Genome-wide indentification for genes involved in sodium dodecyl sulfate toxicity in Saccharomyces cerevisiae | 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 Genome-wide indentification for genes involved in sodium dodecyl sulfate toxicity in Saccharomyces cerevisiae Chunlei Cao, Zhengfeng Cao, Peibin Yu, Yunying Zhao This is a preprint; it has not been peer reviewed by a journal. https://doi.org/ 10.21203/rs.2.15488/v3 This work is licensed under a CC BY 4.0 License Status: Published Journal Publication published 17 Feb, 2020 Read the published version in BMC Microbiology → Version 3 posted You are reading this latest preprint version Show more versions Abstract Background: Sodium dodecyl sulfate (SDS) is one of the most widely used anionic alkyl sulfate surfactants. Toxicological information on SDS is accumulating, however, mechanisms of SDS toxicity regulation remain poorly understood. In this study, the relationship between the SDS-sensitive mutants and their intracellular ROS levels has been investigated. Results: Through a genome-scale screen, we have identified 108 yeast single-gene deletion mutants that are sensitive to 0.03% SDS. These genes were predominantly related to the cellular processes of metabolism, cell cycle and DNA processing, cellular transport, transport facilities and transport routes, transcription and the protein with binding function or cofactor requirement (structural or catalytic). Measurement of the intracellular ROS (reactive oxygen species) levels of these SDS-sensitive mutants showed that about 79% of SDS-sensitive mutants accumulated significantly higher intracellular ROS levels than the wild-type cells under SDS stress. Moreover, SDS could generate oxidative damage and up-regulate several antioxidant defenses genes, and some of the SDS-sensitive genes were involved in this process. Conclusion: This study provides insight on yeast genes involved in SDS tolerance and the elevated intracellular ROS caused by SDS stress, which is a potential way to understand the detoxification mechanisms of SDS by yeast cells. General Microbiology Saccharomyces cerevisiae SDS Genetic screening Genomics ROS Figures Figure 1 Figure 2 Figure 3 Figure 4 Background Surfactants are organic pollutants distributed widely in the current environment, and their toxicity has caused widespread concern. One of the synthetic anionic surfactants, sodium dodecyl sulfate (SDS), or sodium lauryl sulfate (SLS), a product that consists of approximately 70 % sodium dodecyl sulfate and 30 % sodium tetradecyl sulfate, with the formula of CH3(CH2) 11 OSO 3 Na, has been used in many cleaning and hygiene products such as liquid soaps, shampoos, bubble baths, shower gels, and nearly all toothpastes. SDS is also used in pharmaceutical and food products, as well as in industiral and laboratory applications, i.e, SDS can form complexes with protein through hydrophobic interactions and thus be used in polyacrylamide gel electrophoresis to determine the molecular weight of proteins [ 1 , 2 ]. The concentration of SDS found in consumer products varies by product and manufacturer but typically ranges from 0.01% to 50% in cosmetic products and 1% to 30% in cleaning products [ 3 ]. The lethal dose, 50% (LD50) for SDS is 0.8-1.10 g/kg in rats, SDS concentrations ﹥2% are considered irritating to normal skin in human patch testing, and >5% causes depression, labored breathing, diarrhea, and death ( four out of 20 animals) [ 2 ]. Safety concerns with SDS application in human include carcinogenicity, skin and eye irritation, and aphthous ulcers. The toxicity of SDS has been demonstrated in bacteria, microalgae, crustaceans, echinoderms, rats, humans and carp. The basis of SDS toxicity seems to be mainly related to the alteration of the cellular ionic balance caused by cellular membrane permeability alterations and to the induction of oxidative stress, that can generate other physiological and biochemical stresses [ 4 ]. SDS elicits both physical and biochemical effects on cells, with the membrane the primary target structure, and considered as a a typical cell wall perturbing agent. Effects are concentration dependent and range from loss of barrier function and increased permeability to complete cell lysis. It is suggested that SDS causes elevated the glutathione production, lipid peroxidation as well as changes in carbon metabolism [ 5 ], leading to altered cell membrane stability and permeability as well as indirectly to increased accessibility of cell wall [ 6 ]. Yeast cell wall serves crucial functions in protecting against osmotic shock stress and mechanical steess, maintaining cell shape, as well as serving a sacffold for cell-surface proteins [ 7 ]. SDS interrupts cell membranes and then triggers the Cell Wall Integrity (CWI) signaling pathway, a kinase cascade to maintain cell integrity and can be activated by chemicals that damage the cell wall and membrane in buding yeast [ 8 ]. For example, the Slt2/Mpk1, a mitogen-activated protein (MAP) kinase, can be phosphorylated and thus activated by impaired cell integrity [ 9 ]. However, deatiled mechanisms of SDS toxicity in microorganisms or higher eukaryotes are poorly understood. Yeast has been previously used to demonstrate the effect of SDS on biological membranes, showing that micelles of SDS may penetrate the membrane through pores in the yeast cell wall and destroy the membrane [ 10 ]. In defense against SDS surplus, yeast cells increase the expression levels of genes involved in oxidative stress which might be caused by its effect on membrane structure, carbon metabolism, or DNA repair [ 2 ]. Reactive oxygen spesies (ROS) play an important role in inducing cell death or apotosis in yeast cells by causing damages to proteins, lipids and DNA [ 11 , 12 ]. In addtion, ROS could induce cell wall damage in yeast cells lacking mitochondrial DNA , making cells to become more sensitive to of SDS stress [ 13 ]. As the simplest eukaryotic organism, the budding yeast Saccharomyces cerevisiae (S. cerevisiae) has been used to identify the mechanism and regulation of metal ion transport [ 14 ]. Here, we used S. cerevisiae to explore the SDS effect on eukaryotic cell growth and compared the oxidative stress (reactive oxygen species, ROS) in cultured cells. We have firstly screened the SDS-sensitive mutants from the yeast nonessential gene deletion library and identified 108 SDS-sensitive mutants. To evaluate whether SDS generates serious oxidative stress to the SDS-sensitive mutant cells, we have then measured the cellular response of cultured yeast cells to SDS in terms of ROS levels. Specifically, we show that SDS can induce oxidative stress and that yeast cells eliminate these oxidative damage by elevating the expression levels of the genes coding for antioxidant defenses. Results An overview of genes involved in the SDS sensitivity of yeast cells To investigate the cellular functions required for cell growth under a surplus of SDS, a yeast library of diploid nonessential gene deletion was screened to identify genes involved in the sensitivity to SDS. The results show that 108 gene deletion mutants (2.3% of the screened 4757 gene deletion mutants) were identified as sensitive to 0.03% SDS (Fig. 1 and Table 1). The genotypes of these 108 mutants were confirmed by PCR with the forward primer derived from the promoter region of each correspondent gene and a reverse primer KanMX4-R (Additional file 1: Table S1 and Additional file 2: Figure S1) derived from the ORF region of KanMX4. The functional categories of these 108 genes are involved in metabolism (17), cell cycle and DNA processing (15), transcription (14), cellular transport, transport facilities and transport routes (28), biogenesis of cellular components (6), cellular communication / signal transduction mechanism (2), protein with binding function or cofactor requirement (structural or catalytic) (10), as well as unclassified proteins (16) (Table 1). Gene Ontology (GO) enrichment analysis result showed that these 108 SDS-sensitive genes were mainly enriched in vacuolar transport, ATP export, and endosomal transport among the top 16 GO terms in cluster groups (Additional file 3: Figure S2). Exposure to SDS stress results in ROS generation Since SDS had been confirmed to induce the oxidative stress response [ 2 ], we next measured the intracellular ROS levels of the 108 SDS-sensitive mutants under 0.015% SDS treatment. In the wild-type BY4743 cells, the intracellular ROS level was significantly increased under SDS stress (Fig. 2 and Additional file 4: Figure S3). Interestingly, only six mutants for ARG82 , TRP5 , GRR1 , MSH1 , LAS21 , and YNL296W of these 108 SDS-sensitive mutants, accumulated lower intracellular ROS levels when treated with 0.015% SDS than without SDS (The relative ROS levels in these mutants was smaller than 1; Fig. 2 and Additional file 4: Figure S3). It suggested that the above six genes might not be directly involved in the regulation of intracellular ROS levels under SDS stress. Of these 108 SDS-sensitive mutants, 85 mutants accumulated significantly higher intracellular ROS levels under SDS stress compared with wild-type cells (Additional file 4: Figure S3B and D), indicating that these 85 mutants might respond to lower concentration of SDS and thereby accumulated higher ROS levels than wild type cells. The rest 23 mutants accumulated similar or lower intracellular ROS levels when treated with SDS compared with wild type cells, although the relative ROS levels in some of these mutants were also very high (Fig.2 and Additional file 4: Figure S3B and D). Here we showed that mutants for genes related to the functions of metabolism and cellular transport, transport facilities and transport routes were most sensitive to SDS stress (Table 1). We listed some genes as the representative genes of their categories as below. Genes involved in cellular transport and transport routes are associated with SDS tolerance The largest functional category of these 108 identified SDS-sensitive genes is the cellular transport, transport facilities and transport routes (Table 1), including 28 genes identified. There are 63 nonessential vacuolar protein sorting (VPS) genes in the genome of S. cerevisiae [ 15 ]. Notably, 15 mutants for VPS1 , VPS16 , VPS20, VPS24, VPS22, VPS23, VPS25, VPS32, VPS33, VPS36, VPS37,VPS38, VPS51, VPS63 , and VPS64 were identified being sensitive to 0.03% SDS in the present study (Table 1; Fig. 1). The intracellular ROS levels of these 15 mutants were all induced by SDS stress, especially in mutants for VPS20 , VPS36 , VPS63 and VPS25 (Fig. 2). The results suggest that the VPS pathway involved in protein trafficking and membrane fusion plays an important role in the response of yeast cells to SDS stress. The H + -ATPase localized in the membrane of vacuole (V-ATPase) is composed of the catalytic V1 subcomplex and the proton-translocating membrane V0 subcomplex, playing crucial roles in the organelles acidification and other intracellular activities [ 16 , 17 ]. In this study, four mutants for VMA3 , VMA5 , VMA13 , and VMA21 were sensitive to 0.03% SDS (Table 1; Fig. 1). VMA5 and VMA13 encodes the V1 complex subunit C and H [ 18 , 19 ], respectively. VMA3 encodes the subunit c of the V0 complex [ 20 ]. VMA21 is not an actual component of the V-ATPase complex, but encodes proteins functioned in the assembly of the V-ATPase [ 21 ]. These results indicate that the V-ATPase is critical for S. cerevisiae cells in responding to SDS in the environment. Mutants for genes involved in cell cycle and DNA processing render yeast cells sensitive to SDS stress There are 14 genes identified in our study that are involved in cell cycle and DNA processing (Table 1; Fig. 1). The intracellular ROS levels in 13 mutants except the mutants for MSH1 were all increased under SDS