; 6(1):120. Parain K, Hapdey C, Rousselet E, Marchand V, Dumery B, Hirsch EC. Cigarette smoke and nicotine protect dopaminergic neurons against the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine Parkinsonian toxin. Brain Res. 2003; 984(1-2):224-32. Peng B, Yang Q, B Joshi R, Liu Y, Akbar M, Song BJ, Zhou S, Wang X. Role of alcohol drinking in Alzheimer's disease, Parkinson's disease, and amyotrophic lateral sclerosis. Int. J. Mol. Sci. 2020, 21:2316. Penland S, Hoplight B, Obernier J, Crews FT. Effects of nicotine on ethanol dependence and brain damage. Alcohol 2001; 24(1):45-54. Perez RG, Waymire JC, Lin E, Liu JJ, Guo F, Zigmond MJ. A role for alpha-synuclein in the regulation of dopamine biosynthesis. J. Neurosci. 2002; 22:3090–99. Popke EJ, Fogle CM, Paule MG. Ethanol enhances Nicotine's effects on DRL performance in rats. Pharmacol. Biochem. Behav. 2000; 66(4):819-26. Prendergast MA, Harris BR, Mayer S, Littleton JM. Chronic, but not acute, nicotine exposure attenuates ethanol withdrawal-induced hippocampal damage in vitro. Alcohol Clin. Exp. Res. 2000; 24(10):1583-592. Quik M, Parameswaran N, McCallum SE, Bordia T, Bao S, McCormack A, Kim A, Tyndale RF, Langston JW, Di Monte DA. Chronic oral nicotine treatment protects against striatal degeneration in MPTP-treated primates. J. Neurochem. 2006; 98(6):1866-875. Ramlochansingh C, Taylor RE, Tizabi Y. Toxic effects of low alcohol and nicotine combinations in SH-SY5Y cells are apoptotically mediated. Neurotox. Res. 2011; 20(3):263-69. Rommelfanger KS, Edwards GL, Freeman KG, Liles LC, Miller GW, Weinshenker D. Norepinephrine loss produces more profound motor deficits than MPTP treatment in mice. Proc. Natl. Acad. Sci. USA. 2007; 104(34):13804-809. Rose JE, Brauer LH, Behm FM, Cramblett M, Calkins K, Lawhon D. Psychopharmacological interactions between nicotine and ethanol. Nicotine Tob. Res. 2004; 6(1):133-44. Ruan S, Xie J, Wang L, Guo L, Li Y, Fan W, Ji R, Gong Z, Xu Y, Mao J, Xie J. Nicotine alleviates MPTP-induced nigrostriatal damage through modulation of JNK and ERK signaling pathways in the mice model of Parkinson's disease. Front. Pharmacol. 2023; 14:1088957. eCollection 2023. Saeed Dar M and Wooles WR. The effect of acute ethanol on dopamine metabolism and other neurotransmitters in the hypothalamus and the corpus striatum of mice. J. Neural Transm. 1984; 60(3-4):283–94. Salvatore MF, Waymire JC, Haycock JW. Depolarization-stimulated catecholamine biosynthesis: involvement of protein kinases and tyrosine hydroxylase phosphorylation sites in situ. J. Neurochem. 2001; 79(2):349–60. Schaefer GJ and Michael RP. Interactions between alcohol and nicotine on intracranial self-stimulation and locomotor activity in rats. Drug Alcohol Depend. 1992; 30(1):37-47. Sedelis M, Schwarting RK, Huston JP. Behavioral phenotyping of the MPTP mouse model of Parkinson's disease. Behav. Brain Res. 2001; 125(1-2):109-25. Shnitko TA, Kennerly LC, Spear LP, Robinson DL. Ethanol reduces evoked dopamine release and slows clearance in the rat medial prefrontal cortex. Alcohol Clin. Exp. Res. 2014; 38(12):2969-977. Siciliano CA, Locke JL, Mathews TA, Lopez MF, Becker HC, Jones SR. Dopamine synthesis in alcohol drinking-prone and -resistant mouse strains. Alcohol 2017; 58:25-32. Silvers JM, Tokunaga S, Berry RB, White AM, Matthews DB. Impairments in spatial learning and memory: ethanol, allopregnanolone, and the hippocampus. Brain Res. Rev. 2003; 43(3):275-84. Söderpalm B, Ericson M, Olausson P, Blomqvist O, Engel JA. Nicotinic mechanisms involved in the dopamine activating and reinforcing properties of ethanol. Behav. Brain Res. 2000; 113(1-2):85-96. Sonsalla PK and Heikkila RE. The influence of dose and dosing interval on MPTP-induced dopaminergic neurotoxicity in mice. Eur. J. Pharmacol. 1986; 129(3):339-45. Sun N and Laviolette SR. Dopamine receptor blockade modulates the rewarding and aversive properties of nicotine via dissociable neuronal activity patterns in the nucleus accumbens. Neuropsychopharmacology 2014; 39(12):2799-815. Sundström E, Goldstein M, Jonsson G. Uptake inhibition protects nigro-striatal dopamine neurons from the neurotoxicity of 1-methyl-4-phenylpyridine (MPP+) in mice. Eur. J. Pharmacol. 1986; 131(2-3):289-92. Tang A, George MA, Randall JA, Gonzales RA. Ethanol increases extracellular dopamine concentration in the ventral striatum in C57BL/6 mice. Alcohol Clin. Exp. Res. 2003; 27:1083-89. Tizabi Y, Copeland RL, Louis V., Taylor RE. Effects of combined systemic alcohol and central nicotine administration into ventral tegmental area on dopamine release in the nucleus accumbens. Alcohol Clin. Exp. Res. 2002; 26: 394–99. Tizabi Y, Manaye KF, Taylor RE. Nicotine blocks ethanol-induced apoptosis in primary cultures of rat cerebral cortical and cerebellar granule cells. Neurotox. Res. 2005; 7(4):319-22. Tizabi Y, Bai L, Copeland RL, Taylor RE. Combined effects of systemic alcohol and nicotine on dopamine release in the nucleus accumbens shell. Alcohol Alcohol 2007; 42: 413–16. Tolu S, Marti F, Morel C, Perrier C, Torquet N, Pons S, De Beaurepaire R, Faure P (2017) Nicotine enhances alcohol intake and dopaminergic responses through β2* and β4* nicotinic acetylcholine receptors. Sci. Rep. 2017; 7: 45116. Toth E, Sershen H, Hashim A, Vizi ES, Lajtha A. Effect of nicotine on extracellular levels of neurotransmitters assessed by microdialysis in various brain regions: role of glutamic acid. Neurochem. Res. 1992; 17(3):265-71. Tran S, Facciol A, Nowicki M, Chatterjee D, Gerlai R. Acute alcohol exposure increases tyrosine hydroxylase protein expression and dopamine synthesis in zebrafish. Behav. Brain Res. 2017; 317:237-41. Truitt WA, Hauser SR, Deehan GA Jr, Toalston JE, Wilden JA, Bell RL, McBride WJ, Rodd ZA. Ethanol and nicotine interaction within the posterior ventral tegmental area in male and female alcohol-preferring rats: evidence of synergy and differential gene activation in the nucleus accumbens shell. Psychopharmacology (Berl) 2015; 232(3):639-49. Turner TJ. Nicotine enhancement of dopamine release by a calcium-dependent increase in the size of the readily releasable pool of synaptic vesicles. J. Neurosci. 2004; 24(50):11328-336. Vaglini F, Viaggi C, Piro V, Pardini C, Gerace C, Scarselli M, Corsini GU. Acetaldehyde and parkinsonism: Role of CYP450 2E1. Front. Behav. Neurosci. 2013; 7:71. Vaillancourt DE and Mitchell T. Parkinson's disease progression in the substantia nigra: location, location, location. Brain 2020; 143(9):2628-630. Vengeliene V, Bilbao A, Molander A, Spanagel R. Neuropharmacology of alcohol addiction. Br J Pharmacol. 2008; 154(2):299-15. von Bohlen und Halbach O, Schober A, Hertel R, Unsicker K. MPTP treatment impairs tyrosine hydroxylase immunopositive fibers not only in the striatum, but also in the amygdala. Neurodegener. Dis. 2005; 2(1):44-8. Waeiss RA, Knight CP, Engleman EA, Hauser SR, Rodd ZA. Co-administration of ethanol and nicotine heightens sensitivity to ethanol reward within the nucleus accumbens (NAc) shell and increasing NAc shell BDNF is sufficient to enhance ethanol reward in naïve Wistar rats. J. Neurochem. 2020; 152(5):556-69. Wang R, Martin CD, Lei AL, Hausknecht KA, Ishiwari K, Richards JB, Haj-Dahmane S, Shen RY. Prenatal ethanol exposure leads to attention deficits in both male and female rats. Front. Neurosci. 2020; 14:12. eCollection 2020. Willis GL and Donnan GA. Histochemical, biochemical and behavioural consequences of MPTP treatment in C-57 black mice. Brain Res. 1987; 402:269–74. Xue S, Behnood-Rod A, Wilson R, Wilks I, Tan S, Bruijnzeel AW. Rewarding effects of nicotine in adolescent and adult male and female rats as measured using intracranial self-stimulation. Nicotine Tob. Res. 2020; 22(2):172-79. Yang J, Lv DJ, Li LX, Wang YL, Qi D, Chen J, Mao CJ, Wang F, Liu Y, Hu LF, Liu CF. Nicotine improved the olfactory impairment in MPTP-induced mouse model of Parkinson's disease. Neurotoxicology 2019;73:175-82. Yim HJ, Schallert T, Randall PK, Bungay PM, Gonzales RA. Effect of ethanol on extracellular dopamine in rat striatum by direct perfusion with microdialysis. J. Neurochem. 1997; 68:1527-33. Yokoyama H, Kuroiwa H, Kasahara J, Araki T. Neuropharmacological approach against MPTP (1-methyl-4-phenyl-1,2,3,6- tetrahydropyridine)-induced mouse model of Parkinson's disease. Acta Neurobiol. Exp. (Wars). 2011; 71(2):269-80. Review Zhang D, Jiang H, Xie J. Alcohol intake and risk of Parkinson's disease: a meta-analysis of observational studies. Mov. Disord. 2014; 29(6): 819–822. Zhang QS, Heng Y, Mou Z, Huang JY, Yuan YH, Chen NH. Reassessment of subacute MPTP-treated mice as animal model of Parkinson's disease. Acta Pharmacol. Sin. 2017; 38(10):1317-328. Zhu G, Huang Y, Chen Y, Zhuang Y, Behnisch T. MPTP modulates hippocampal synaptic transmission and activity-dependent synaptic plasticity via dopamine receptors. J. Neurochem. 2012; 122:582–93. Zuddas A, Corsini GU, Schinelli S, Johannessen JN, di Porzio U, Kopin IJ. MPTP treatment combined with ethanol or acetaldehyde selectively destroys dopaminergic neurons in mouse substantia nigra. Brain Res. 1989a; 501(1):1-10. Zuddas A, Corsini GU, Schinelli S, Barker JL, Kopin IJ, di Porzio U. Acetaldehyde directly enhances MPP+ neurotoxicity and delays its elimination from the striatum. Brain Res. 1989b; 501(1):11-22. Table 1 Table 1 is available in the Supplementary Files section. Additional Declarations No competing interests reported. Supplementary Files Table1.tif Table 1: Effects of MPTP on body weight and mortality. (A) body weight (g), (B) mortality (%). 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Also discoverable on Platform About Our Team In Review Editorial Policies Advisory Board Help Center Resources Author Services Accessibility API Access RSS feed Manage Cookie Preferences © Research Square 2026 | ISSN 2693-5015 (online) Privacy Policy Terms of Service Do Not Sell My Personal Information {"props":{"pageProps":{"initialData":{"identity":"rs-4097975","acceptedTermsAndConditions":true,"allowDirectSubmit":false,"archivedVersions":[],"articleType":"Research Article","associatedPublications":[],"authors":[{"id":283322768,"identity":"a3b69ef3-ab2d-4671-b2e0-13b8029579d4","order_by":0,"name":"Mostofa Jamal","email":"data:image/png;base64,iVBORw0KGgoAAAANSUhEUgAAAZAAAAAyAQMAAABI0h/eAAAABlBMVEX///8AAABVwtN+AAAACXBIWXMAAA7EAAAOxAGVKw4bAAAA20lEQVRIiWNgGAWjYBACxgYg8YCNQY6fvYGBmXgtCWwMxpI9B4jUAgZALYkGNxKI1MLcfjrxQ0LZvQTJmW8MPxdU2DDwt3cn4HdYT+5miYRzxXn80jnG0jPOpDFInDm7Ab+WhtwNEoltCcWSs3MMpHnbDjMYSOQS0NL/dvMPoJbEDTfPGP8mTsuM3G0SYC03eMyItGXG220WCecSgIGcVmbNcyaNh6BfDPtzN9/4UJYAjMrDm2/zVNjI8bf3EtDSAGdyGIBIHrzKQUAewWR/QFD1KBgFo2AUjEwAANJXSeJK/OIWAAAAAElFTkSuQmCC","orcid":"","institution":"Kagawa University","correspondingAuthor":true,"prefix":"","firstName":"Mostofa","middleName":"","lastName":"Jamal","suffix":""},{"id":283322769,"identity":"23c84a0a-71ab-4536-8435-d0a55a1b329f","order_by":1,"name":"Sella Takei","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Sella","middleName":"","lastName":"Takei","suffix":""},{"id":283322770,"identity":"73d0d4a9-88f9-4b9f-afa4-621367bc9ace","order_by":2,"name":"Ikuko Tsukamoto","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Ikuko","middleName":"","lastName":"Tsukamoto","suffix":""},{"id":283322771,"identity":"60d642ed-d4ff-4923-bb7e-83587617f17f","order_by":3,"name":"Takanori Miki","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Takanori","middleName":"","lastName":"Miki","suffix":""},{"id":283322775,"identity":"fc9a0fb3-ca77-4c4b-b046-9c2d03d3d42a","order_by":4,"name":"Ken-Ichi Ohta","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Ken-Ichi","middleName":"","lastName":"Ohta","suffix":""},{"id":283322783,"identity":"4ef59f0c-a6fb-4f41-8b7f-c7407f4fb98f","order_by":5,"name":"Md Zakir Hossain","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Md","middleName":"Zakir","lastName":"Hossain","suffix":""},{"id":283322785,"identity":"a9c9de80-dfaf-405c-bcc6-6a9870a78c16","order_by":6,"name":"Hiroshi Kinoshita","email":"","orcid":"","institution":"Kagawa University","correspondingAuthor":false,"prefix":"","firstName":"Hiroshi","middleName":"","lastName":"Kinoshita","suffix":""}],"badges":[],"createdAt":"2024-03-14 06:59:26","currentVersionCode":1,"declarations":"","doi":"10.21203/rs.3.rs-4097975/v1","doiUrl":"https://doi.org/10.21203/rs.3.rs-4097975/v1","draftVersion":[],"editorialEvents":[{"content":"https://doi.org/10.1007/s12640-025-00732-8","type":"published","date":"2025-02-12T15:57:35+00:00"}],"editorialNote":"","failedWorkflow":false,"files":[{"id":53661913,"identity":"e6bd5f5a-10f8-4bbb-810e-f82ee5d19b2a","added_by":"auto","created_at":"2024-03-28 16:15:21","extension":"png","order_by":1,"title":"Figure 1","display":"","copyAsset":false,"role":"figure","size":561775,"visible":true,"origin":"","legend":"\u003cp\u003eMPTP-induced alterations in open field activity. (A) Representative images of movement trials in the open field test, (B) quantitative analysis of total distance traveled in the open field test.\u003c/p\u003e","description":"","filename":"Fig1.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/3fd6d75b784d99d5c6499942.png"},{"id":53662861,"identity":"52cf51ed-833c-4de2-a068-c639360e7d85","added_by":"auto","created_at":"2024-03-28 16:23:21","extension":"png","order_by":2,"title":"Figure 2","display":"","copyAsset":false,"role":"figure","size":152270,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of MPTP on DA and its metabolite tissue contents, TH and Ser31 in the striatum. (A) \u003cem\u003eEx vivo\u003c/em\u003e analysis, (B) densitometric analysis, (C-D) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.001 versus vehicle. Veh, vehicle; sal, saline. Data are expressed as mean ± SEM, n =6.\u003c/p\u003e","description":"","filename":"Fig2.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/76ce9c67f1a4c2a84bace059.png"},{"id":53661910,"identity":"40873a2d-6f6b-40cf-bc14-547a7e0d8118","added_by":"auto","created_at":"2024-03-28 16:15:21","extension":"png","order_by":3,"title":"Figure 3","display":"","copyAsset":false,"role":"figure","size":150759,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of MPTP on DA and metabolite tissue contents, TH and Ser31 in the hippocampus. (A) Ex vivo analysis, (B) densitometric analysis, (C-D) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.001 versus vehicle. Veh, vehicle; sal, saline. Data are expressed as mean ± SEM, n =6.