stress, especially in mutants for MEM1 , PHO85 , EAF1 and XRS2 (Fig. 2). SLX5 and SLX8 encode the subunit of Slx5-Slx8 ubiquitin-like modifier (SUMO)-targeted ubiquitin ligase (STUbL) complex [ 22-24 ]. Mutants for SLX5 or SLX8 were sensitive to 0.03% SDS (Table 1 and Fig. 1), suggesting that STUbL complex is involved in SDS tolerance of yeast cells. The small SUMO-targeted ubiquitin ligase complex is a nuclear ubiquitin ligase complex that specifically targets sumoylated proteins. It is formed of homodimers or heterodimers of RING finger protein 4 family ubiquitin ligases and is conserved in eukaryotes [ 23 ]. Three genes, MSH1 , FYV6 and XRS2 , encode three proteins required for the DNA repair process [ 25-27 ], has been identified in this study. The other six genes, EAF1 , ARP5 , RSC1 , RSC2 , DCC1 and CTF4 associated with chromatin modification, remodeling and cohesion [ 28-32 ], are all required for SDS tolerance. The PHO85 gene, coding for a cyclin-dependent kinase Pho85, was screened in our study. The kinase Pho85 is involved in regulating the cellular responses of cell cycle progression, autophagy, response to DNA damage, phosphate and glycogen metabolism, establishment of cell polarity, as well calcium-mediated signaling. Therefore, deletion of the PHO85 cause a decreased resistance to oxidative stress, chemicals, toxin, utilization of carbon and nitrogen [ 33-37 ]. In addition, we have identified two genes, NEM1 and CDC50 , which are required for normal nuclear envelope morphology and sporulation, or cell division, respectively [ 38 , 39 ]. Taken together, these results suggests that SDS can affect the cell cycle and DNA processing of S. cerevisiae cells. Genes involved in aromatic amino acid biosynthesis and SDS tolerance We have identified mutants for five genes involved in the synthesis of aromatic amino acids, ARO1 , ARO2 , ARO7 , TRP1 and TRP5 that were sensitive to 0.03% SDS (Table 1; Fig. 1). The intracellular ROS levels in mutants for ARO1 , ARO7 , TRP1 and TRP5 were all higher than that of wide type cells when the cells were treated with SDS (Additional file 4: Figure S3B and D). Previously, Aro1 catalyzes steps 2 through 6 in the biosynthesis of chorismate, which is a precursor to aromatic amino acids [ 23 ]; Aro2 catalyzes the conversion of 5-enolpyruvylshikimate 3-phosphate (EPSP) to form chorismate; and Aro7 catalyzes the conversion of chorismate to prephenate to initiate the tyrosine/phenylalanine-specific branch of aromatic amino acid biosynthesis [ 40-42 ]. Trp1 and Trp5 involved in the synthesis of tryptophan, where Trp1 catalyzes the third step in tryptophan biosynthesis and Trp5 catalyzes the last step of tryptophan biosynthesis [ 43 , 44 ]. It was reported previously that trp1-1 cells had a disadvantage in the response to SDS compared to auxotrophy for adenine, histidine, leucine or uracil when cells were grown on rich media [ 45 ]. They also showed that the cell membrane damage triggered by SDS was independent of CWI (cell wall integrity) signaling and was not a cause of tryptophan starvation. Our present results confirmed this previous findings that tryptophan exhibited protection from membrane disruptions and thus conferred resistance to SDS stress. SDS generates oxidative stress by regulating the expression of genes involved in redox homeostasis The relative ROS levels in 11 mutants for PRS3 , TRP1 , NEM1 , EAF1 , IKI3 , CBP3 , VPS20 , VPS36 , VPS63 , VPS25 , and TUS1 were all higher than that of wild-type cells (Fig. 2), indicating that these 11 genes were all important for dealing with the oxidative damage generated by SDS stress. To further confirm these results, we constructed the 11 plasmids expressing the above 11 genes in pRS316 plasmid, respectively, and then transformed them into the corresponding mutants. The growth defect of SDS-treatment mutant cells could be suppressed by introducing the expression plasmid back into the corresponding mutants (Fig. 3A), and their intracellular ROS levels were also recovered to that of the wild-type cells (Fig. 3B). Taken together, these results indicate that yeast cells lacking any of the above 11 genes are sensitive to SDS stress, leading to increased intracellular ROS levels. It was reported that many of the oxidative stress scavenging genes could be induced by SDS stress in a DNA microarray analysis [ 2 ]. To investigate whether the deletion of genes PRS3 , TRP1 , NEM1 , EAF1 , IKI3 , CBP3 , VPS20 , VPS36 , VPS63 , VPS25 , and TUS1 influence the expression of genes coding for the antioxidant defenses, we tested the expression of GSH1 (glutamylcysteine synthetase), SOD1 (cooper/zinc superoxide dismutase), CTT1 (cytosolic catalase T), GPX2 (2-Cys peroxiredoxin), TRR1 (thioredoxin reductase) and TRX2 (thioredoxin 2) by quantitative real-time PCR analyses. In the wild-type cells, the expression levels of GSH1 , SOD1 , CTT1 and GPX2 were significantly up-regulated after treatment with 0.015% SDS (Fig. 4), while no significant difference in the expression levels of TRR1 or TRX2 were observed when treated with or without SDS (Additional file 5: Figure S4). Interestingly, both of the expression levels of SOD1 and CTT1 were reduced in the 11 mutants compared with wild type cells (Fig. 4B and 4C). In addition, the expression levels of GSH1 and GPX2 were also reduced in these mutants except the mutants for NEM1 and VPS25 , or EAF1 , respectively (Fig. 4A and 4D). To investigate the decreased expression of GSH1 , SOD1 , CTT1 and GPX2 , we further analyzed the expression levels of these four genes in the wide type cells treated with 0.005% and 0.01% (Additional file 6: Figure S5). We found that the expression levels of GSH1 , SOD1 , CTT1 and GPX2 were induced when the SDS concentrations were 0.01 and 0.015, but remain unchanged or slightly induced when the SDS concentration was 0.005%. It suggested that the expressions of the above four genes were dependent on the