\u003c/p\u003e","description":"","filename":"Fig3.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/f6bb9a22c373f7f3fc4f6f6b.png"},{"id":53661912,"identity":"79e4ee36-718f-49f3-a16e-c673e9824f7a","added_by":"auto","created_at":"2024-03-28 16:15:21","extension":"png","order_by":4,"title":"Figure 4","display":"","copyAsset":false,"role":"figure","size":235371,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of EtOH treatment on DA and metabolite tissue contents, TH and Ser31 in the striatum. (A) \u003cem\u003eEx vivo\u003c/em\u003e analysis, (B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus sal. sal, saline; Et1, ethanol 1.0 g/kg; Et2, ethanol 2.0 g/kg; Et3, ethanol 3.0 g/kg. Data are expressed as mean ± SEM, n =6.\u003c/p\u003e","description":"","filename":"Fig4.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/3df1c9cad43db79a7199a0f1.png"},{"id":53661914,"identity":"6e21bae6-0340-4d90-9e21-571ad7617cda","added_by":"auto","created_at":"2024-03-28 16:15:21","extension":"png","order_by":5,"title":"Figure 5","display":"","copyAsset":false,"role":"figure","size":238988,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of EtOH treatment on DA and metabolite tissue contents, TH and Ser31 in the hippocampus. (A) \u003cem\u003eEx vivo\u003c/em\u003e analysis, (B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus sal. sal, saline; ; Et1, ethanol 1.0 g/kg; Et2, ethanol 2.0 g/kg; Et3, ethanol 3.0 g/kg. Data are expressed as mean ± SEM, n =6.\u003c/p\u003e","description":"","filename":"Fig5.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/5f8ce1aa7a0bf4a9355d95b8.png"},{"id":53661915,"identity":"68c307af-6d63-40ee-a98a-2d53d4c0000c","added_by":"auto","created_at":"2024-03-28 16:15:22","extension":"png","order_by":6,"title":"Figure 6","display":"","copyAsset":false,"role":"figure","size":236306,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of Nic treatment on DA and metabolite tissue contents, TH and Ser31 in the striatum. (A) Ex vivo analysis, (B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus sal. sal, saline; Nic0.5, nicotine 0.5 mg/kg; Nic1, nicotine 1.0 mg/kg; Nic2, nicotine 2.0 mg/kg. Data are expressed as mean ± SEM, n = 5 to 6.\u003c/p\u003e","description":"","filename":"Fig6.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/54b227d5064256c85dc9f1cd.png"},{"id":53661917,"identity":"18b93df0-9961-480d-ab1e-8e6433986a22","added_by":"auto","created_at":"2024-03-28 16:15:22","extension":"png","order_by":7,"title":"Figure 7","display":"","copyAsset":false,"role":"figure","size":244184,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of Nic treatment on DA and metabolite tissue contents, TH and Ser31 in the hippocampus. (A) \u003cem\u003eEx vivo\u003c/em\u003e analysis, (B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus sal. sal, saline; Nic0.5, nicotine 0.5 mg/kg; Nic1, nicotine 1.0 mg/kg; Nic2, nicotine 2.0 mg/kg. Data are expressed as mean ± SEM, n = 5 to 6.\u003c/p\u003e","description":"","filename":"Fig7.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/82ef7bbf31e07f6d8b5904b8.png"},{"id":53661906,"identity":"a63a290f-59bb-4dc0-8cbc-d714427f8a63","added_by":"auto","created_at":"2024-03-28 16:15:20","extension":"png","order_by":8,"title":"Figure 8","display":"","copyAsset":false,"role":"figure","size":239443,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of EtOH and Nic combination on DA and metabolite tissue contents, TH and Ser31 in the striatum. (A) Ex vivo analysis, ((B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus EtOH 2.0 or Nic1.0. sal, saline; Et2, ethanol 2.0 g/kg; Nic1, nicotine 1.0 mg/kg. Data are expressed as mean ± SEM, n = 5 to 6.\u003c/p\u003e","description":"","filename":"Fig8.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/404cadeb6263a8496d23721e.png"},{"id":53661907,"identity":"c1ee6062-1225-4498-8841-654d486668f5","added_by":"auto","created_at":"2024-03-28 16:15:20","extension":"png","order_by":9,"title":"Figure 9","display":"","copyAsset":false,"role":"figure","size":220255,"visible":true,"origin":"","legend":"\u003cp\u003eEffects of EtOH and Nic combination on DA and metabolite tissue contents, TH and Ser31 in the hippocampus. (A) \u003cem\u003eEx vivo\u003c/em\u003e analysis, (B-C) densitometric analysis, (D-E) representative immunoblot. *\u003cem\u003eP \u003c/em\u003e\u0026lt; 0.05 versus EtOH 2.0 or Nic1.0. sal, saline; Et2, ethanol 2.0 g/kg; Nic1, nicotine 1.0 mg/kg. Data are expressed as mean ± SEM, n = 5 to 6.\u003c/p\u003e","description":"","filename":"Fig9.png","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/e5e36376d8bd3e4c594173f4.png"},{"id":76487519,"identity":"cec40845-5d33-40d7-9d95-4e18cd39d9ea","added_by":"auto","created_at":"2025-02-17 16:08:32","extension":"pdf","order_by":0,"title":"","display":"","copyAsset":false,"role":"manuscript-pdf","size":3255878,"visible":true,"origin":"","legend":"","description":"","filename":"manuscript.pdf","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/437b0e11-06de-4bb0-b828-0544ae370cb8.pdf"},{"id":53661916,"identity":"5ce6db5e-14c6-4cf3-9be6-0fa67864eed3","added_by":"auto","created_at":"2024-03-28 16:15:22","extension":"tif","order_by":1,"title":"","display":"","copyAsset":false,"role":"supplement","size":421962,"visible":true,"origin":"","legend":"\u003cp\u003eTable 1: Effects of MPTP on body weight and mortality. (A) body weight (g), (B) mortality (%).\u003c/p\u003e","description":"","filename":"Table1.tif","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/f598ffc81d49dba7c43d6e5e.tif"},{"id":53661908,"identity":"a19789a3-0a8b-4820-bb5d-8ab9a4b2c0b2","added_by":"auto","created_at":"2024-03-28 16:15:20","extension":"ppt","order_by":2,"title":"","display":"","copyAsset":false,"role":"supplement","size":186368,"visible":true,"origin":"","legend":"","description":"","filename":"Graphicalabstract.ppt","url":"https://assets-eu.researchsquare.com/files/rs-4097975/v1/811ee19643a717f69c59f21a.ppt"}],"financialInterests":"No competing interests reported.","formattedTitle":"Restoration of MPTP-induced dopamine and tyrosine hydroxylase depletion in the mouse brain through ethanol and nicotine","fulltext":[{"header":"Introduction","content":"\u003cp\u003eParkinson\u0026rsquo;s disease (PD) is the most prevalent chronic neurodegenerative disorder, resulting from the progressive loss of dopaminergic neurons in the midbrain substantia nigra (German et al., \u003cspan citationid=\"CR27\" class=\"CitationRef\"\u003e1992\u003c/span\u003e; Vaillancourt and Mitchell, \u003cspan citationid=\"CR101\" class=\"CitationRef\"\u003e2020\u003c/span\u003e). 1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) is a neurotoxin used for generating PD in animal models. MPTP causes damage to the nigrostriatal dopaminergic neurons, inducing PD-like symptoms in rodents (Heikkila et al., \u003cspan citationid=\"CR33\" class=\"CitationRef\"\u003e1985\u003c/span\u003e; Yokoyama et al., \u003cspan citationid=\"CR110\" class=\"CitationRef\"\u003e2011\u003c/span\u003e; Kinoshita et al., \u003cspan citationid=\"CR47\" class=\"CitationRef\"\u003e2015\u003c/span\u003e). Peripherally administered MPTP enters the brain, which converts to the toxic metabolite 1-methyl-4-phenylpyridinium (MPP\u003csup\u003e+\u003c/sup\u003e). MPP\u003csup\u003e+\u003c/sup\u003e is taken up into dopamine (DA) neurons by DA transporters and inhibits mitochondrial complex I, leading to dopaminergic neuronal damage (Moore et al., \u003cspan citationid=\"CR65\" class=\"CitationRef\"\u003e2005\u003c/span\u003e; Meredith and Rademacher, 2011). The MPTP mouse model, particularly the C57BL/6 strain, has been widely accepted as the most used model of PD (Heikkila and Sonsalla, \u003cspan citationid=\"CR34\" class=\"CitationRef\"\u003e1987\u003c/span\u003e; Bhaduri et al., \u003cspan citationid=\"CR10\" class=\"CitationRef\"\u003e2018\u003c/span\u003e; Mustapha and Mat Taib, \u003cspan citationid=\"CR67\" class=\"CitationRef\"\u003e2021\u003c/span\u003e).\u003c/p\u003e \u003cp\u003eEthanol (EtOH) is one of the most widely used chemicals in the world. It primarily acts as a depressant to the central nervous system (CNS) at higher doses but can also act as a stimulant at lower doses (Gulick and Gould, \u003cspan citationid=\"CR30\" class=\"CitationRef\"\u003e2007\u003c/span\u003e). EtOH affects multiple neurotransmitter systems, including γ-aminobutyric acid, glutamate, endogenous opioids, acetylcholine, and DA (Vengeliene et al., \u003cspan citationid=\"CR102\" class=\"CitationRef\"\u003e2008\u003c/span\u003e), which can lead to changes in memory, attention, and locomotion (Silvers et al., \u003cspan citationid=\"CR86\" class=\"CitationRef\"\u003e2003\u003c/span\u003e; Mira et al., \u003cspan citationid=\"CR63\" class=\"CitationRef\"\u003e2019\u003c/span\u003e; Wang et al., \u003cspan citationid=\"CR105\" class=\"CitationRef\"\u003e2020\u003c/span\u003e). Among the various neurotransmitter systems involved in the pharmacological effects of EtOH, DA has received considerable attention due to its potential role in the motivational effects of EtOH (McBride et al., \u003cspan citationid=\"CR58\" class=\"CitationRef\"\u003e1991\u003c/span\u003e; Engel et al., \u003cspan citationid=\"CR22\" class=\"CitationRef\"\u003e1992\u003c/span\u003e; Brabant et al., \u003cspan citationid=\"CR12\" class=\"CitationRef\"\u003e2014\u003c/span\u003e). EtOH induces DA synthesis in the animal brain (Siciliano al., 2017), primarily by activating tyrosine hydroxylase (TH) (Tran et al., \u003cspan citationid=\"CR97\" class=\"CitationRef\"\u003e2017\u003c/span\u003e). Studies have shown that systemic EtOH (0.75\u0026ndash;2.25 g/kg) administration increases extracellular DA in the animal brain (Tang et al., \u003cspan citationid=\"CR91\" class=\"CitationRef\"\u003e2003\u003c/span\u003e; Melendez et al., \u003cspan citationid=\"CR60\" class=\"CitationRef\"\u003e2003\u003c/span\u003e). Similarly, direct perfusion of a high concentration of EtOH (500 or 860 mM) in the striatum increases extracellular levels of DA \u003cem\u003ein vivo\u003c/em\u003e in rats (Yim et al., \u003cspan citationid=\"CR109\" class=\"CitationRef\"\u003e1997\u003c/span\u003e) and mice (Jamal et al., \u003cspan citationid=\"CR41\" class=\"CitationRef\"\u003e2016\u003c/span\u003e). Our recent study found that a high concentration of EtOH (3.0 g/kg) could enhance DA metabolism in the mouse brain, as evidenced by an increase in 4-dihydroxyphenylacetic acid (DOPAC) and homovanillic acid (HVA) (Jamal et al., \u003cspan citationid=\"CR42\" class=\"CitationRef\"\u003e2022\u003c/span\u003e). Studies have shown that in humans, chronic low-to-moderate alcohol consumption is associated with a lower risk of PD (Liu et al., \u003cspan citationid=\"CR55\" class=\"CitationRef\"\u003e2013\u003c/span\u003e; Zhang et al., \u003cspan citationid=\"CR111\" class=\"CitationRef\"\u003e2014\u003c/span\u003e), while higher alcohol consumption is correlated with an increased risk of PD (Liu et al., \u003cspan citationid=\"CR55\" class=\"CitationRef\"\u003e2013\u003c/span\u003e). Therefore, determining whether low to moderate or high doses of EtOH in an acute exposure model can restore DA function in the brains of MPTP-treated mice, which serves as an animal model of PD, is of interest.\u003c/p\u003e \u003cp\u003eNicotine (Nic) is a widely used psychoactive drug often consumed in combination with other substances, such as EtOH. Nic can produce various CNS effects in both humans and animals (Ksir, \u003cspan citationid=\"CR51\" class=\"CitationRef\"\u003e1994\u003c/span\u003e; Le Foll and Goldberg, \u003cspan citationid=\"CR53\" class=\"CitationRef\"\u003e2009\u003c/span\u003e). The central effects of Nic are mediated by changes in the release of neurotransmitters, including DA (Toth et al., \u003cspan citationid=\"CR96\" class=\"CitationRef\"\u003e1992\u003c/span\u003e; Barazangi and Role, \u003cspan citationid=\"CR6\" class=\"CitationRef\"\u003e2001\u003c/span\u003e). Many studies have shown that Nic stimulates extracellular levels of DA, particularly in the nucleus accumbens (Mifsud et al., \u003cspan citationid=\"CR62\" class=\"CitationRef\"\u003e1989\u003c/span\u003e; Kleijn et al., \u003cspan citationid=\"CR48\" class=\"CitationRef\"\u003e2011\u003c/span\u003e), and enhances DA turnover and metabolism in the animal brain (Andersson et al., \u003cspan citationid=\"CR2\" class=\"CitationRef\"\u003e1981\u003c/span\u003e; Haikala et al., \u003cspan citationid=\"CR31\" class=\"CitationRef\"\u003e1986\u003c/span\u003e; Brazell et al., \u003cspan citationid=\"CR11\" class=\"CitationRef\"\u003e1990\u003c/span\u003e). Nic has also been shown to increase TH levels (Carr et al., \u003cspan citationid=\"CR15\" class=\"CitationRef\"\u003e1989\u003c/span\u003e; Mitchell et al., \u003cspan citationid=\"CR64\" class=\"CitationRef\"\u003e1993\u003c/span\u003e; Hiremagalur et al., \u003cspan citationid=\"CR37\" class=\"CitationRef\"\u003e1993\u003c/span\u003e) and DA release (Turner, \u003cspan citationid=\"CR99\" class=\"CitationRef\"\u003e2004\u003c/span\u003e; Kleijn et al., \u003cspan citationid=\"CR48\" class=\"CitationRef\"\u003e2011\u003c/span\u003e). A large body of experimental data supports the neuroprotective effects of Nic in PD models (Quik et al., \u003cspan citationid=\"CR75\" class=\"CitationRef\"\u003e2006\u003c/span\u003e; Cai et al., 2017; Nicholatos et al., \u003cspan citationid=\"CR68\" class=\"CitationRef\"\u003e2018\u003c/span\u003e). For example, Nic prevents MPTP-induced loss of striatal dopaminergic neurons and attenuates behavioral deficits (Yang et al., \u003cspan citationid=\"CR108\" class=\"CitationRef\"\u003e2019\u003c/span\u003e; Cai et al., 2017). Recently, Nic was found to improve MPTP-induced motor impairment and neuroapoptosis and enhance TH activity in the substantia nigra and striatal regions of PD mice (Ruan et al., \u003cspan citationid=\"CR79\" class=\"CitationRef\"\u003e2023\u003c/span\u003e). There is strong and consistent evidence that Nic is associated with a decreased risk of PD (Hernan et al., \u003cspan citationid=\"CR36\" class=\"CitationRef\"\u003e2002\u003c/span\u003e; Li et al., \u003cspan citationid=\"CR54\" class=\"CitationRef\"\u003e2015\u003c/span\u003e). However, the relationship between EtOH intake and PD remains controversial. Epidemiological studies have reported that EtOH is inversely associated with PD (Zhang et al., \u003cspan citationid=\"CR111\" class=\"CitationRef\"\u003e2014\u003c/span\u003e; Jimenez-Jimenez et al., \u003cspan citationid=\"CR45\" class=\"CitationRef\"\u003e2019\u003c/span\u003e). Therefore, in addition to Nic, we conducted a study on EtOH to determine its association with PD in mice.\u003c/p\u003e \u003cp\u003eEtOH and Nic are the two most commonly abused substances, and many people use them together. Combined exposure to EtOH and Nic has been shown to increase ventral tegmental DA neurons firing both \u003cem\u003ein vitro\u003c/em\u003e (Clark and Little, \u003cspan citationid=\"CR19\" class=\"CitationRef\"\u003e2004\u003c/span\u003e) and \u003cem\u003ein vivo\u003c/em\u003e (Tolu et al., \u003cspan citationid=\"CR95\" class=\"CitationRef\"\u003e2017\u003c/span\u003e) and enhance the release of DA in the nucleus accumbens compared to either drug alone (Tizabi et al., \u003cspan citationid=\"CR92\" class=\"CitationRef\"\u003e2002\u003c/span\u003e, \u003cspan citationid=\"CR94\" class=\"CitationRef\"\u003e2007\u003c/span\u003e). This suggests that the effects of EtOH and Nic may be additive when used together. Therefore, this study aimed to investigate whether administrating EtOH and Nic alone or in combination in mice could protect against MPTP-induced DA loss, a toxin known to induce PD in humans. The rationale for considering EtOH and Nic is based on previous findings that suggest mutual reinforcement between the two drugs (Larsson and Engel, \u003cspan citationid=\"CR52\" class=\"CitationRef\"\u003e2004\u003c/span\u003e) despite their different mechanisms of action and effects. However, no reports have examined the effects of combining EtOH and Nic in animal PD models, and the mechanisms underlying their effects, as well as whether the combination has a higher effect than either drug alone, have yet to be reported. To address this, we used an MPTP-induced PD mouse model to measure DA and its metabolites DOPAC, 3-methoxytyramine (3-MT), and HVA as well as TH and its phosphorylation at Ser31 in the striatum and hippocampus of C57BL/6N mice. The striatum, which receives dense dopaminergi\u003cem\u003ec\u003c/em\u003e projections, is a crucial region of the dopaminergic system. DA in the hippocampus plays a vital role in hippocampus-dependent learning and memory (Broussard et al., 2016; Bakhtiarzadeh et al., \u003cspan citationid=\"CR5\" class=\"CitationRef\"\u003e2023\u003c/span\u003e). Therefore, the depletion of hippocampal DA is likely to contribute to a deficit in long-term potentiation in PD models (Zhu et al., \u003cspan citationid=\"CR113\" class=\"CitationRef\"\u003e2012\u003c/span\u003e). To reverse the deficits in DA release and TH phosphorylation induced by MPTP, we administered EtOH and Nic alone or in combination to the mice via intraperitoneal (IP) injection. DA and its metabolites were simultaneously analyzed using high-performance liquid chromatography coupled to electrochemical detection (HPLC\u0026ndash;ECD), and TH and Ser31 phosphorylation were measured by western blotting. We hypothesized that the co-administration of EtOH and Nic would provide better protection in MPTP-treated mice than each compound alone.\u003c/p\u003e"},{"header":"Materials and Methods","content":"\u003cp\u003eAnimals\u003c/p\u003e \u003cp\u003eC57BL/6N mice were purchased from Japan SLC Inc. (Hamamatsu, Shizuoka). Mice were housed in groups of 4 and kept at 23\u0026thinsp;\u0026plusmn;\u0026thinsp;1\u0026deg;C with 12 h of light exposure (06:00\u0026ndash;18:00) per day. All experiments were conducted with male mice. Each mouse was 10\u0026ndash;12 weeks in age and weighed 23\u0026ndash;26 g. All the animal experiments were approved by the Institutional Animal Care and Use Committee of Kagawa University, Japan. All animal experiments should be carried out in accordance with the U.K. Animals (Scientific Procedures) Act, 1986 and associated guidelines, EU Directive 2010/63/EU for animal experiments and the National Research Council's Guide for the Care and Use of Laboratory Animals. Besides, all procedures performed in the study involving animals were in compliance with the ARRIVE guidelines.\u003c/p\u003e \u003cp\u003eMPTP injection\u003c/p\u003e \u003cp\u003eMice were randomly assigned to the A. vehicle group (n\u0026thinsp;=\u0026thinsp;6) or B. MPTP group (MPTP hydrochloride, Sigma-Aldrich, St. Louis, MO, USA). The vehicle group received an equal volume of 0.9% sodium chloride. The mice in the MPTP group received MPTP (20 mg/kg in saline, IP) injections twice a day with a 1 h interval for two consecutive days, resulting in a total dose of 80 mg/kg per mouse. The MPTP dosing regimen was chosen based on a previous report, with a slight modification (Sonsalla and Heikkila, \u003cspan citationid=\"CR88\" class=\"CitationRef\"\u003e1986\u003c/span\u003e). Mice remained in cages with free access to food and water. The lesions were allowed to stabilize for 7 days before the mice were subjected to an EtOH or Nic injection. All procedures involving MPTP were conducted in strict accordance with published safety and handling guidelines (Jackson-Lewis and Przedborski, \u003cspan citationid=\"CR40\" class=\"CitationRef\"\u003e2007\u003c/span\u003e).\u003c/p\u003e \u003cp\u003eOpen field activity\u003c/p\u003e \u003cp\u003eThe open field activity (OFA) was performed on day 1 before the first vehicle and MPTP injection and on days 3, 5, and 8 after the first vehicle and MPTP treatment. The open field task was conducted in a square Plexiglas box (dimensions: 31 cm length, 29 cm width, 30 cm height), enclosed by white paper. The mouse was placed in the center of the testing chamber and allowed to move freely for 10 min for adaptation, followed by a 10-min recording period. The movements were recorded using an overhead video tracking system and stored on a computer. After the experiment, computer-tracking programs were used to analyze the total distance traveled and velocity over time. The apparatus was cleaned with a cotton pad soaked in 10% EtOH after each 10-min session and dried between each test to eliminate odor trails.\u003c/p\u003e \u003cp\u003eExperimental groups\u003c/p\u003e \u003cp\u003eThe MPTP-treated mice were divided into eight groups, with six mice in each group (n\u0026thinsp;=\u0026thinsp;6/group). The groups were as follows: a) saline, b) EtOH at 1.0 g/kg (20% w/v), c) EtOH at 2.0 g/kg, d) EtOH at 3.0 g/kg, e) Nic at 0.5 mg/kg (freebase), f) Nic at 1.0 mg/kg, g) Nic at 2.0 mg/kg, and h) EtOH at 2.0 g/kg\u0026thinsp;+\u0026thinsp;Nic 1.0 mg/kg. All injections were administered via IP on day 8 after the first injection of MPTP. Mice were euthanized 1 h after injection. The doses of Nic and EtOH were adjusted based on the results of previous work (Gubner and Phillips, \u003cspan citationid=\"CR29\" class=\"CitationRef\"\u003e2015\u003c/span\u003e; Jamal et al., \u003cspan citationid=\"CR42\" class=\"CitationRef\"\u003e2022\u003c/span\u003e). EtOH was administered at a concentration that produced physiologically relevant blood concentrations, reaching approximately 8 to 40 mM at 60 min in the EtOH 1.0 to 4.0 g/kg groups, respectively (Jamal et al., \u003cspan citationid=\"CR41\" class=\"CitationRef\"\u003e2016\u003c/span\u003e). EtOH and Nic hydrogen tartrate (Sigma-Aldrich Corp., St. Louis, MO, USA) was dissolved in physiological saline for all experiments.\u003c/p\u003e \u003cp\u003eBrain tissue preparation\u003c/p\u003e \u003cp\u003eBrains were removed and rinsed with ice-cold isotonic saline. One half of the striatum and hippocampus was placed in a 2-ml tube for \u003cem\u003eex vivo\u003c/em\u003e analysis of DA and its metabolites using HPLC-ECD, and the other half was placed in another 2-ml tube for protein analysis. The tubes were stored at \u0026minus;\u0026thinsp;80\u0026deg;C until use.\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e HPLC-ECD\u003c/p\u003e \u003cp\u003eThe tissue samples were homogenized using a Polytron\u0026reg; homogenizer (Kinematica AG, Lucerne, Switzerland) in 0.2 M perchloric acid (10 \u0026micro;l/mg of tissue), which included 100 \u0026micro;M EDTA-2Na and 1 ng/\u0026micro;l (10 ul) isoproterenol (Tokyo Company Industry Ltd, Japan) as an internal standard (IS). The samples were kept on ice for 30 min and then centrifuged at 15,000 x g at 4\u0026deg;C for 15 min. The supernatants were filtered through 0.45 \u0026micro;m Minisart sterile filters (Sartorius Stedim Biotech GmbH, Germany) and mixed with 1 M Na-acetate to adjust the pH to 3.0. 10 \u0026micro;L of the resulting solution was injected into the HPLC-ECD to determine the levels of DA and its metabolites DOPAC, 3-MT and HVA. To determine the \u003cem\u003eex vivo\u003c/em\u003e concentrations of DA and its metabolites in the brain, we used an HPLC system equipped with an ECD-300 (Eicom, Japan). The main operative conditions for HPLC were as follows: column (EicompaK SC-5ODS; 3.0 mm \u0026times; 150 mm), oven temperature of 25\u0026deg;C, detector, oxidation potential (+\u0026thinsp;750 mV versus Ag/AgCl reference analytical electrode), mobile phase: 83% citrate-acetate buffer (pH 3.5) containing 17% methanol, 190 mg/l sodium octane sulfonate and 5 mg/l EDTA-2Na at a flow rate of 0.23 ml/min. The samples were analyzed for 30 min. The chromatograms were recorded using PowerChrom software version 2.5 (eDAQ Pty Ltd., Densitone East, Australia). Stock standard solutions of 1.0 ng/\u0026micro;l DA and its metabolites were purchased from Eicom (Japan) and stored at 4\u0026deg;C until use.\u003c/p\u003e \u003cp\u003eWestern blotting\u003c/p\u003e \u003cp\u003eThe other half of the striatum and hippocampus were homogenized using a Polytron\u0026reg; homogenizer in 0.4 ml of RIPA lysis buffer (Santa Cruz Biotechnology, Inc., Dallas, TX, USA). Added phenylmethylsulfonyl fluoride, sodium orthovanadate, and protease inhibitor cocktail (4 \u0026micro;l each; Santa Cruz Biotechnology, Inc.) to each tube. After centrifugation at 10,000 \u0026times; \u003cem\u003eg\u003c/em\u003e at 4\u0026deg;C for 10 min, the supernatant was used for Western blot analysis. The protein content of the supernatant was determined using the Bradford assay with bovine serum albumin as the standard (Bio-Rad Laboratories, Inc., Hercules, CA, USA). Samples were subjected to 10% sodium dodecyl sulfate-polyacrylamide gel electrophoresis with molecular weight markers (Bio-Rad Laboratories, Inc.), and then transferred to polyvinylidene difluoride membranes. The membrane was blocked overnight with 5% skim milk in phosphate-buffered saline at 4\u0026deg;C and then incubated with the following primary antibodies: rabbit anti-TH (1:4000; Cell Signaling Technology, #2792), rabbit anti-phospho-Ser31 (1:1000; Cell Signaling, #3370), and mouse anti-β-actin (1:2000; Wako Pure Chemical Industries, Ltd., Osaka, Japan). The membrane was then incubated with corresponding horseradish peroxidase-linked secondary antibodies. Band intensities were evaluated using an ImageQuant LAS-4000 chemiluminescent imager (GE Healthcare, Tokyo, Japan). The relative protein expressions were normalized to those of β-actin in each sample.\u003c/p\u003e \u003cdiv id=\"Sec3\" class=\"Section2\"\u003e \u003ch2\u003eStatistical analysis\u003c/h2\u003e \u003cp\u003eData were expressed as the mean\u0026thinsp;\u0026plusmn;\u0026thinsp;SEM. Statistical analyses were performed by using a one-way analysis of variance (ANOVA) followed by a post hoc Tukey\u0026ndash;Kramer test. The Student\u0026rsquo;s \u003cem\u003et\u003c/em\u003e-test was used to compare the MPTP and vehicle groups. The significance level for the post hoc tests was set at P\u0026thinsp;\u0026lt;\u0026thinsp;0.05. All analyses were conducted using GraphPad Prism software version 5.0 (GraphPad, La Jolla, CA, USA). \u003cem\u003eP\u003c/em\u003e values less than 0.05 were considered statistically significant. The percentage change from the vehicle was calculated using the formula: (vehicle \u0026ndash; MPTP) / vehicle \u0026times; 100. The percentage change from MPTP was calculated using the formula: (MPTP\u0026thinsp;\u0026minus;\u0026thinsp;treated) / MPTP \u0026times; 100.\u003c/p\u003e \u003c/div\u003e"},{"header":"Results","content":"\u003cp\u003eEffects of MPTP on locomotion, body weight, and mortality\u003c/p\u003e \u003cp\u003eThe OFA test evaluated spontaneous motor activity in a novel environment. No notable differences in OFA were found between mice treated with MPTP and those treated with a vehicle (MPTP-free) on days 3, 5, and 8, as shown in Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eA\u0026ndash;B. Therefore, the MPTP-treated mice exhibited motor behavior similar to the vehicle group. No motor behavioral measures were performed in mice subjected to similar MPTP and drug treatments. Body weights were measured before MPTP treatment and on day 7 after initiation of MPTP treatment. No considerable difference in body weight was observed between MPTP and vehicle mice on day 7 after MPTP treatment, as shown in Table\u0026nbsp;1A. These findings are consistent with a previous study that demonstrated that subacute administration of MPTP (30 mg/kg) had no significant effect on mouse weight or motor impairments in the OFA test (Zhang et al., \u003cspan citationid=\"CR112\" class=\"CitationRef\"\u003e2017\u003c/span\u003e). MPTP-treated mice had a mortality rate of 9.3%, as shown in Table\u0026nbsp;1B.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEffects of MPTP on striatal DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analyses (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eA) revealed a significant decrease in the levels of DA (by 82.5%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, \u003cem\u003et\u003c/em\u003e-test) and its metabolites DOPAC (by 70.4%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001), 3-MT (by 45.7%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001) and HVA (by 68.1%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001) in mice treated with MPTP compared to those in the vehicle-treated mice. Western blotting was performed to measure the protein levels of TH and Ser31 in MPTP-treated mice (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eB). Consistent with the changes in DA and its metabolites, MPTP intoxication considerably reduced TH (by 26.