concentration of SDS. Overall, our results demonstrate that the decreased expression of GSH1 , SOD1 , CTT1 and GPX2 might be responsible for the high intracellular ROS levels accumulated in these mutants than wide type cells. Discussion SDS is considered as a generally recognized safe ingredient for food and hygiene products. However, safety concern arises as oral ulcer or skin irritation was reported to be caused by products containing SDS in recent studies [ 46 , 47 ]. S. cerevisiae, a budding yeast used in brewing beer and baking, is a single-celled eukaryote used extensively in laborary due to the fact that its genome has been sequenced and its genetics are easily manipulated. Here, we used S. cerevisiae to examiner the genome-wide SDS stress on eukaryotes and identified 108 SDS-sensitive mutants from the yeast nonessential gene deletion library, representing 2.3% of the screened 4757 gene deletion mutants. Previous study reported that 295 ORFs were up-regulated and 118 ORFs were down-regulated aftert SDS treatment , and the functional classifications of these genes were involved in a number of major cellular processes, including metabolism, protein sorting, transcription, cellular transport and biogenesis, DNA and protein synthesis, cellular communication / signal transduction and ionic homeostasis, etc [ 2 ]. Interestingly, The 108 SDS-sensitive genes encoded proteins that are also involved in many of these cellular processes. A significant aspect of SDS toxicity may be related to its effect on biological membranes that SDS may penetrate the membrane through pores in the yeast cell wall and destroy the membrane [ 48 ]. For example, SDS is used as a perturbing agent to cell wall integrity, and through MPT5 and SSD1 signaling pathway SDS can result in sensitivity to changes in external osmolarity, defect budding, and cell lysis [ 49 ]. Our results support this by showing that mutants for six genes ( TUS1 , ROM2 , SIT4 , TOH1 , SLG1 and LAS21 ) involved in the process of cell wall integrity were sensitive to SDS (Table 1 and Fig. 1). Interstingly, the intracellular ROS levels in these six mutants were all higher than wide type cells when cells were teated with SDS, indicating their crucial role in maintaining the cell wall integrity under SDS stress in S. cerevisiae . Beside the stress on cell wall, SDS also introduced stresses on intracellular sorting and delivery of soluble vacuolar proteins. The largest functional category (28) of these identified SDS-sensitive genes are of cellular transport, transport facilities and transport routes. Vacuolar protein sorting (VPS) genes involved in vesicle transport to vacuoles play an important role in segregating molecules into distinct organelles and even affect the telomere length regulation [ 50 ]. Vacuolar H(+)-ATPase (V-ATPase) localized in the vacuole membrane (V-ATPase) is composed of the catalytic V1 subcomplex and the proton-translocating membrane V0 subcomplex [ 51 ]. It has a crucial role in the vacuolar system and acidification of the vacuole and other internal compartments including the whole secretory pathway [ 52 ]. The V1 complex is composed of at least eight subunits (A-H) encoded by eight VMA (Vacuolar Membrane ATPase) genes: VMA1 , VMA2 , VMA4 , VMA5 , VMA7 , VMA8 , VMA10 and VMA13 , respectively. The V0 complex is composed of at least five subunits (a, c, d, c’ and c’’) encoded by six VMA genes: VPH1 , STV1 , VMA3 , VMA6 , VMA11 , and VMA16 , respectively. Three genes VMA12 , VMA21 and VMA22 encode proteins that are required for the biogenesis of a functional V-ATPase [ 51 ]. Mutants for the VMA genes showed growth defects in response to oxidative stress, such as H 2 O 2 [ 53 ]. In present study, 15 SDS-sensitive genes involved in the VPS pathway and four SDS-sensitive genes involved in V-ATPase function have been identified sensitive to SDS stress. We speculate that the absence of these genes might reduce the supply of cell wall and/or cell membrane components, leading to cell membrane damage or defects in cell wall structure in the SDS stress. The expression of about 65 genes involved in the carbon metabolism were induced by SDS stress, including genes related to amino acid metabolism, C-compound and carbohydrate metabolism, lipid, fatty acid, and isoprenoid metabolism, vitamin, cofactor, and prosthetic group metabolism, and nucleotide metabolism [ 2 , 54 ]. Mutants for a large group of 16 genes involved in metabolism is revealed to be sensitive to SDS stress in the present study, including six genes related to amino acids metabolism ( ARO1 , ARO2 , ARO7, TRP1, TRP5 , PRS3 and THR4 ), four genes related to lipid and fatty acid metabolism ( ARG82 , ELO3 , IPK1, and ERG3 ), four genes involved in nucleotide metabolism ( GRR1 , REG1 , ELM1 and AFT1 ), and one gene associated with carbohydrate metabolism ( NRK1 ) (Table 1 and Fig. 1). In a previous study, it has been showed that the cell membrane damage trigged by SDS stress was independent of Cell Wall Integrity signaling pathway, and the biosynthesis of tryptophan and tyrosine played an important role in the SDS-induced plasma membrane stress response [ 45 ]. It is might explain why the six mutants for ARO1 , ARO2 , ARO7, TRP1, , PRS3 and TRP5, involved in the synthesis of aromatic amino acids and tryptophan, were sensitive to SDS toxicity. In addition, lipid and fatty acid metabolism has significant role in maintaining the structures of cell membrane and cell wall, nucleotide metabolism is related to the processes of DNA synthesis, cell division and DNA repair, while carbohydrate metabolism is associated to cell growth and many other cellular activities. Moreover, it has been previously reported that, cell wall defects led to cells sensitive to SDS stress for a weakened cell wall allows it to penetrate more easily [ 8 ]. Therefore, it is not surprising that deletion mutants for the other ten genes involved in the above