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, \u003cem\u003et\u003c/em\u003e-test) and Ser31 (by 54.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001) expression levels compared to those in the vehicle-treated mice.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEffects of MPTP on hippocampal DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analyses (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eA) revealed that MPTP treatment resulted in a significant decrease in the levels of DA (by 27.7%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, \u003cem\u003et\u003c/em\u003e-test) and its metabolite HVA (by 42.8%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001) compared to those treated with the vehicle, in which a trace to no detection of DOPAC and 3-MT was observed. Western blotting was performed to measure the protein levels of TH and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eB). The results showed a significant reduction in TH (41.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, \u003cem\u003et\u003c/em\u003e-test) levels in MPTP-treated mice compared to those in the vehicle-treated mice. Similarly, the protein levels of Ser31 (53.1%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001) significantly decreased in MPTP-treated mice compared to those in the vehicle-treated mice.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEtOH ameliorated the MPTP-induced striatal deficits in DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003eAs shown in Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eA, administration of EtOH at 2.0 and 3.0 g/kg significantly attenuated the MPTP-induced depletion of \u003cem\u003eex vivo\u003c/em\u003e DA [F(3,18)\u0026thinsp;=\u0026thinsp;10.979, by 139.4%, p\u0026thinsp;=\u0026thinsp;0.006, EtOH 2.0 g/kg; by 158.7%, p\u0026thinsp;=\u0026thinsp;0.001, EtOH 3.0 g/kg, one-way ANOVA], DOPAC [F(3,18)\u0026thinsp;=\u0026thinsp;13.940, by 135.4%, p\u0026thinsp;=\u0026thinsp;0.015, EtOH 2.0 g/kg; by 167.5%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg], and HVA [F(3,18)\u0026thinsp;=\u0026thinsp;22.248, by 115.9%, p\u0026thinsp;=\u0026thinsp;0.002, EtOH 2.0 g/kg; by 137.6%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg] compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on DA (p\u0026thinsp;=\u0026thinsp;0.940), DOPAC (p\u0026thinsp;=\u0026thinsp;0.740) or HVA (p\u0026thinsp;=\u0026thinsp;0.523). We next used western blotting to test the change in TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eC) after EtOH administration in MPTP-treated mice. EtOH administration significantly restored the MPTP-induced depletion of TH [F(3,18)\u0026thinsp;=\u0026thinsp;40.110, by 134.2%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 2.0 g/kg; 271.1%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg, one-way ANOVA] and Ser31 [F(3,18)\u0026thinsp;=\u0026thinsp;38.405, 27.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 2.0 g/kg; 50.4%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg] expression compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on TH (p\u0026thinsp;=\u0026thinsp;0.994) or Ser31 (p\u0026thinsp;=\u0026thinsp;0.197) expression.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEtOH ameliorated the MPTP-induced hippocampal deficits in DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003eAs shown in Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eA, EtOH at 2.0 and 3.0 g/kg significantly reduced the MPTP-induced decrease in the levels of \u003cem\u003eex vivo\u003c/em\u003e DA [F(3,18)\u0026thinsp;=\u0026thinsp;12.389, by 59.3%, p\u0026thinsp;=\u0026thinsp;0.014, EtOH 2.0 g/kg; by 90.1%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg, one-way ANOVA] and HVA [F(3,18)\u0026thinsp;=\u0026thinsp;41.442, by 37.1%, p\u0026thinsp;=\u0026thinsp;0.036, EtOH 2.0 g/kg; by 107.5%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg] compared to those in the MPTP group. EtOH at 1.0 g/kg had no significant effect on DA (p\u0026thinsp;=\u0026thinsp;0.947) or HVA (p\u0026thinsp;=\u0026thinsp;0.280). We next used western blotting to test the change in TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eC) after EtOH administration in MPTP-treated mice. EtOH administration significantly restored the MPTP-induced impairment in TH [F(3,18)\u0026thinsp;=\u0026thinsp;11.739, 58.6%, p\u0026thinsp;=\u0026thinsp;0.002, EtOH 2.0 g/kg; 85.6%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg, one-way ANOVA] and Ser31 [F(3,18)\u0026thinsp;=\u0026thinsp;27.669, 63.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 2.0 g/kg; 91.3%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, EtOH 3.0 g/kg] expression. EtOH at 1.0 g/kg had no significant effect on TH (p\u0026thinsp;=\u0026thinsp;0.277) or Ser31 (p\u0026thinsp;=\u0026thinsp;0.692) expression.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eNic ameliorated the MPTP-induced striatal deficits of DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analysis (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003eA) showed that Nic treatment at doses of 1.0 and 2.0 mg/kg significantly attenuated the MPTP-induced decline of DA [F(3,17)\u0026thinsp;=\u0026thinsp;8.010, by 99.2%, p\u0026thinsp;=\u0026thinsp;0.046, Nic 1.0 mg/kg; by 145.3%, p\u0026thinsp;=\u0026thinsp;0.017, Nic 2.0 mg/kg], DOPAC [F(3,17)\u0026thinsp;=\u0026thinsp;14.469, by 106.6%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 1.0 mg/kg; by 121.8%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 2.0 mg/kg], and HVA [F(3,17)\u0026thinsp;=\u0026thinsp;9.692, by 88.1%, p\u0026thinsp;=\u0026thinsp;0.044, Nic 1.0 mg/kg; by 133.9%, p\u0026thinsp;=\u0026thinsp;0.001, Nic 2.0 mg/kg] contents compared to those in the MPTP group. We next used western blotting to test the change in TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003eC) protein levels after Nic administration in MPTP-treated mice. Nic administration significantly restored the MPTP-induced suppression of TH [F(3,17)\u0026thinsp;=\u0026thinsp;17.325, 80.3%, p\u0026thinsp;=\u0026thinsp;0.002, Nic1.0 mg/kg; 119.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 2.0 mg/kg, one-way ANOVA] and Ser31 [F(3,17)\u0026thinsp;=\u0026thinsp;12.963, 23.1%, p\u0026thinsp;=\u0026thinsp;0.388, Nic 1.0 mg/kg; 61.4%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 2.0 mg/kg] expression compared to those in the MPTP group. Nic at a dose of 0.5 mg/kg did not alter the expression of either TH (p\u0026thinsp;=\u0026thinsp;0.959) or Ser31 (p\u0026thinsp;=\u0026thinsp;0.319).\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eNic ameliorated the MPTP-induced hippocampal deficits of DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analyses (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003eA) showed that Nic treatment at doses of 1.0 and 2.0 mg/kg significantly reduced the MPTP-induced depletion of DA [F(3,17)\u0026thinsp;=\u0026thinsp;8.338, by 63.3%, p\u0026thinsp;=\u0026thinsp;0.048, Nic 1.0 mg/kg; by 98.7%, p\u0026thinsp;=\u0026thinsp;0.001, Nic 2.0 mg/kg, one-way ANOVA) and HVA [ (3,17)\u0026thinsp;=\u0026thinsp;8.547, by 31.3%, p\u0026thinsp;=\u0026thinsp;0.049, Nic 1.0 mg/kg; by 42.4%, p\u0026thinsp;=\u0026thinsp;0.045, Nic 2.0 mg/kg] tissue contents compared to those in the MPTP group. Neither EtOH nor Nic dose altered the 3-MT content in either studied brain region. We examined the changes in TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003eC) protein levels after Nic administration in MPTP-treated mice via western blotting. Nic administration consistently restored the MPTP-induced suppression of TH [F(3,18)\u0026thinsp;=\u0026thinsp;15.585, 72.8%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 1.0 mg/kg; 97.2%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 2.0 mg/kg, one-way ANOVA] and Ser31 [F(3,18)\u0026thinsp;=\u0026thinsp;15.712, 61.4%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic1.0 mg/kg; 89.9%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001, Nic 2.0 mg/kg] expression compared to those in the MPTP group. Nic at a dose of 0.5 mg/kg did not alter the expression of either TH (p\u0026thinsp;=\u0026thinsp;0.334) or Ser31 (p\u0026thinsp;=\u0026thinsp;0.832).\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEtOH and Nic combination further ameliorated the MPTP-induced deficits of striatal DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analysis (Fig.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e8\u003c/span\u003eA) showed that the combination of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) produced a significant increase in DA [F(3,16)\u0026thinsp;=\u0026thinsp;24.664, by 25.6%, p\u0026thinsp;=\u0026thinsp;0.048 vs EtOH 2.0 g/kg, one-way ANOVA; by 51.1%, p\u0026thinsp;=\u0026thinsp;0.003 vs Nic 1.0 mg/kg], DOPAC [F(3,16)\u0026thinsp;=\u0026thinsp;16.644, by 51.2%, p\u0026thinsp;=\u0026thinsp;0.021 vs EtOH 2.0 g/kg; by 72.2%, p\u0026thinsp;=\u0026thinsp;0.004 vs Nic 1.0 mg/kg], and HVA [F(3,16)\u0026thinsp;=\u0026thinsp;33.799, 21.4%, p\u0026thinsp;=\u0026thinsp;0.049 vs EtOH 2.0 g/kg; by 39.5%, p\u0026thinsp;=\u0026thinsp;0.002 vs Nic 1.0 mg/kg] tissue contents compared to EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone. Western blotting was performed to measure the expression levels of TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e8\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e8\u003c/span\u003eC) in the combined EtOH\u0026thinsp;+\u0026thinsp;Nic group. Similarly, EtOH and Nic led to a significant increase in TH expression [F(3,18)\u0026thinsp;=\u0026thinsp;10.597, by 45.8%, p\u0026thinsp;=\u0026thinsp;0.048 vs EtOH 2.0 g/kg; by 89.4%, p\u0026thinsp;=\u0026thinsp;0.004 vs Nic 1.0 mg/kg, one-way ANOVA] and Ser31 phosphorylation [F(3,18)\u0026thinsp;=\u0026thinsp;74.627, by 93.5%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs EtOH 2.0 g/kg; by 101.2%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs Nic 1.0 mg/kg].\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eEtOH and Nic combination further ameliorated the MPTP-induced deficits of hippocampal DA and its metabolites, TH and Ser31\u003c/p\u003e \u003cp\u003e \u003cem\u003eEx vivo\u003c/em\u003e analysis (Fig.\u0026nbsp;\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e9\u003c/span\u003eA) showed that the combination of the two treatments (EtOH, 2.0 g/kg\u0026thinsp;+\u0026thinsp;Nic, 1.0 mg/kg) resulted in a significant increase in DA [F(3,18)\u0026thinsp;=\u0026thinsp;20.013, by 46.1%, p\u0026thinsp;=\u0026thinsp;0.006 vs EtOH 2.0 g/kg; by 42.5%, p\u0026thinsp;=\u0026thinsp;0.002 vs Nic 1.0 mg/kg, one-way ANOVA] and HVA [F(3,18)\u0026thinsp;=\u0026thinsp;8.480, 54.6%, p\u0026thinsp;=\u0026thinsp;0.049 vs EtOH 2.0 g/kg; by 61.3%, p\u0026thinsp;=\u0026thinsp;0.045 vs Nic 1.0 mg/kg] tissue contents compared to EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone. Western blotting was performed to measure the expression levels of TH (Fig.\u0026nbsp;\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e9\u003c/span\u003eB) and Ser31 (Fig.\u0026nbsp;\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e9\u003c/span\u003eC) in the combined EtOH\u0026thinsp;+\u0026thinsp;Nic group. Similarly, the combination significantly increased the levels of TH [F(3,18)\u0026thinsp;=\u0026thinsp;116.087, by 92.3%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs EtOH 2.0 g/kg; by 76.5%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs Nic 1.0 mg/kg, one-way ANOVA] and Ser31 [F(3,18)\u0026thinsp;=\u0026thinsp;43.100, by 51.7%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs EtOH 2.0 g/kg; by 54.8%, p\u0026thinsp;\u0026lt;\u0026thinsp;0.001 vs Nic 1.0 mg/kg]. Clearly, these findings show that EtOH and Nic modulate the MPTP-induced deficit of dopaminergic function in combination, suggesting further attenuation in these parameters.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e"},{"header":"Discussion","content":"\u003cp\u003eWe used mice that were administered MPTP as a sub-acute model to investigate whether EtOH and Nic alone or in combination could restore the depletion of dopaminergic function caused by MPTP in the striatum and hippocampus. To accomplish this, we evaluated several measures, such as DA, DOPAC, 3-MT, HVA, TH, and Ser31 phosphorylation, confirming the effects of EtOH and/or Nic in counteracting the dramatic reduction of brain dopaminergic function after MPTP treatment. We found that MPTP decreased DA, DOPAC, 3-MT, and HVA, and the expression of the DA-synthesizing enzyme TH in both the striatum and hippocampus. However, treatment with EtOH (2.0 or 3.0 g/kg) or Nic (1.0 or 2.0 mg/kg) alone noticeably reversed this effect, as evidenced by increased DA and its metabolite (DOPAC and HVA) tissue contents. Western blotting further supported this result, showing that EtOH and Nic alone increased TH expression and Ser31 phosphorylation. The EtOH- or Nic-induced increase in the levels of DOPAC and HVA indicated that part of the DA was further metabolized to DOPAC and HVA. Notably, combined treatment with EtOH (2.0 g/kg) and Nic (1.0 mg/kg) showed a significant increase in DA, DOPAC, and HVA tissue contents accompanied by an increase in TH expression and Ser31 phosphorylation. This increase was greater when EtOH and Nic were administered concurrently than when these drugs were administered separately. Neither EtOH at 1.0 g/kg nor Nic at 0.5 mg/kg altered any of the dopaminergic parameters studied in the MPTP-treated mice, suggesting that these concentrations are insufficient to restore DA neurons. None of these treatments modified the 3-MT level in either brain region examined. Our findings indicate that EtOH and Nic alone preserve dopaminergic function and TH expression that were lost with MPTP treatment. Notably, the combination treatment resulted in an additive increase, suggesting that the co-application of EtOH and Nic has potential as a treatment strategy to restore dopaminergic function in PD.\u003c/p\u003e \u003cp\u003eMice that received MPTP (cumulative dose; 80 mg/kg of MPTP) exhibited a significant reduction in the levels of DA and its metabolites. In particular, DA levels in the striatum decreased by 82.5% (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eA) and in the hippocampus by 27.7% (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eA), which aligns with a previous study of MPTP-treated mice (Itzhak et al., \u003cspan citationid=\"CR39\" class=\"CitationRef\"\u003e1999\u003c/span\u003e). In addition, MPTP caused a decrease in TH protein expression, with a 26.9% reduction in the striatum (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eB) and a 41.9% reduction in the hippocampus (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eB), consistent with previous studies on MPTP-induced PD mice (von Bohlen und Halbach et al., 2005; Alam et al., \u003cspan citationid=\"CR1\" class=\"CitationRef\"\u003e2017\u003c/span\u003e). In addition to DA depletion, the neurotoxic effect of MPTP on motor activity depends on several factors, including the administration route, the MPTP dose, sex, and strain (Sedelis et al., \u003cspan citationid=\"CR83\" class=\"CitationRef\"\u003e2001\u003c/span\u003e). Mice treated with MPTP did not show any motor activity deficits on days 3, 5, and 8 after MPTP treatment in the open field box (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eB). One possible explanation could be that, in these cases, testing was performed when functional recovery might have already occurred. Interestingly, some reports have indicated that MPTP-treated mice continue to exhibit reduced locomotion and rearing activity even weeks later (Arai et al., \u003cspan citationid=\"CR3\" class=\"CitationRef\"\u003e1990\u003c/span\u003e; Fornai et al., \u003cspan citationid=\"CR24\" class=\"CitationRef\"\u003e2005\u003c/span\u003e). However, many other studies have shown no changes in locomotion or even increased activity in MPTP-treated mice (Willis et al., 1987; Chia et al., \u003cspan citationid=\"CR18\" class=\"CitationRef\"\u003e1996\u003c/span\u003e; Itzhak et al., \u003cspan citationid=\"CR39\" class=\"CitationRef\"\u003e1999\u003c/span\u003e; Zhang et al., \u003cspan citationid=\"CR112\" class=\"CitationRef\"\u003e2017\u003c/span\u003e), which supports our findings. Therefore, it is reasonable to suggest that a loss of 82.5% DA alone cannot result in PD-like motor deficits in mice. This is supported by a previous study demonstrating that MPTP-induced motor deficits require a loss of DA and a concurrent loss of norepinephrine (Rommelfanger et al., \u003cspan citationid=\"CR77\" class=\"CitationRef\"\u003e2007\u003c/span\u003e). Furthermore, another study has indicated that serotonin helps regulate motor activity (Mitra et al., \u003cspan citationid=\"CR61\" class=\"CitationRef\"\u003e1992\u003c/span\u003e).\u003c/p\u003e \u003cp\u003eIn this study, EtOH and Nic were administered on day 8 after development of striatal and hippocampal damage that MPTP caused. This regimen was chosen to investigate whether EtOH and Nic could contribute to the reduced PD incidence. We tested three different doses of EtOH (1.0\u0026ndash;3.0 g/kg) and Nic (0.5\u0026ndash;2.0 mg/kg) alone or in combination with DA and its metabolites and TH as a new entity in MPTP-treated mice. First, we examined the individual effects of EtOH and Nic and found that combining them had advantages, which led us to test EtOH and Nic combined. With the current dosing schedule of EtOH and Nic, there was a potential restoration of dopaminergic function in the striatum and hippocampus, as both drugs improved function after an injury caused by MPTP. The neurotoxic effects of MPTP likely caused this damage.\u003c/p\u003e \u003cp\u003ePreviously, we and other researchers showed that EtOH and Nic alone could increase DA and its metabolites, DOPAC and HVA in the animal brain (Haikala et al., \u003cspan citationid=\"CR31\" class=\"CitationRef\"\u003e1986\u003c/span\u003e; Brazell, et al., \u003cspan citationid=\"CR11\" class=\"CitationRef\"\u003e1990\u003c/span\u003e; Saeed Dar and Wooles, \u003cspan citationid=\"CR80\" class=\"CitationRef\"\u003e1984\u003c/span\u003e; Jamal et al., \u003cspan citationid=\"CR42\" class=\"CitationRef\"\u003e2022\u003c/span\u003e; Yim et al., \u003cspan citationid=\"CR109\" class=\"CitationRef\"\u003e1997\u003c/span\u003e). There is abundant evidence to demonstrate the rewarding and reinforcing properties of Nic (Xue et al., \u003cspan citationid=\"CR107\" class=\"CitationRef\"\u003e2020\u003c/span\u003e; Chellian et al., \u003cspan citationid=\"CR17\" class=\"CitationRef\"\u003e2021\u003c/span\u003e), which are mediated, in part, by its effects on mesolimbic DA neurons (Sun and Laviolette, \u003cspan citationid=\"CR89\" class=\"CitationRef\"\u003e2014\u003c/span\u003e; Kleijn et al., \u003cspan citationid=\"CR48\" class=\"CitationRef\"\u003e2011\u003c/span\u003e). EtOH can potentiate some of the rewarding and behavioral effects of Nic in humans and animals (Rose et al., \u003cspan citationid=\"CR78\" class=\"CitationRef\"\u003e2004\u003c/span\u003e; Meck, \u003cspan citationid=\"CR59\" class=\"CitationRef\"\u003e2007\u003c/span\u003e). Similarly, Nic can enhance the reinforcing and DA-activating properties of EtOH (S\u0026ouml;derpalm et al., \u003cspan citationid=\"CR87\" class=\"CitationRef\"\u003e2000\u003c/span\u003e). EtOH and Nic modify the activity of dopaminergic neurons in the ventral tegmental area, potentially leading to increased DA release in the nucleus accumbens and affecting the reward system (Morel et al., 2018). The fact that both EtOH and Nic target similar neurotransmitter systems suggests the possibility of synergistic interactions between the two substances (Tizabi et al., \u003cspan citationid=\"CR94\" class=\"CitationRef\"\u003e2007\u003c/span\u003e; Truitt et al., \u003cspan citationid=\"CR98\" class=\"CitationRef\"\u003e2015\u003c/span\u003e). Consistent with this hypothesis, the combination of EtOH and Nic can result in heightened reward and neuroadaptation (Gubner and Phillips, \u003cspan citationid=\"CR29\" class=\"CitationRef\"\u003e2015\u003c/span\u003e; Waeiss et al., \u003cspan citationid=\"CR104\" class=\"CitationRef\"\u003e2020\u003c/span\u003e). Therefore, the combined application of EtOH and Nic is of particular interest because, despite their increasing use, there is limited information on the effects of combining these substances in PD models. This paper provides evidence that the combination of EtOH and Nic can have better restorative effects by preserving DA function in mice treated with MPTP. The findings reported here highlight three novel observations.\u003c/p\u003e \u003cp\u003eFirst, MPTP-treated mice that received EtOH (2.0 or 3.0 g/kg) treatment showed increased levels of DA and its metabolites DOPAC and HVA in the striatum and hippocampus compared to those in the MPTP group (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003e,\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eA). Similarly, EtOH at doses of 2.0 and 3.0 g/kg increased the expression of TH and Ser31 phosphorylation in the brain regions studied in MPTP-treated mice (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003e,\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eB-C). Notably, increased availability of TH might lead to higher levels of DA in specific brain regions. Thus, an EtOH-induced increase in DA and its metabolites might result from increased expression and phosphorylation of TH. Several reports, including ours, have shown that EtOH significantly increases DA and its metabolites in the brains of mice and Zebrafish (Chatterjee et al., \u003cspan citationid=\"CR16\" class=\"CitationRef\"\u003e2014\u003c/span\u003e; Saeed Dar and Wooles, \u003cspan citationid=\"CR80\" class=\"CitationRef\"\u003e1984\u003c/span\u003e; Jamal et al., \u003cspan citationid=\"CR42\" class=\"CitationRef\"\u003e2022\u003c/span\u003e). Furthermore, EtOH increased TH protein and activity in mammals, including mice (Baizer et al. \u003cspan citationid=\"CR4\" class=\"CitationRef\"\u003e1981\u003c/span\u003e) and rats (Masserano et al., \u003cspan citationid=\"CR57\" class=\"CitationRef\"\u003e1983\u003c/span\u003e). Even high concentrations of EtOH (25\u0026ndash;200 mM) can enhance TH protein and mRNA expression in the N1E-115 neuronal cell line \u003cem\u003ein vitro\u003c/em\u003e (Gayer et al., \u003cspan citationid=\"CR26\" class=\"CitationRef\"\u003e1991\u003c/span\u003e). Based on these findings, we suggest that the EtOH-induced increase in DA may occur through increased TH activity via an increase in TH protein expression and TH phosphorylation (Tran et al., \u003cspan citationid=\"CR97\" class=\"CitationRef\"\u003e2017\u003c/span\u003e). This study is the first to report the effects of EtOH in MPTP-treated mice, and these findings provide substantial evidence that EtOH at medium to high doses (2.0 or 3.0 g/kg) has restorative effects on the loss of striatal and hippocampal DA and TH caused by MPTP.\u003c/p\u003e \u003cp\u003eEvidence indicates that prolonged and excessive consumption of EtOH contributes to various neurodegenerative diseases, including PD (Kamal et al., \u003cspan citationid=\"CR46\" class=\"CitationRef\"\u003e2020\u003c/span\u003e; Peng et al., \u003cspan citationid=\"CR70\" class=\"CitationRef\"\u003e2020\u003c/span\u003e). Therefore, a potential link between excessive EtOH intake and the development of PD is being hypothesized. Conversely, EtOH at low to moderate concentrations (10\u0026ndash;30 mM) may have protective effects \u003cem\u003ein vitro\u003c/em\u003e against various toxicants (Belmadani et al., \u003cspan citationid=\"CR8\" class=\"CitationRef\"\u003e2004\u003c/span\u003e; Ramlochansingh et al., \u003cspan citationid=\"CR76\" class=\"CitationRef\"\u003e2011\u003c/span\u003e). In some other studies, EtOH (1.0 g/kg) and its first toxic metabolite, acetaldehyde (AcH, 250 mg/kg), increased MPTP toxicity in the brains of mice (Corsini et al., \u003cspan citationid=\"CR20\" class=\"CitationRef\"\u003e1985\u003c/span\u003e; Zuddas et al., \u003cspan citationid=\"CR114\" class=\"CitationRef\"\u003e1989a\u003c/span\u003e). This was evident through the depletion of DA and its metabolites DOPAC and HVA and the loss of TH-immunoreactive cells. However, in these experiments, EtOH or AcH was administered 10 min before MPTP (30 mg/kg), and the treatment of EtOH/AcH\u0026thinsp;+\u0026thinsp;MPTP was repeated after 16 h. Their findings suggest that the effects of EtOH on MPTP neurotoxicity might be related to AcH formation. The discrepancies between those results and ours regarding the effects of EtOH could be attributed to the dose and frequency of MPTP administration, and most importantly, the dose and timing of EtOH administration.\u003c/p\u003e \u003cp\u003eThe mechanism of the restorative effects of EtOH on MPTP-induced DA depletion in the brain is largely unknown at this time. A previous study showed that AcH at a dose of 250 mg/kg could increase MPP\u003csup\u003e+\u003c/sup\u003e retention in the striatum of MPTP-treated mice, likely due to slow clearance of MPP\u003csup\u003e+\u003c/sup\u003e (Zuddas et al., \u003cspan citationid=\"CR115\" class=\"CitationRef\"\u003e1989b\u003c/span\u003e). This could allow a large amount of MPP\u003csup\u003e+\u003c/sup\u003e to be stored inside DA neurons, leading to toxic effects. However, EtOH at a dose of 1.0 g/kg does not appear to modify MPP\u003csup\u003e+\u003c/sup\u003e retention levels in the striatum compared to those with MPTP alone (Zuddas et al., \u003cspan citationid=\"CR115\" class=\"CitationRef\"\u003e1989b\u003c/span\u003e), suggesting that EtOH at this dose does not considerably affect the clearance of MPP\u003csup\u003e+\u003c/sup\u003e in the brain. Therefore, in our study, EtOH at 1.0 g/kg did not restore the deficit of DA and its metabolite contents and TH caused by MPTP in the brain (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003e\u0026ndash;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003e). Based on these findings, we hypothesize that a moderate to high dose of EtOH (2.0 or 3.0 g/kg) reduces interference with the clearance of MPP\u003csup\u003e+\u003c/sup\u003e, leading to a decreased MPP\u003csup\u003e+\u003c/sup\u003e retention level in the brain, which in turn, may attenuate dopaminergic loss. In addition, EtOH (4.0 g/kg) itself attenuates DA clearance, resulting in increased DA levels (Shnitko et al., \u003cspan citationid=\"CR84\" class=\"CitationRef\"\u003e2014\u003c/span\u003e). Another possible explanation for the restoration of DA function is that EtOH resists MPTP/MPP\u003csup\u003e+\u003c/sup\u003e neurotoxicity, possibly by activating \u003cem\u003eTH\u003c/em\u003e gene expression or phosphorylation. TH phosphorylation at Ser31 or Ser40 modulates DA availability (Salvatore et al., \u003cspan citationid=\"CR81\" class=\"CitationRef\"\u003e2001\u003c/span\u003e), and an increase in Ser31 TH phosphorylation may increase TH activity in response to TH loss. Therefore, EtOH could restore damaged dopaminergic neurons induced by MPTP to compensate for DA loss in PD. Additionally, α-synuclein, a presynaptic neuronal protein linked to PD, has been shown to regulate the production of DA in cell cultures through its interaction with TH (Perez et al., \u003cspan citationid=\"CR72\" class=\"CitationRef\"\u003e2002\u003c/span\u003e). EtOH may also protect neurons against synapse damage induced by α-synuclein (Bate and Williams, \u003cspan citationid=\"CR7\" class=\"CitationRef\"\u003e2011\u003c/span\u003e), further supporting our study on the effects of EtOH on restoring dopaminergic function in PD mice. In contrast, EtOH can decrease dopaminergic neurons relevant to PD (Eriksson et al., \u003cspan citationid=\"CR23\" class=\"CitationRef\"\u003e2013\u003c/span\u003e; Peng et al., \u003cspan citationid=\"CR70\" class=\"CitationRef\"\u003e2020\u003c/span\u003e), possibly by inducing cytochrome P450 2E1 (CYP2E1) (Heit et al., \u003cspan citationid=\"CR35\" class=\"CitationRef\"\u003e2013\u003c/span\u003e). CYP2E1 metabolizes EtOH into AcH, which can enhance MPTP-induced Parkinsonism in mice (Vaglini et al., \u003cspan citationid=\"CR100\" class=\"CitationRef\"\u003e2013\u003c/span\u003e). This effect was primarily observed with chronic alcohol consumption or exposure to AcH (Vaglini et al., \u003cspan citationid=\"CR100\" class=\"CitationRef\"\u003e2013\u003c/span\u003e; Zhang et al., \u003cspan citationid=\"CR111\" class=\"CitationRef\"\u003e2014\u003c/span\u003e). In the present study, we used an acute EtOH exposure model and found that EtOH restored dopaminergic function in the brains of PD mice. However, further studies are required to ascertain the molecular mechanisms by which EtOH protects dopaminergic function in MPTP-treated mice.