metabolism functions are sensitive to SDS stress. Another concern with SDS toxicity has been its carcinogenicity; no evidence shows SDS-related tumorigenicity or carcinogenicity in early official review. SDS was extensively tested for genetic toxicity. Tests with SDS in bacterial or in mammalian systems (in vitro and in vivo) show no indication of genotoxicity with or without metabolic activation [ 55 ]. Published reports suggest that SDS has low acute mammalian toxicity and no known chronic effects. However, we have identified 14 SDS-sensitive genes of S. cerevisiae are involved in cell cycle and DNA processing in our study, though further investigation is required to clarify the significance. Finally, we examined the intracellular ROS levels under SDS stress. Increased ROS level may result in significant damage to cell structures and constant high ROS level is known as oxidative stress. Most significantly, ROS is considered to damage DNA or RNA of cells. Under the SDS treatment, we observed most mutants (85/108) increased the intracellular ROS levels comparing with the wild-types, consistent with their being-affected growth. We pick up 11 mutants for PRS3 , TRP1 , NEM1 , EAF1 , IKI3 , CBP3 , VPS20 , VPS36 , VPS63 , VPS25 , and TUS1 , which accumulated higher relative ROS levels than that of wild-type cells under SDS treatment (Fig. 2), to investigate the mechanism of oxidative damage induced by SDS stress. We have shown that the expression of some antioxidant defenses genes were down-regulated by SDS stress in these mutants. It suggests that some of the SDS-sensitive genes might be involved in maintaining the redox balance under SDS treatment. However, some mutants reduced its ROS production, the genes involved in these mutants may be related the detoxification of SDS by yeast cells. Another interesting result of our study is that six mutants for ARG82 , TRP5 , GRR1 , MSH1 , LAS21 , and YNL296W , accumulated lower intracellular ROS levels under 0.015% SDS treatment when compared with no SDS treatment. They could also play a role in detoxification of SDS by yeast cells, but further investigations are needed. Conclusions To study the SDS toxicity we have performed a genome-wide screen for mutants that are sensitive to 0.03% SDS. It is demonstrated that the intracellular ROS levels in 85 of the identified 108 SDS-sensitive mutants were significantly higher than that of the wild-type BY4743 cells in response to SDS stress. In addition, the expression levels of genes involved in antioxidant defenses suggest that SDS might generate oxidative damage by regulating these genes, leading to cells sensitive to SDS stress. Taken together, our present study provides a potential way to understand the detoxification mechanisms of SDS by yeast cells. Methods Strains, media and culture conditions All S. cerevisiae strains were derived from the S288C genetic background. The homozygous diploid deletion mutant library were purchased from Invitrogen Inc. [http://clones.invitrogen.com/] and was frozen at -80 ℃ in 96-well microtitre plates in 15% glycerol in liquid YPD medium (1% yeast extract, 2% peptone, 2% glucose). SD-URA media (0.17% (w/v) yeast nitrogen base, 2% (w/v) glucose, 0.5% ammonia sulfate, adding 1/10 mL amino acid mixture without uracil) was used to culture yeast cells for plasmid selection. Solid media were produced by adding 2% (w/v) agar when necessary. SDS was purchased from Sangon Biotech (Shanghai, China), and Dihydroethidium was purchased from Sigma (Beijing, China). Primary screen for mutants involved in SDS toxicity Prior to the primary screen for SDS-sensitive mutations, the deletion mutant library was first transferred to fresh liquid YPD medium and cultured at 30℃. Then each mutant strains were transferred to fresh liquid YPD medium with or without 0.015% SDS, respectively, and cultured at 30℃ for about 6 to 12 h. The growth rates of each mutant in YPD medium with and without 0.015% SDS were measured at OD 600 to determine the SDS-sensitivity in the primary screen. The SDS sensitive strains showed reduced growth and was defined as mutants with a relative OD 600 reduced by more than 30% in liquid YPD medium containing supplemented SDS but not in liquid YPD medium without supplemented SDS as compared to that of the wild-type. Phenotypic analysis by spot dilution growth assays The identified mutants that appeared sensitive were subjected to the secondary screen retested by spot dilution growth assays. In brief, each mutants were cultured overnight in liquid YPD at 30℃ and then were spotted onto YPD plates with or without 0.03% SDS in comparison to the wild type BY4743 strain. To further confirm the SDS sensitivity of mutants for PRS3 , TRP1 , NEM1 , EAF1 , IKI3 , CBP3 , VPS20 , VPS36 , VPS63 , VPS25 , and TUS1 genes, we introduced the pRS316 vector and pRS316 vector expressing the conresponding genes back into mutants for PRS3 , TRP1 , NEM1 , EAF1 , IKI3 , CBP3 , VPS20 , VPS36 , VPS63 , VPS25 , and TUS1 . The sensitivity to SDS of the transformants was examined on YPD and YPD+0.03% SDS plates using the above serial dilution assay method. DNA manipulations To express the TRP1 gene in the plasmid pRS316, the DNA fragment which contains the promoter, ORF and terminator region, was first amplified with primers TRP1-F and TRP1-R (Additional file 1: Table S1), and were cloned into the Bam HI and Hin dⅢ sites of pRS316 to yield pRS316- TRP1 . The other plasmids of pRS316- IKI3 , pRS316- PRS3 , pRS316- CBP3 , pRS316- NEM1 , pRS316- VPS36 , pRS316- VPS25 , pRS316- VPS63 , pRS316- VPS20 , pRS316- TUS1 and pRS316- EAF1 were all constructed by the same method described above. All the inserts were confirmed by DNA sequencing. Oxidative stress assay for SDS-sensitive mutants To determine the cellular oxidative stress of the SDS-sensitive mutants, we tested the intracellular ROS level by the dihydroethidium as previously described [ 56 ]. Briefly, overnight