\u003c/p\u003e \u003cp\u003eSecond, we found that Nic at medium to high doses (1.0 or 2.0 mg/kg) exhibited restorative effects against MPTP-induced DA and its metabolite loss in both the striatum and hippocampus. This was evidenced by a significant increase in DA, DOPAC, and HVA levels compared to those in the MPTP group (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003e,\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003eA). As observed in western blot analysis, Nic enhanced TH expression and Ser31 phosphorylation in both brain regions (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003e,\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003eB-C), which is consistent with our DA result. These findings suggest that Nic was able to significantly restore most of the altered MPTP-induced parameters in the mouse brain. Our results align with several previous studies demonstrating that Nic can increase DA and its metabolites, DOPAC and HVA, in the brains of MPTP-treated mice (Janson et al., \u003cspan citationid=\"CR43\" class=\"CitationRef\"\u003e1992\u003c/span\u003e; Gao et al., \u003cspan citationid=\"CR25\" class=\"CitationRef\"\u003e1998\u003c/span\u003e). A similar increase in TH has been noted following Nic administration in mice with Parkinsonism induced by MPTP (Parain et al., \u003cspan citationid=\"CR69\" class=\"CitationRef\"\u003e2003\u003c/span\u003e; Ruan et al., \u003cspan citationid=\"CR79\" class=\"CitationRef\"\u003e2023\u003c/span\u003e). There are two possible ways to minimize MPTP neurotoxicity: 1) by inhibiting the formation of the active neurotoxin MPP\u003csup\u003e+\u003c/sup\u003e from MPTP (Heikkila et al., \u003cspan citationid=\"CR32\" class=\"CitationRef\"\u003e1984\u003c/span\u003e) and 2) by blocking the uptake of MPP\u003csup\u003e+\u003c/sup\u003e into the DA neurons (Javitch et al., \u003cspan citationid=\"CR44\" class=\"CitationRef\"\u003e1985\u003c/span\u003e; Sundstr\u0026ouml;m et al., \u003cspan citationid=\"CR90\" class=\"CitationRef\"\u003e1986\u003c/span\u003e). We hypothesize that the restorative effects of Nic observed in our study in the MPTP model mice may be caused by an increased release of DA, which can compete with MPP\u0026thinsp;+\u0026thinsp;for uptake into the striatal and hippocampal DA neurons. Another mechanism that warrants consideration is the role of the nicotinic acetylcholine receptor (nAChR) in minimizing MPTP/MPP\u003csup\u003e+\u003c/sup\u003e\u0026ndash;induced damage and restoring DA in MPTP-treated mice. Nic acts on nAChRs located on the dopaminergic nerve terminals to increase DA release in the brain (Besson et al., \u003cspan citationid=\"CR9\" class=\"CitationRef\"\u003e2012\u003c/span\u003e). MPTP induces astrocyte activation in the mouse brain, which leads to neuronal death (Hu et al., \u003cspan citationid=\"CR38\" class=\"CitationRef\"\u003e2011\u003c/span\u003e). Interestingly, Nic can inhibit astrocyte activation caused by MPTP/MPP\u003csup\u003e+\u003c/sup\u003e via its action at α7-nAChR (Liu et al., \u003cspan citationid=\"CR56\" class=\"CitationRef\"\u003e2012\u003c/span\u003e). This leads to a decrease in the production of pro-inflammatory factors, thus improving dopaminergic loss. The results further support the hypothesis that Nic can effectively ameliorate dopaminergic damage in the brain of MPTP-induced PD mice.\u003c/p\u003e \u003cp\u003eThe third important finding of this study is that the combination of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) increased the tissue contents of DA, DOPAC, and HVA and TH expression and Ser31 phosphorylation compared to those with EtOH (2.0 g/kg) or Nic (1.0 mg/kg) alone in the striatum and hippocampus of MPTP-treated mice (Fig.\u0026nbsp;\u003cspan refid=\"Fig8\" class=\"InternalRef\"\u003e8\u003c/span\u003e,\u003cspan refid=\"Fig9\" class=\"InternalRef\"\u003e9\u003c/span\u003e). Numerous studies have examined the neurobiological effects of EtOH and Nic co-administration (Morel et al., \u003cspan citationid=\"CR66\" class=\"CitationRef\"\u003e2019\u003c/span\u003e; Cross et al., 2021). However, little is known about the restorative effects of these two agents on MPTP-induced deficits in dopaminergic function. Therefore, we investigated the combined effects of EtOH and Nic on MPTP-induced deficits in dopaminergic function in the mouse brain. Several studies have demonstrated interactions between EtOH and Nic, where Nic may restore some of EtOH's toxic or adverse effects (Prendergast et al., \u003cspan citationid=\"CR74\" class=\"CitationRef\"\u003e2000\u003c/span\u003e; Penland et al., \u003cspan citationid=\"CR71\" class=\"CitationRef\"\u003e2001\u003c/span\u003e; Gould and Lommock, \u003cspan citationid=\"CR28\" class=\"CitationRef\"\u003e2003\u003c/span\u003e; Tizabi et al., \u003cspan citationid=\"CR93\" class=\"CitationRef\"\u003e2005\u003c/span\u003e). Conversely, EtOH may reduce nicotine-induced seizures (Korkosz et al., \u003cspan citationid=\"CR49\" class=\"CitationRef\"\u003e2006a\u003c/span\u003e), enhance the effects of Nic in operant behavior (Popke et al., \u003cspan citationid=\"CR73\" class=\"CitationRef\"\u003e2000\u003c/span\u003e), or increase nicotine-induced place preference (Korkosz et al., \u003cspan citationid=\"CR50\" class=\"CitationRef\"\u003e2006b\u003c/span\u003e). EtOH and Nic together have also been shown to exhibit antinociceptive analgesic effects (Campbell et al., \u003cspan citationid=\"CR14\" class=\"CitationRef\"\u003e2006\u003c/span\u003e). Similarly, combined treatment with EtOH and Nic is synergistic in increasing the firing rate of DA-sensitive neurons in the ventral tegmental area of mice, which can potentiate the stimulatory effects of Nic in rats (Schaefer and Michael, \u003cspan citationid=\"CR82\" class=\"CitationRef\"\u003e1992\u003c/span\u003e; Clark and Little, \u003cspan citationid=\"CR19\" class=\"CitationRef\"\u003e2004\u003c/span\u003e). For the first time, we demonstrate that EtOH combined with Nic results in a greater increase in DA response in the brain of MPTP-treated mice compared to the effects of EtOH or Nic alone, suggesting an additive effect. Our results are similar to those of a previous study (Tizabi et al., \u003cspan citationid=\"CR92\" class=\"CitationRef\"\u003e2002\u003c/span\u003e) that combined systemic EtOH with the central administration of Nic into the ventral tegmental area, which resulted in additive or exaggerated DA release in the nucleus accumbens shell. With the combination of EtOH and Nic, the treatment leads to a greater restoration of dopaminergic function in the brain after damage caused by MPTP compared to either drug alone. This finding and previous reports on the synergistic or additive dopaminergic effects of the EtOH and Nic combination support the hypothesis that combining drugs is essential for restoring DA function in mice treated with MPTP.\u003c/p\u003e"},{"header":"Conclusion","content":"\u003cp\u003eWhen administered alone, moderate to high doses of EtOH and Nic caused a significant increase in DA, DOPAC, and HVA levels and TH expression and Ser31 phosphorylation in the striatum and hippocampus of MPTP-treated mice. When EtOH and Nic were administered together, the drugs further increased DA and its metabolite contents, TH expression, and Ser31 phosphorylation. This suggests an additive restorative effect on the dopaminergic function. These findings provide the first evidence that EtOH and Nic could be promising substances for PD treatment, especially when combined.\u003c/p\u003e"},{"header":"Declarations","content":"\u003cp\u003e \u003ch2\u003eDeclaration of competing interest\u003c/h2\u003e \u003cp\u003eThe authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.\u003c/p\u003e \u003c/p\u003e\u003ch2\u003eAuthor Contribution\u003c/h2\u003e\u003cp\u003eMostofa Jamal: Writing \u0026ndash; original draft, Methodology, and Data curation Sella Takei: Visualization and Investigation Ikuko Tsukamoto: ValidationTakanori Miki: Data analysis Ken-Ichi Ohta: Data curationMd Zakir Hossain: VisualizationHiroshi Kinoshita: Review and Supervision\u003c/p\u003e\u003ch2\u003eAcknowledgements\u003c/h2\u003e \u003cp\u003eThis work was supported by a Grant-in-Aid for Scientific Research [Grant No. (c) 19K10687] from the Ministry of Education, Culture, Sports, Science and Technology, Japan.\u003c/p\u003e"},{"header":"References","content":"\u003col\u003e\n\u003cli\u003eAlam G, Edler M, Burchfield S, Richardson JR. Single low doses of MPTP decrease tyrosine hydroxylase expression in the absence of overt neuron loss. Neurotoxicology 2017; 60:99-106.\u003c/li\u003e\n\u003cli\u003eAndersson K, Fuxe K, Agnati LF. Effects of single injections of nicotine on the ascending dopamine pathways in the rat. Evidence for increases of dopamine turnover in the mesostriatal and mesolimbic dopamine neurons. Acta. Physiol. Scand. 1981; 112(3):345-47.\u003c/li\u003e\n\u003cli\u003eArai N, Misugi K, Goshima Y, Misu Y. Evaluation of a 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine-treated C57 black mouse model for parkinsonism. Brain Res. 1990; 515:57\u0026ndash;63. \u003c/li\u003e\n\u003cli\u003eBaizer L, Masserano JM, Weiner N. Ethanol-induced changes in tyrosine hydroxylase activity in brains of mice selectively bred for differences in sensitivity to ethanol. Pharmacol. Biochem. Behav. 1981; 15:945-49.\u003c/li\u003e\n\u003cli\u003eBakhtiarzadeh F, Shahpasand K, Shojaei A, Fathollahi Y, Roohi N, Barkley V, Mirnajafi-Zadeh. Age-dependent effects of dopamine on working memory and synaptic plasticity in hippocampal CA3-CA1 synapses in mice. J. Neurosci. 2023; 532:14-22. \u003c/li\u003e\n\u003cli\u003eBarazangi N and Role LW. Nicotine-induced enhancement of glutamatergic and GABAergic synaptic transmission in the mouse amygdala. J. Neurophysiol. 2001; 86(1):463-74.\u003c/li\u003e\n\u003cli\u003eBate C and Williams A. Ethanol protects cultured neurons against amyloid-\u0026beta; and \u0026alpha;-synuclein-induced synapse damage. Neuropharmacology 2011; 61(8):1406-12.\u003c/li\u003e\n\u003cli\u003eBelmadani A, Kumar S, Schipma M, Collins MA, Neafsey EJ. Inhibition of amyloid-beta-induced neurotoxicity and apoptosis by moderate ethanol preconditioning. Neuroreport. 2004; 15:2093\u0026ndash;96.\u003c/li\u003e\n\u003cli\u003eBesson M, David V, Baudonnat M, Cazala P, Guilloux JP, Reperant C, Cloez-Tayarani I, Changeux JP, Gardier AM, Granon S. Alpha7-nicotinic receptors modulate nicotine-induced reinforcement and extracellular dopamine outflow in the mesolimbic system in mice. Psychopharmacology (Berl). 2012; 220(1):1-14. \u003c/li\u003e\n\u003cli\u003eBhaduri B, Abhilash PL, Alladi PA. Baseline striatal and nigral interneuronal protein levels in two distinct mice strains differ in accordance with their MPTP susceptibility. J. Chem. Neuroanat. 2018; 91:46-54.\u003c/li\u003e\n\u003cli\u003eBrazell MP, Mitchell SN, Joseph MH, Gray JA. Acute administration of nicotine increases the in vivo extracellular levels of dopamine, 3,4-dihydroxyphenylacetic acid and ascorbic acid preferentially in the nucleus accumbens of the rat: comparison with caudate-putamen. Neuropharmacology 1990; 29(12):1177-185.\u003c/li\u003e\n\u003cli\u003eBrabant C, Guarnieri DJ, Quertemont E. Stimulant and motivational effects of alcohol: lessons from rodent and primate models. Pharmacol. Biochem. Behav. 2014; 122:37-52. \u003c/li\u003e\n\u003cli\u003eBroussard JI, Yang K, Levine AT, Tsetsenis T, Jenson D, Cao F, Garcia I, Arenkiel BR, Zhou FM, De Cai Y, Zhang X, Zhou X, Wu X, Li Y, Yao J, Bai J. Nicotine suppresses the neurotoxicity by MPP\u003csup\u003e+\u003c/sup\u003e/MPTP through activating \u0026alpha;7nAChR/PI3K/Trx-1 and suppressing ER stress. Neurotoxicology 2017; 59:49-55. \u003c/li\u003e\n\u003cli\u003eCampbell VC, Taylor RE, Tizabi Y. Antinociceptive effects of alcohol and nicotine: involvement of the opioid system. Brain Res. 2006; 1097(1):71-77. \u003c/li\u003e\n\u003cli\u003eCarr LA, Rowell PP, Pierce WM Jr. Effects of subchronic nicotine administration on central dopaminergic mechanisms in the rat. Neurochem. Res. 1989; 14(6):511-15. \u003c/li\u003e\n\u003cli\u003eChatterjee D, Shams S, Gerlai R. Chronic and acute alcohol administration induced neurochemical changes in the brain: comparison of distinct zebrafish populations. Amino Acids 2014; 46:921\u0026ndash;30.\u003c/li\u003e\n\u003cli\u003eChellian R, Behnood-Rod A, Wilson R, Bruijnzeel AW. Rewarding effects of nicotine self-administration increase over time in male and female rats. Nicotine Tob Res. 2021; 23(12):2117-126. \u003c/li\u003e\n\u003cli\u003eChia LG, Ni DR, Cheng LJ, Kuo JS, Cheng FC, Dryhurst G. Effects of 1-methyl-4- phenyl-1,2,3,6-tetrahydropyridine and 5,7-dihydroxytryptamine on the locomotor activity and striatal amines in C57BL/6 mice. Neurosci. Lett. 1996; 218:67\u0026ndash;71. \u003c/li\u003e\n\u003cli\u003eClark A and Little HJ. Interactions between low concentrations of ethanol and nicotine on firing rate of ventral tegmental dopamine neurons. Drug Alcohol Depend. 2004: 75: 199\u0026ndash;206.\u003c/li\u003e\n\u003cli\u003eCorsini GU, Pintus S, Chiueh CC, Weiss JF, Kopin IJ. 1-Methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) neurotoxicity in mice is enhanced by pretreatment with diethyldithiocarbamate. Eur. J. Pharmacol. 1985; 119(1-2):127-28. \u003c/li\u003e\n\u003cli\u003eCross SJ and Leslie FM. Combined nicotine and ethanol age-dependently alter neural and behavioral responses in male rats. Behav. Pharmacol. 2021; 32(4):321-34. \u003c/li\u003e\n\u003cli\u003eEngel JA, Fahlke C, H\u0026aring;rd E, Johannessen K, Svensson L, S\u0026ouml;derpalm B. Serotonergic and dopaminergic involvement in ethanol intake. Clin. Neuropharmacol. 1992; 15 Suppl 1 Pt A:64A-65A. \u003c/li\u003e\n\u003cli\u003eEriksson AK, Lofving S, Callaghan RC, Allebeck P. Alcohol use disorders and risk of Parkinson\u0026rsquo;s disease: Findings from a Swedish national cohort study 1972\u0026ndash;2008. BMC Neurol. 2013; 13:190. \u003c/li\u003e\n\u003cli\u003eFornai F, Schl\u0026uuml;ter OM, Lenzi P, Gesi M, Ruffoli R, Ferrucci M, Lazzeri G, Busceti CL, Pontarelli F, Battaglia G, Pellegrini A, Nicoletti F, Ruggieri S, Paparelli A, S\u0026uuml;dhof TC. Parkinson-like syndrome induced by continuous MPTP infusion: convergent roles of the ubiquitin-proteasome system and alpha-synuclein. Proc. Natl. Acad. Sci. USA. 2005; 102:3413\u0026ndash;418.\u003c/li\u003e\n\u003cli\u003eGao ZG, Cui WY, Zhang HT, Liu CG. Effects of nicotine on 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine-induced depression of striatal dopamine content and spontaneous locomotor activity in C57 black mice. Pharmacol. Res. 1998; 38(2):101-06. \u003c/li\u003e\n\u003cli\u003eGayer GG, Gordon A, Miles MF. Ethanol increases tyrosine hydroxylase gene expression in N1E-115 neuroblastoma cells. J. Biol. Chem. 1991; 266(33):22279-284.\u003c/li\u003e\n\u003cli\u003eGerman DC, Manaye KF, Sonsalla PK, Brooks BA. Midbrain dopaminergic cell loss in Parkinson\u0026apos;s disease and MPTP-induced parkinsonism: sparing of calbindin-D28k-containing cells. Ann. NY. Acad. Sci. 1992; 648:42-62.\u003c/li\u003e\n\u003cli\u003eGould TJ and Lommock JA. Nicotine enhances contextual fear conditioning and ameliorates ethanol-induced deficits in contextual fear conditioning. Behav. Neurosci. 2003;117(6):1276-282. \u003c/li\u003e\n\u003cli\u003eGubner NR and Phillips TJ. Effects of nicotine on ethanol-induced locomotor sensitization: A model of neuroadaptation. Behav. Brain Res. 2015; 288:26-32. \u003c/li\u003e\n\u003cli\u003eGulick D and Gould TJ. Acute ethanol has biphasic effects on short- and long-term memory in both foreground and background contextual fear conditioning in C57BL/6 mice. Alcohol Clin. Exp. Res. 2007; 31(9):1528-537.\u003c/li\u003e\n\u003cli\u003eHaikala H, Karmalahti T, Ahtee L. The nicotine-induced changes in striatal dopamine metabolism of mice depend on body temperature. Brain Res. 1986; 375(2):313-19. \u003c/li\u003e\n\u003cli\u003eHeikkila RE, Manzino L, Cabbat FS, Duvoisin RC. Protection against the dopaminergic neurotoxicity of 1-methyl-4-phenyl-1,2,5,6-tetrahydropyridine by monoamine oxidase inhibitors. Nature 1984; 311(5985):467-69. \u003c/li\u003e\n\u003cli\u003eHeikkila RE, Nicklas WJ, Duvoisin RC. Dopaminergic toxicity after the stereotaxic administration of the 1-methyl-4-phenylpyridinium ion (MPP+) to rats. Neurosci. Lett. 1985; 59(1): 135-40. \u003c/li\u003e\n\u003cli\u003eHeikkila RE and Sonsalla PK. The use of the MPTP-treated mouse as an animal model of Parkinsonism. Can. J. Neurol. Sci. 1987; 14(3 Suppl): 436-40. \u003c/li\u003e\n\u003cli\u003eHeit C, Dong H, Chen Y, Thompson DC, Deitrich RA, Vasiliou VK. The role of CYP2E1 in alcohol metabolism and sensitivity in the central nervous system. Subcell. Biochem. 2013; 67: 235\u0026ndash;47.\u003c/li\u003e\n\u003cli\u003eHernan MA, Takkouche B, Caamano-Isorna F, Gestal-Otero JJ. A meta-analysis of coffee drinking, cigarette smoking, and the risk of Parkinson\u0026apos;s disease. Ann Neurol 2002; 52(3): 276\u0026ndash;284.\u003c/li\u003e\n\u003cli\u003eHiremagalur B, Nankova B, Nitahara J, Zeman R, Sabban EL. Nicotine increases expression of tyrosine hydroxylase gene. Involvement of protein kinase A-mediated pathway. J. Biol. Chem. 1993; 268(31):23704-711.\u003c/li\u003e\n\u003cli\u003eHu J, Zhu C, Liu Y, Wang F, Huang Z, Fan W, Wu J. Dynamic alterations of gene expression of nicotinic acetylcholine receptor alpha7, alpha4 and beta2 subunits in an acute MPTP-lesioned mouse model. Neurosci. Lett. 2011; 494:232\u0026ndash;36.\u003c/li\u003e\n\u003cli\u003eItzhak Y, Martin JL, Black MD, Ali SF. Effect of the dopaminergic neurotoxin MPTP on cocaine-induced locomotor sensitization. Pharmacol. Biochem. Behav. 1999; 63(1):101-7.\u003c/li\u003e\n\u003cli\u003eJackson-Lewis V and Przedborski S. Protocol for the MPTP mouse model of Parkinson\u0026rsquo;s disease. Nat. Protoc. 2007; 2:141\u0026ndash;51. \u003c/li\u003e\n\u003cli\u003eJamal M, Ameno K, Miki T, Tanaka N, Ito A, Ono J, Takakura A, Kumihashi M, Kinoshita H. Ethanol and acetaldehyde differentially alter extracellular dopamine and serotonin in Aldh2-knockout mouse dorsal striatum: A reverse microdialysis study. Neurotoxicology 2016; 52:204-09. \u003c/li\u003e\n\u003cli\u003eJamal M, Ito A, Miki T, Suzuki S, Ohta KI, Kinoshita H. Ethanol concentration induces production of 3,4-dihydroxyphenylacetic acid and homovanillic acid in mouse brain through activation of monoamine oxidase pathway. Neurosci. Lett. 2022; 782:136689. \u003c/li\u003e\n\u003cli\u003eJanson AM, Fuxe K, Goldstein M. Differential effects of acute and chronic nicotine treatment on MPTP-(1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine) induced degeneration of nigrostriatal dopamine neurons in the black mouse. Clin. Investig. 1992; 70(3-4):232-38. \u003c/li\u003e\n\u003cli\u003eJavitch JA, D\u0026apos;Amato RJ, Strittmatter SM, Snyder SH. Parkinsonism-inducing neurotoxin N-methyl-4-phenyl-1,2,3,6-tetrahydropyridine: uptake of the metabolite l-methyl-4-phenylpyridine by dopamine neurons explains selective toxicity. Proc. Natl. Acad. Sci. USA 1985; 82: 2173-177.\u003c/li\u003e\n\u003cli\u003eJimenez-Jimenez FJ, Alonso-Navarro H, Garcia-Martin E, Agundez JAG. Alcohol consumption and risk for Parkinson\u0026apos;s disease: a systematic review and meta-analysis. J. Neurol. 2019; 266(8): 1821-1834. \u003c/li\u003e\n\u003cli\u003eKamal H, Tan GC, Ibrahim SF, Shaikh MF, Mohamed IN, Mohamed RMP, Hamid AA, Ugusman A, Kumar J. Alcohol use disorder, neurodegeneration, Alzheimer\u0026apos;s and Parkinson\u0026apos;s disease: interplay between oxidative stress, neuroimmune response and excitotoxicity. Front. Cell Neurosci. 2020; 14:282. \u003c/li\u003e\n\u003cli\u003eKinoshita K, Tada Y, Muroi Y, Unno T, Ishii T. Selective loss of dopaminergic neurons in the substantia nigra pars compacta after systemic administration of MPTP facilitates extinction learning. Life Sci. 2015; 137:28-36. \u003c/li\u003e\n\u003cli\u003eKleijn J, Folgering JHA, van der Hart MCG, Rollema H, Cremers TIFH, Westerink BHC. Direct effect of nicotine on mesolimbic dopamine release in rat nucleus accumbens shell. Neurosci. Lett. 2011; 493(1-2):55-58. \u003c/li\u003e\n\u003cli\u003eKorkosz A, Zatorski P, Taracha E, Plaznik A, Kostowski W, Bienkowski P. Ethanol blocks nicotine-induced seizures in mice: comparison with midazolam and baclofen. Alcohol 2006a; 40(3):151-57. \u003c/li\u003e\n\u003cli\u003eKorkosz A, Scinska A, Taracha E, Plaznik A, Kukwa A, Kostowski W, Bienkowski P. Nicotine-induced conditioned taste aversion in the rat: effects of ethanol. Eur. J. Pharmacol. 2006b; 537(1-3):99-105. \u003c/li\u003e\n\u003cli\u003eKsir C. Acute and chronic nicotine effects on measures of activity in rats: a multivariate analysis. Psychopharmacology (Berl) 1994, 115(1-2):105-09. \u003c/li\u003e\n\u003cli\u003eLarsson A and Engel JA. Neurochemical and behavioral studies on ethanol and nicotine interactions. Neurosci. Biobehav. Rev. 2004; 27(8):713-20. \u003c/li\u003e\n\u003cli\u003eLe Foll B and Goldberg SR. Effects of nicotine in experimental animals and humans: an update on addictive properties. Handb. Exp. Pharmacol. 2009; (192):335-67. \u003c/li\u003e\n\u003cli\u003eLi X, Li W, Liu G, Shen X, Tang Y. Association between cigarette smoking and Parkinson\u0026apos;s disease: a meta-analysis. Arch. Gerontol. Geriatr. 2015; 61(3): 510\u0026ndash;516.\u003c/li\u003e\n\u003cli\u003eLiu R, Guo X, Park Y, Wang J, Huang X, Hollenbeck A, Blair A, Chen H. Alcohol consumption, types of alcohol, and Parkinson\u0026rsquo;s disease. \u003cem\u003ePLoS One 2013;\u003c/em\u003e 8(6):e66452.\u003c/li\u003e\n\u003cli\u003eLiu Y, Hu J, Wu J, Zhu C, Hui Y, Han Y, Huang Z, Ellsworth K, Fan W. \u0026alpha;7 nicotinic acetylcholine receptor-mediated neuroprotection against dopaminergic neuron loss in an MPTP mouse model via inhibition of astrocyte activation. J. Neuroinflammation 2012; 9 (98):1-15. \u003c/li\u003e\n\u003cli\u003eMasserano JM, Takimoto GS, Weiner N. Tyrosine hydroxylase activity in the brain and adrenal gland of rats following chronic administration of ethanol. Alcohol Clin. Exp. Res. 1983; 7:294-98.\u003c/li\u003e\n\u003cli\u003eMcBride WJ, Murphy JM, Gatto GJ, Levy AD, Lumeng L, Li TK. Serotonin and dopamine systems regulating alcohol intake. Serotonergic and dopaminergic involvement in ethanol intake. Alcohol Alcohol Suppl. 1991; 1:411-16.\u003c/li\u003e\n\u003cli\u003eMeck WH. Acute ethanol potentiates the clock-speed enhancing effects of nicotine on timing and temporal memory. Alcohol Clin. Exp. Res. 2007; 31(12):2106-113. \u003c/li\u003e\n\u003cli\u003eMelendez RI, Rodd-Henricks ZA, McBride WJ, Murphy JM. Alcohol stimulates the release of dopamine in the ventral pallidum but not in the globus pallidus: a dual-probe microdialysis study. Neuropsychopharmacology 2003; 28(5):939-46. \u003c/li\u003e\n\u003cli\u003eMitra N, Mohanakumar KP, Ganguly DK. Dissociation of serotoninergic and dopaminergic components in acute effects of 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine in mice. Brain Res. Bull. 1992; 28(3):355-64.\u003c/li\u003e\n\u003cli\u003eMifsud JC, \u003cu\u003e Hernandez\u003c/u\u003e L, \u003cu\u003eHoebel\u003c/u\u003e BG. Nicotine infused into the nucleus accumbens increases synaptic dopamine as measured by in vivo microdialysis. Brain Res. 1989; 478:365-67.\u003c/li\u003e\n\u003cli\u003eMira RG, Tapia-Rojas C, P\u0026eacute;rez MJ, Jara C EH, Q, Vergara uintanilla RA, Cerpa W. Alcohol impairs hippocampal function: From NMDA receptor synaptic transmission to mitochondrial function. Drug Alcohol Depend. 2019, 205:107628. \u003c/li\u003e\n\u003cli\u003eMitchell SN, Smith KM, Joseph MH, Gray JA. Increases in tyrosine hydroxylase messenger RNA in the locus coeruleus after a single dose of nicotine are followed by time-dependent increases in enzyme activity and noradrenaline release. Neuroscience 1993; 56(4):989-97. \u003c/li\u003e\n\u003cli\u003eMoore DJ, West AB, Dawson VL, Dawson TM. Molecular pathophysiology of Parkinson\u0026rsquo;s disease. Annu. Rev. Neurosci. 2005; 28, 57\u0026ndash;87. \u003c/li\u003e\n\u003cli\u003eMorel C, Montgomery S, Han MH. Nicotine and alcohol: the role of midbrain dopaminergic neurons in drug reinforcement. Eur. J. Neurosci. 2019; 50(3):2180-200. \u003c/li\u003e\n\u003cli\u003eMustapha M and Mat Taib CN. MPTP-induced mouse model of Parkinson\u0026apos;s disease: A promising direction of therapeutic strategies. Bosn. J. Basic Med. Sci. 2021; 21(4):422-33. Review. \u003c/li\u003e\n\u003cli\u003eNicholatos JW, Francisco AB, Bender CA, Yeh T, Lugay FJ, Salazar JE, Glorioso C, Libert S. Nicotine promotes neuron survival and partially protects from Parkinson\u0026apos;s disease by suppressing SIRT6. Acta Neuropathol. Commun. 2018; 6(1):120. \u003c/li\u003e\n\u003cli\u003eParain K, Hapdey C, Rousselet E, Marchand V, Dumery B, Hirsch EC. Cigarette smoke and nicotine protect dopaminergic neurons against the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine Parkinsonian toxin. Brain Res. 2003; 984(1-2):224-32. \u003c/li\u003e\n\u003cli\u003ePeng B, Yang Q, B Joshi R, Liu Y, Akbar M, Song BJ, Zhou S, Wang X. Role of alcohol drinking in Alzheimer\u0026apos;s disease, Parkinson\u0026apos;s disease, and amyotrophic lateral sclerosis. Int. J. Mol. Sci. 2020, 21:2316. \u003c/li\u003e\n\u003cli\u003ePenland S, Hoplight B, Obernier J, Crews FT. Effects of nicotine on ethanol dependence and brain damage. Alcohol 2001; 24(1):45-54. \u003c/li\u003e\n\u003cli\u003ePerez RG, Waymire JC, Lin E, Liu JJ, Guo F, Zigmond MJ. A role for alpha-synuclein in the regulation of dopamine biosynthesis. J. Neurosci. 2002; 22:3090\u0026ndash;99.\u003c/li\u003e\n\u003cli\u003ePopke EJ, Fogle CM, Paule MG. Ethanol enhances Nicotine\u0026apos;s effects on DRL performance in rats. Pharmacol. Biochem. Behav. 2000; 66(4):819-26. \u003c/li\u003e\n\u003cli\u003ePrendergast MA, Harris BR, Mayer S, Littleton JM. Chronic, but not acute, nicotine exposure attenuates ethanol withdrawal-induced hippocampal damage in vitro. Alcohol Clin. Exp. Res. 2000; 24(10):1583-592.\u003c/li\u003e\n\u003cli\u003eQuik M, Parameswaran N, McCallum SE, Bordia T, Bao S, McCormack A, Kim A, Tyndale RF, Langston JW, Di Monte DA. Chronic oral nicotine treatment protects against striatal degeneration in MPTP-treated primates. J. Neurochem. 2006; 98(6):1866-875. \u003c/li\u003e\n\u003cli\u003eRamlochansingh C, Taylor RE, Tizabi Y. Toxic effects of low alcohol and nicotine combinations in SH-SY5Y cells are apoptotically mediated. Neurotox. Res. 2011; 20(3):263-69. \u003c/li\u003e\n\u003cli\u003eRommelfanger KS, Edwards GL, Freeman KG, Liles LC, Miller GW, Weinshenker D. Norepinephrine loss produces more profound motor deficits than MPTP treatment in mice. Proc. Natl. Acad. Sci. USA. 2007; 104(34):13804-809. \u003c/li\u003e\n\u003cli\u003eRose JE, Brauer LH, Behm FM, Cramblett M, Calkins K, Lawhon D. Psychopharmacological interactions between nicotine and ethanol. Nicotine Tob. Res. 2004; 6(1):133-44. \u003c/li\u003e\n\u003cli\u003eRuan S, Xie J, Wang L, Guo L, Li Y, Fan W, Ji R, Gong Z, Xu Y, Mao J, Xie J. Nicotine alleviates MPTP-induced nigrostriatal damage through modulation of JNK and ERK signaling pathways in the mice model of Parkinson\u0026apos;s disease. Front. Pharmacol. 2023; 14:1088957. eCollection 2023.\u003c/li\u003e\n\u003cli\u003eSaeed Dar M and Wooles WR. The effect of acute ethanol on dopamine metabolism and other neurotransmitters in the hypothalamus and the corpus striatum of mice. J. Neural Transm. 1984; 60(3-4):283\u0026ndash;94.\u003c/li\u003e\n\u003cli\u003eSalvatore MF, Waymire JC, Haycock JW. Depolarization-stimulated catecholamine biosynthesis: involvement of protein kinases and tyrosine hydroxylase phosphorylation sites in situ. J. Neurochem. 