cell cultures were inoculated in YPD to an optical density OD 600 =0.1, grown to middle log phase, and split into two aliquots with or without 0.015% SDS and were grown for 2 h. Then about 5×10 6 cells were harvested by centrifugation and resuspended in 250 μl PBS with 2.5 μg/ml DHE, and incubated in the dark for 30 min. The relative fluorescence units (RFU) were tested by a fluorescence reader (Synergy™ H4, BioTek). RNA extraction and quantitative PCR analysis The mutants were first grown to middle log phase (OD 600 =0.6-1.0), and then they were grown in the presence or absence of 0.015% SDS for 1 h. The total RNA was extracted by hot phenol method. The genomic DNA was first removed from the total RNA with RNase-free DNase I. The first-strand cDNA synthesis was performed using the Primer Script RT reagent kit (Cwbiotech, China) according to the manufacturer’s instructions. The expression mRNA levels of TRR1 , TRX2 , GSH1 , SOD1 , CTT1 and GPX2 were detected by quantitative PCR (qPCR) as described previously [ 57 ] (Additional file 1: Table S1). Each reaction was carried out in triplicate. Enrichment analysis for the identified genes The web-based tool ( http://metascape.org/gp/index.html#/main/step1 ) was used for enrichment analysis of SDS-sensitive genes. p-value 1.5 were set as the cutoff criteria and the significance was ranked by enrichment score (-log 10 (P-value)). Abbreviations SDS, sodium dodecyl sulfate; ROS, reavtive oxygen species; VPS, vacuolar protein sorting; VMA, vacuolar membrane ATPase; qPCR: quantitative PCR; RFU: relative fluorescence units; CWI, cell wall integrity Declarations Acknowledgements We thank the Test Platform for Large Instruments and Equipment of School of Biotechnology and the State Key Laboratory of Food Science and Technology for the technical supports. Funding This work was supported by the Natural Science Foundation of Jiangsu Province (BK20181345) and the Open Foundation of Jiangsu Key Laboratory of Industrial Biotechnology (KLIB-KF201807). None of the funders had any role in designing and/or conducting of the study; collection,management, analysis and interpretation of the data; and preparation, review or approval of the manuscript. Authors’ contributions ZYY designed the experiment and revised the manuscript. CCL and CZF performed the experiment. CCL and YPB wrote and revised the manuscript. We confirm that the final version manuscript has been read and approved by all named authors. Availability of data and materials All data generated or analysed during this study are included in this published article and its supplementary information files. Ethics approval and consent to participate Not applicable. Consent for publication Not applicable. Competing interests The authors declare that they have no competing interests. Author details 1 National Engineering Laboratory for Cereal Fermentation Technology (NELCF), Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China. 2 Jiangsu Provincial Research Center for Bioactive Product Processing Technology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China. 3 College of Animal Science and Technology, Yangzhou University, Yangzhou, Jiangsu 225009, China. Publisher’s Note Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations. 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Nat Cell Biol 2012; 14(9):966-76. Ball SG, Wickner RB, Cottarel G, Schaus M, Tirtiaux C. Molecular cloning and characterization of ARO7-OSM2 , a single yeast gene necessary for chorismate mutase activity and growth in hypertonic medium. Mol Gen Genet 1986; 205(2):326-30. Leng G, Song K. Watch out for your TRP1 marker: the effect of TRP1 gene on the growth at high and low temperatures in budding yeast. Fems Microbiol Lett 2016; 363(10). Zalkin H, Yanofsky C. Yeast gene TRP5 : structure, function, regulation. J Biol Chem 1982; 257(3):1491-500. Schroeder L, Ikui AE. Tryptophan confers resistance to SDS-associated cell membrane stress in Saccharomyces cerevisiae . PLoS One 2019; 14(3):e0199484. Lippert F. An introduction to toothpaste - its purpose, history and ingredients. Monogr Oral Sci 2013; 23:1-14. Marrakchi S, Maibach HI. Sodium lauryl sulfate-induced irritation in the human face: regional and age-related differences. Skin Pharmacol Physiol 2006; 19(3):177-80. Levin DE, Bartlett-Heubusch E. Mutants in the S. cerevisiae PKC1 gene display a cell cycle-specific osmotic stability defect. J Cell Biol 1992; 116(5):1221-9. Kaeberlein M, Guarente L. Saccharomyces cerevisiae MPT5 and SSD1 function in parallel pathways to promote cell wall integrity. Genetics 2002; 160(1):83-95. Rog O, Smolikov S, Krauskopf A, Kupiec M. The yeast VPS genes affect telomere length regulation. Curr Genet 2005; 47(1):18-28. Graham LA, Powell B, Stevens TH. Composition and assembly of the yeast vacuolar H(+)-ATPase complex. J Exp Biol 2000; 203(Pt 1):61-70. Corbacho I, Teixido F, Olivero I, Hernandez LM. Dependence of Saccharomyces cerevisiae Golgi functions on V-ATPase activity. FEMS Yeast Res 2012; 12(3):341-50. Milgrom E, Diab H, Middleton F, Kane PM: Loss of vacuolar proton-translocating ATPase activity in yeast results in chronic oxidative stress. J Biol Chem 2007, 282(10):7125-36. Nickerson KW, Aspedon A. Detergent-shock response in enteric bacteria. Mol Microbiol 1992; 6(8):957-61. Cohen A, Nelson H, Nelson N. The family of SMF metal ion transporters in yeast cells. J Biol Chem 2000; 275(43):33388-94. Buttner S, Eisenberg T, Carmona-Gutierrez D, Ruli D, Knauer H, Ruckenstuhl C, Sigrist C, Wissing S, Kollroser M, Frohlich KU et al . Endonuclease G regulates budding yeast life and death. Mol Cell 2007; 25(2):233-46. Zhao YY, Cao CL, Liu YL, Wang J, Li J, Li SY, Deng Y. Identification of the genetic requirements for zinc tolerance and toxicity in Saccharomyces cerevisiae . G3 (Bethesda). 