2001; 79(2):349\u0026ndash;60.\u003c/li\u003e\n\u003cli\u003eSchaefer GJ and Michael RP. Interactions between alcohol and nicotine on intracranial self-stimulation and locomotor activity in rats. Drug Alcohol Depend. 1992; 30(1):37-47. \u003c/li\u003e\n\u003cli\u003eSedelis M, Schwarting RK, Huston JP. Behavioral phenotyping of the MPTP mouse model of Parkinson\u0026apos;s disease. Behav. Brain Res. 2001; 125(1-2):109-25. \u003c/li\u003e\n\u003cli\u003eShnitko TA, Kennerly LC, Spear LP, Robinson DL. Ethanol reduces evoked dopamine release and slows clearance in the rat medial prefrontal cortex. Alcohol Clin. Exp. Res. 2014; 38(12):2969-977.\u003c/li\u003e\n\u003cli\u003eSiciliano CA, Locke JL, Mathews TA, Lopez MF, Becker HC, Jones SR. Dopamine synthesis in alcohol drinking-prone and -resistant mouse strains. Alcohol 2017; 58:25-32. \u003c/li\u003e\n\u003cli\u003eSilvers JM, Tokunaga S, Berry RB, White AM, Matthews DB. Impairments in spatial learning and memory: ethanol, allopregnanolone, and the hippocampus. Brain Res. Rev. 2003; 43(3):275-84. \u003c/li\u003e\n\u003cli\u003eS\u0026ouml;derpalm B, Ericson M, Olausson P, Blomqvist O, Engel JA. Nicotinic mechanisms involved in the dopamine activating and reinforcing properties of ethanol. Behav. Brain Res. 2000; 113(1-2):85-96. \u003c/li\u003e\n\u003cli\u003eSonsalla PK and Heikkila RE. The influence of dose and dosing interval on MPTP-induced dopaminergic neurotoxicity in mice. Eur. J. Pharmacol. 1986; 129(3):339-45.\u003c/li\u003e\n\u003cli\u003eSun N and Laviolette SR. Dopamine receptor blockade modulates the rewarding and aversive properties of nicotine via dissociable neuronal activity patterns in the nucleus accumbens. Neuropsychopharmacology 2014; 39(12):2799-815. \u003c/li\u003e\n\u003cli\u003eSundstr\u0026ouml;m E, Goldstein M, Jonsson G. Uptake inhibition protects nigro-striatal dopamine neurons from the neurotoxicity of 1-methyl-4-phenylpyridine (MPP+) in mice. Eur. J. Pharmacol. 1986; 131(2-3):289-92. \u003c/li\u003e\n\u003cli\u003eTang A, George MA, Randall JA, Gonzales RA. Ethanol increases extracellular dopamine concentration in the ventral striatum in C57BL/6 mice. Alcohol Clin. Exp. Res. 2003; 27:1083-89. \u003c/li\u003e\n\u003cli\u003eTizabi Y, Copeland RL, Louis V., Taylor RE. Effects of combined systemic alcohol and central nicotine administration into ventral tegmental area on dopamine release in the nucleus accumbens. Alcohol Clin. Exp. Res. 2002; 26: 394\u0026ndash;99.\u003c/li\u003e\n\u003cli\u003eTizabi Y, Manaye KF, Taylor RE. Nicotine blocks ethanol-induced apoptosis in primary cultures of rat cerebral cortical and cerebellar granule cells. Neurotox. Res. 2005; 7(4):319-22. \u003c/li\u003e\n\u003cli\u003eTizabi Y, Bai L, Copeland RL, Taylor RE. Combined effects of systemic alcohol and nicotine on dopamine release in the nucleus accumbens shell. Alcohol Alcohol 2007; 42: 413\u0026ndash;16. \u003c/li\u003e\n\u003cli\u003eTolu S, Marti F, Morel C, Perrier C, Torquet N, Pons S, De Beaurepaire R, Faure P (2017) Nicotine enhances alcohol intake and dopaminergic responses through \u0026beta;2* and \u0026beta;4* nicotinic acetylcholine receptors. Sci. Rep. 2017; 7: 45116.\u003c/li\u003e\n\u003cli\u003eToth E, Sershen H, Hashim A, Vizi ES, Lajtha A. Effect of nicotine on extracellular levels of neurotransmitters assessed by microdialysis in various brain regions: role of glutamic acid. Neurochem. Res. 1992; 17(3):265-71. \u003c/li\u003e\n\u003cli\u003eTran S, Facciol A, Nowicki M, Chatterjee D, Gerlai R. Acute alcohol exposure increases tyrosine hydroxylase protein expression and dopamine synthesis in zebrafish. Behav. Brain Res. 2017; 317:237-41. \u003c/li\u003e\n\u003cli\u003eTruitt WA, Hauser SR, Deehan GA Jr, Toalston JE, Wilden JA, Bell RL, McBride WJ, Rodd ZA. Ethanol and nicotine interaction within the posterior ventral tegmental area in male and female alcohol-preferring rats: evidence of synergy and differential gene activation in the nucleus accumbens shell. Psychopharmacology (Berl) 2015; 232(3):639-49. \u003c/li\u003e\n\u003cli\u003eTurner TJ. Nicotine enhancement of dopamine release by a calcium-dependent increase in the size of the readily releasable pool of synaptic vesicles. J. Neurosci. 2004; 24(50):11328-336. \u003c/li\u003e\n\u003cli\u003eVaglini F, Viaggi C, Piro V, Pardini C, Gerace C, Scarselli M, Corsini GU. Acetaldehyde and parkinsonism: Role of CYP450 2E1. Front. Behav. Neurosci. 2013; 7:71.\u003c/li\u003e\n\u003cli\u003eVaillancourt DE and Mitchell T. Parkinson\u0026apos;s disease progression in the substantia nigra: location, location, location. Brain 2020; 143(9):2628-630. \u003c/li\u003e\n\u003cli\u003eVengeliene V, Bilbao A, Molander A, Spanagel R. Neuropharmacology of alcohol addiction. Br J Pharmacol. 2008; 154(2):299-15. \u003c/li\u003e\n\u003cli\u003evon Bohlen und Halbach O, Schober A, Hertel R, Unsicker K. MPTP treatment impairs tyrosine hydroxylase immunopositive fibers not only in the striatum, but also in the amygdala. Neurodegener. Dis. 2005; 2(1):44-8. \u003c/li\u003e\n\u003cli\u003eWaeiss RA, Knight CP, Engleman EA, Hauser SR, Rodd ZA. Co-administration of ethanol and nicotine heightens sensitivity to ethanol reward within the nucleus accumbens (NAc) shell and increasing NAc shell BDNF is sufficient to enhance ethanol reward in na\u0026iuml;ve Wistar rats. J. Neurochem. 2020; 152(5):556-69. \u003c/li\u003e\n\u003cli\u003eWang R, Martin CD, Lei AL, Hausknecht KA, Ishiwari K, Richards JB, Haj-Dahmane S, Shen RY. Prenatal ethanol exposure leads to attention deficits in both male and female rats. Front. Neurosci. 2020; 14:12. eCollection 2020.\u003c/li\u003e\n\u003cli\u003eWillis GL and Donnan GA. Histochemical, biochemical and behavioural consequences of MPTP treatment in C-57 black mice. Brain Res. 1987; 402:269\u0026ndash;74. \u003c/li\u003e\n\u003cli\u003eXue S, Behnood-Rod A, Wilson R, Wilks I, Tan S, Bruijnzeel AW. Rewarding effects of nicotine in adolescent and adult male and female rats as measured using intracranial self-stimulation. Nicotine Tob. Res. 2020; 22(2):172-79. \u003c/li\u003e\n\u003cli\u003eYang J, Lv DJ, Li LX, Wang YL, Qi D, Chen J, Mao CJ, Wang F, Liu Y, Hu LF, Liu CF. Nicotine improved the olfactory impairment in MPTP-induced mouse model of Parkinson\u0026apos;s disease. Neurotoxicology 2019;73:175-82. \u003c/li\u003e\n\u003cli\u003eYim HJ, Schallert T, Randall PK, Bungay PM, Gonzales RA. Effect of ethanol on extracellular dopamine in rat striatum by direct perfusion with microdialysis. J. Neurochem. 1997; 68:1527-33. \u003c/li\u003e\n\u003cli\u003eYokoyama H, Kuroiwa H, Kasahara J, Araki T. Neuropharmacological approach against MPTP (1-methyl-4-phenyl-1,2,3,6- tetrahydropyridine)-induced mouse model of Parkinson\u0026apos;s disease. Acta Neurobiol. Exp. (Wars). 2011; 71(2):269-80. Review \u003c/li\u003e\n\u003cli\u003eZhang D, Jiang H, Xie J. Alcohol intake and risk of Parkinson\u0026apos;s disease: a meta-analysis of observational studies. Mov. Disord. 2014; 29(6): 819\u0026ndash;822.\u003c/li\u003e\n\u003cli\u003eZhang QS, Heng Y, Mou Z, Huang JY, Yuan YH, Chen NH. Reassessment of subacute MPTP-treated mice as animal model of Parkinson\u0026apos;s disease. Acta Pharmacol. Sin. 2017; 38(10):1317-328. \u003c/li\u003e\n\u003cli\u003eZhu G, Huang Y, Chen Y, Zhuang Y, Behnisch T. MPTP modulates hippocampal synaptic transmission and activity-dependent synaptic plasticity via dopamine receptors. J. Neurochem. 2012; 122:582\u0026ndash;93.\u003c/li\u003e\n\u003cli\u003eZuddas A, Corsini GU, Schinelli S, Johannessen JN, di Porzio U, Kopin IJ. MPTP treatment combined with ethanol or acetaldehyde selectively destroys dopaminergic neurons in mouse substantia nigra. Brain Res. 1989a; 501(1):1-10. \u003c/li\u003e\n\u003cli\u003eZuddas A, Corsini GU, Schinelli S, Barker JL, Kopin IJ, di Porzio U. Acetaldehyde directly enhances MPP+ neurotoxicity and delays its elimination from the striatum. Brain Res. 1989b; 501(1):11-22.\u003c/li\u003e\n\u003c/ol\u003e"},{"header":"Table 1","content":"\u003cp\u003eTable 1 is available in the Supplementary Files section.\u003c/p\u003e"}],"fulltextSource":"","fullText":"","funders":[],"hasAdminPriorityOnWorkflow":false,"hasManuscriptDocX":true,"hasOptedInToPreprint":true,"hasPassedJournalQc":"","hasAnyPriority":false,"hideJournal":false,"highlight":"","institution":"","isAcceptedByJournal":true,"isAuthorSuppliedPdf":false,"isDeskRejected":"","isHiddenFromSearch":false,"isInQc":false,"isInWorkflow":false,"isPdf":false,"isPdfUpToDate":true,"isWithdrawnOrRetracted":false,"journal":{"display":true,"email":"[email protected]","identity":"neurotoxicity-research","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":false,"externalIdentity":"ntre","sideBox":"Learn more about [Neurotoxicity Research](http://bacandrology.biomedcentral.com/)","snPcode":"12640","submissionUrl":"https://submission.nature.com/new-submission/12640/3","title":"Neurotoxicity Research","twitterHandle":"","acdcEnabled":true,"dfaEnabled":true,"editorialSystem":"em","reportingPortfolio":"Springer Hybrid","inReviewEnabled":true,"inReviewRevisionsEnabled":false},"keywords":"Ethanol, Nicotine, MPTP, Dopaminergic function, Mouse brain","lastPublishedDoi":"10.21203/rs.3.rs-4097975/v1","lastPublishedDoiUrl":"https://doi.org/10.21203/rs.3.rs-4097975/v1","license":{"name":"CC BY 4.0","url":"https://creativecommons.org/licenses/by/4.0/"},"manuscriptAbstract":"\u003cp\u003eHere, we investigate whether ethanol (EtOH) and nicotine (Nic) alone or in co-exposure can restore the 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP)-induced depletion of dopamine (DA), DA metabolites, and tyrosine hydroxylase (TH) in the striatum and hippocampus of C57BL/6N mice. MPTP-treated mice were treated intraperitoneally with saline (control), EtOH (1.0\u0026ndash;3.0 g/kg), Nic (0.5\u0026ndash;2.0 mg/kg), or a combination of EtOH and Nic. Brain samples were collected 1 h after treatment. DA and its metabolites 3,4-dihydroxyphenylacetic acid (DOPAC), 3-methoxytyramine (3-MT), and homovanillic acid (HVA) were measured by HPLC-ECD, while TH expression and Ser31 phosphorylation were quantified by Western blot. EtOH (2.0 and 3.0 g/kg) alone reversed the effects of MPTP treatment in both studied brain regions, as evidenced by an increase in DA, DOPAC, and HVA contents, TH expression, and its phosphorylation at Ser31 compared to the MPTP group, indicating restorative effects on DA neurons in the MPTP model. Likewise, Nic (1.0 and 2.0 mg/kg) alone reversed MPTP treatment effects, with treated mice showing increased DA, DOPAC, and HVA contents, TH expression, and Ser31 phosphorylation compared to MPTP mice. Co-administration of EtOH (2.0 g/kg) and Nic (1.0 mg/kg) further increased DA, DOPAC and HVA tissue contents, TH expression, and Ser31, indicating an additive effect. These results show that moderate to high doses of EtOH and Nic induce similar increases in brain DA and TH via TH phosphorylation activation in MPTP model mice. EtOH and Nic showed an additive effect in combination, suggesting that their co-application could be a potent therapeutic strategy for treating PD.\u003c/p\u003e","manuscriptTitle":"Restoration of MPTP-induced dopamine and tyrosine hydroxylase depletion in the mouse brain through ethanol and nicotine","msid":"","msnumber":"","nonDraftVersions":[{"code":1,"date":"2024-03-28 16:15:14","doi":"10.21203/rs.3.rs-4097975/v1","editorialEvents":[{"type":"communityComments","content":0},{"type":"decision","content":"Revision requested","date":"2024-05-25T22:18:13+00:00","index":"","fulltext":""},{"type":"editorInvitedReview","content":"","date":"2024-05-21T20:55:58+00:00","index":"hide","fulltext":""},{"type":"editorInvitedReview","content":"","date":"2024-05-17T17:58:18+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"199906941737639783654705715590800295836","date":"2024-05-02T20:35:35+00:00","index":"hide","fulltext":""},{"type":"reviewerAgreed","content":"188076461565037602167652428826512311152","date":"2024-05-02T14:46:55+00:00","index":"hide","fulltext":""},{"type":"reviewersInvited","content":"","date":"2024-05-01T23:42:07+00:00","index":"","fulltext":""},{"type":"checksComplete","content":"","date":"2024-03-24T22:22:08+00:00","index":"","fulltext":""},{"type":"editorAssigned","content":"","date":"2024-03-24T22:22:08+00:00","index":"","fulltext":""},{"type":"submitted","content":"Neurotoxicity Research","date":"2024-03-14T06:54:40+00:00","index":"","fulltext":""}],"status":"published","journal":{"display":true,"email":"[email protected]","identity":"neurotoxicity-research","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":false,"externalIdentity":"ntre","sideBox":"Learn more about [Neurotoxicity Research](http://bacandrology.biomedcentral.com/)","snPcode":"12640","submissionUrl":"https://submission.nature.com/new-submission/12640/3","title":"Neurotoxicity Research","twitterHandle":"","acdcEnabled":true,"dfaEnabled":true,"editorialSystem":"em","reportingPortfolio":"Springer Hybrid","inReviewEnabled":true,"inReviewRevisionsEnabled":false}}],"origin":"","ownerIdentity":"c7c77869-f00b-4f7d-bd80-a9ed32f96b4a","owner":[],"postedDate":"March 28th, 2024","published":true,"recentEditorialEvents":[],"rejectedJournal":[],"revision":"","amendment":"","status":"published-in-journal","subjectAreas":[],"tags":[],"updatedAt":"2025-02-17T16:02:07+00:00","versionOfRecord":{"articleIdentity":"rs-4097975","link":"https://doi.org/10.1007/s12640-025-00732-8","journal":{"identity":"neurotoxicity-research","isVorOnly":false,"title":"Neurotoxicity Research"},"publishedOn":"2025-02-12 15:57:35","publishedOnDateReadable":"February 12th, 2025"},"versionCreatedAt":"2024-03-28 16:15:14","video":"","vorDoi":"10.1007/s12640-025-00732-8","vorDoiUrl":"https://doi.org/10.1007/s12640-025-00732-8","workflowStages":[]},"version":"v1","identity":"rs-4097975","journalConfig":"researchsquare"},"__N_SSP":true},"page":"/article/[identity]/[[...version]]","query":{"redirect":"/article/rs-4097975","identity":"rs-4097975","version":["v1"]},"buildId":"qtupq5eGEP_6zYnWcrvyt","isFallback":false,"isExperimentalCompile":false,"dynamicIds":[84888],"gssp":true,"scriptLoader":[]}

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