2019. doi: 10.1534/g3.119.400933. Table Table 1 Functional categories of 108 genes whose deletion mutants are sensitive to 0.03% SDS The number of asterisks represents SDS-sensitivity of different mutants. Mutant with five asterisks was most sensitive to SDS stress, while mutant with one asterisk was least sensitive to SDS. Function Genes Metabolism (16) PRS3 * THR4 ** ARG82 **** REG1 *** IPK1 *** ARO1 ***** TRP1 ***** TRP5 ***** ELM1 ***** AYT1 * ELO3 ***** ARO7 ***** ARO2 **** NRK1 **** GRR1 **** ERG3 **** Cell cycle and DNA processing (14) NEM1 **** CDC50 ***** SLX5 *** PHO85 *** MSH1 *** DCC1 *** EAF1 ** XRS2 RSC2 *** FYV6 **** ARP5 ** CTF4 ** RSC1 * SLX8 * Transcription (14) BRE1 ** BDF1 ***** DEP1 * SAC3 **** MOT2 ***** DEG1 *** SFL1 * POP2 **** CTK1 *** LSM1 * SRB5 *** SPT4 * IKI3 *** SGF29 * Cellular transport, transport facilities and transport routes (28) GOS1 **** PHO87 ** VPS23 ***** VMA3 ***** YPT31 **** LOA1 *** VMA13 **** VPS22 ***** VPS36 ***** VPS38 **** VPS37 ***** VPS63 ***** VPS24 **** VPS25 ***** RCY1 ***** VPS51 **** CHS5 ***** VPS32 ***** ISA1 **** PIL1 ** VMA5 **** VPS20 ***** VPS16 ***** VPS1 ***** VPS33 ***** VPS64 ** VMA21 ***** VID22 **** Protein with binding function or cofactor requirement (structural or catalytic) (9) DIA4 **** RPL35A ** NUP84 ** APL2 **** MAP1 ** RPL13B ** CBP3 ** HIT1 * OCT1 ** Biogenesis of cellular components (5) MDM10 *** MRPL32 * MRPL24 ** GIM5 * MDM20 ***** Cell wall integrity and osmotic stress response (7) TUS1 *** ROM2 *** SIT4 *** TOH1 ***** SLG1 * LAS21 ** PBS2 **** Unclassified proteins (15) SRF1 * YDL041W * YLR358C ** YNL296W *** YPR123C *** YDR149C * YOR331C ***** YGR272C * YLR374C * YKL136W * YGR160W * BRP1 **** BUD30 * API2 ** YDR008C * Additional File Legends Additional file 1: Table S1. Primers used in this study Additional file 2: Figure S1. Genotype confirmation of the 108 gene deletion mutants by PCR. Cells of the 108 gene mutants were grown overnight in YPD medium at 30℃ and then collected for DNA extraction. PCR was performed with genomic DNA of each of these mutants with the primer located at the upstream of its open reading frame and the reverse primer KanMX4-R from the internal sequence of the KanMX4. PCR products were separated on 1% agarose gel, and sizes of the DNA marker were indicated on the left or right of the gel. Additional file 3: Figure S2. Meta-enrichment analysis summary of SDS-sensitive genes. Heatmap of the top 16 enriched GO terms. For GO terms, each band represents one enriched term coloured according to its -log 10 p -value. The dominant term within each group is used as a group heading. Additional file 4: Figure S3. Intracellular ROS levels of 108 SDS-sensitive gene mutants in response to SDS stress. a: Metabolism; b: Cell cycle and DNA Processing; c: Transcription; d: Protein with Binding Function or Cofactor Requirement (structural or catalytic); e: Cellular Transport, Transport Facilities and Transport Routes; f: Biogenesis of cellular components; g: Cell wall integrity and osmotic stress response; h: Unclassified Proteins. Log-phase cells were grown with or without 0.015% SDS for two hours before they were collected for measurement of intracellular ROS levels stained by the dihydroethidium. The intracellular ROS levels of these SDS-sensitive mutants were listed according to their categories in comparison to that of wild type cell BY4743. The value is the average of three independent assays for each strain. Additional file 5: Figure S4. The expression of TRR1 and TRX2 under SDS stress. (A-B) WT and the indicated 11 mutants were treated to SDS medium for 1 h. The expression of the indicated genes was tested by qRT-PCR. The value is the average of three independent assays for each strain. Additional file 6: Figure S5. The expression levels of GSH1 , SOD1 , CTT1 and GPX2 genes in response to different concentrations of SDS in the wide type BY4743 cells. The expression of the indicated genes was tested by qRT-PCR. The value is the average of three independent assays for each strain. Supplementary Files Fig.S2.tif TableS1.docx Fig.S5.tif Fig.S3.tif Fig.S1.tif Fig.S4.tif Cite Share Download PDF Status: Published Journal Publication published 17 Feb, 2020 Read the published version in BMC Microbiology → Version 3 posted You are reading this latest preprint version Show more versions Research Square lets you share your work early, gain feedback from the community, and start making changes to your manuscript prior to peer review in a journal. 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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-6153","acceptedTermsAndConditions":true,"allowDirectSubmit":true,"archivedVersions":[],"articleType":"Research article","associatedPublications":[],"authors":[{"id":333369,"identity":"c22ac302-a3a5-4682-88ad-25aecf7c0454","order_by":1,"name":"Chunlei Cao","email":"","orcid":"","institution":"Jiangnan University","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Chunlei","middleName":"","lastName":"Cao","suffix":""},{"id":333370,"identity":"2b14e4e3-28af-45ef-b09b-9ea32002dae4","order_by":2,"name":"Zhengfeng Cao","email":"","orcid":"","institution":"Yangzhou University","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Zhengfeng","middleName":"","lastName":"Cao","suffix":""},{"id":333371,"identity":"6f953962-dc7a-4965-a2cf-771b38908e04","order_by":3,"name":"Peibin Yu","email":"","orcid":"","institution":"Jiangnan University","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Peibin","middleName":"","lastName":"Yu","suffix":""},{"id":333372,"identity":"896bbdcb-6a13-422f-b6d7-ead04fa8f5fa","order_by":4,"name":"Yunying Zhao","email":"data:image/png;base64,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","orcid":"","institution":"Jiangnan University","correspondingAuthor":true,"submittingAuthor":false,"prefix":"","firstName":"Yunying","middleName":"","lastName":"Zhao","suffix":""}],"badges":[],"createdAt":"2019-09-26 14:37:11","currentVersionCode":3,"declarations":"","doi":"10.21203/rs.2.15488/v3","doiUrl":"https://doi.org/10.21203/rs.2.15488/v3","draftVersion":[],"editorialEvents":[{"content":"https://doi.org/10.1186/s12866-020-1721-2","type":"published","date":"2020-02-17T18:18:27+00:00"}],"editorialNote":"","failedWorkflow":false,"files":[{"id":453946,"identity":"a7ae7dae-ae8d-4768-8aa4-d8e34170f3c9","added_by":"auto","created_at":"2020-02-05 19:39:37","extension":"png","order_by":1,"title":"Figure 1","display":"","copyAsset":false,"role":"figure","size":3222178,"visible":true,"origin":"","legend":"Phenotypes of the 108 SDS-sensitive deletion mutants of each functional category. Cells of the wild-type BY4743 and SDS-sensitive gene deletion mutants identified from the genome-scale screen were grown at 30 °C in liquid YPD overnight, serially diluted by 10 times and spotted on YPD plates with or without 0.03% SDS, respectively. Plates were incubated for 2 days at 30 °C. SDS, sodium dodecyl sulfate.","description":"","filename":"fig1.png","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/fig1.png"},{"id":453947,"identity":"c7dcbe64-e4ac-4bb7-941b-0a590da44029","added_by":"auto","created_at":"2020-02-05 19:39:37","extension":"png","order_by":2,"title":"Figure 2","display":"","copyAsset":false,"role":"figure","size":478211,"visible":true,"origin":"","legend":"Relative ROS levels of 108 SDS-sensitive gene mutants in response to SDS stress. a: Metabolism; b: Cell cycle and DNA Processing; c: Transcription; d: Protein with Binding Function or Cofactor Requirement (structural or catalytic); e: Cellular Transport, Transport Facilities and Transport Routes; f: Biogenesis of cellular components; g: Cell wall integrity and osmotic stress respons; h: Unclassified Proteins. Log-phase cells were grown with or without 0.015% SDS for two hours before they were collected for measurement of intracellular ROS levels stained by the dihydroethidium. The relative ROS levels of these SDS-sensitive mutants were listed according to their categories. Each date indicated the ratio between levels of ROS in YPD+SDS versus YPD alone. The value is the average of three independent assays for each strain.","description":"","filename":"fig2.png","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/fig2.png"},{"id":453949,"identity":"bc1eb583-7c73-46cd-a585-71e7d35be151","added_by":"auto","created_at":"2020-02-05 19:39:37","extension":"jpg","order_by":3,"title":"Figure 3","display":"","copyAsset":false,"role":"figure","size":554031,"visible":true,"origin":"","legend":"Introducing the conresponding genes back into the mutants surpress their SDS-sensitive and high intracellular ROS levels. (A) Complementation of the constructed expression plasmid in the sensitivity of the conresponding mutant to 0.03% SDS. (B) Intracellular ROS levels of the 11 indicated SDS-sensitive gene mutants in response to SDS stress. Strains containing the indicated plasmid were cultured in SD-URA over night for the complementary assay. To analyze the intracellular ROS levels, strains containing the indicated plasmid were first cultured to log-phase before being shifted to YPD with 0.015% SDS for additional two hours before they were collected for measurement of intracellular ROS levels stained by the dihydroethidium. The value is the average of three independent assays for each strain.","description":"","filename":"Fig.3.jpg","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. 3.jpg"},{"id":453952,"identity":"2632c550-ddb7-48ae-b45a-b11fa152afba","added_by":"auto","created_at":"2020-02-05 19:39:38","extension":"jpg","order_by":4,"title":"Figure 4","display":"","copyAsset":false,"role":"figure","size":351945,"visible":true,"origin":"","legend":"The expression of GSH1, SOD1, CTT1 and GPX2 genes coding for the antioxidant defenses are regulated by SDS stress. (A-D) WT and the indicated 11 mutants were treated to SDS medium for 1 h. The expression of the indicated genes was tested by qRT-PCR. The value is the average of three independent assays for each strain.","description":"","filename":"Fig.4.jpg","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. 4.jpg"},{"id":14033495,"identity":"56273b01-e971-4e8f-ab16-22918d4b1360","added_by":"auto","created_at":"2021-09-27 18:27:32","extension":"pdf","order_by":0,"title":"","display":"","copyAsset":false,"role":"manuscript-pdf","size":2373922,"visible":true,"origin":"","legend":"","description":"","filename":"manuscript.pdf","url":"https://assets-eu.researchsquare.com/files/rs-6153/v3/69969804-60dc-4970-a0d3-d42187135a4e.pdf"},{"id":453951,"identity":"6c5862fa-3b1e-410a-9425-5dc42d3a80b9","added_by":"auto","created_at":"2020-02-05 19:39:38","extension":"tif","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":311321,"visible":true,"origin":"","legend":"","description":"","filename":"Fig.S2.tif","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. S2.tif"},{"id":453953,"identity":"4e4ed836-6532-418e-ad2c-8fb49f876004","added_by":"auto","created_at":"2020-02-05 19:39:38","extension":"docx","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":21969,"visible":true,"origin":"","legend":"","description":"","filename":"TableS1.docx","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Table S1.docx"},{"id":453954,"identity":"60a4a549-3b7b-4ef0-892e-f39f93182098","added_by":"auto","created_at":"2020-02-05 19:39:38","extension":"tif","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":648196,"visible":true,"origin":"","legend":"","description":"","filename":"Fig.S5.tif","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. S5.tif"},{"id":453955,"identity":"3e41e923-0df1-42e2-8eba-53bb2af7e02e","added_by":"auto","created_at":"2020-02-05 19:39:38","extension":"tif","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":2605692,"visible":true,"origin":"","legend":"","description":"","filename":"Fig.S3.tif","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. S3.tif"},{"id":453950,"identity":"9167012c-9ed7-4d2d-9a7e-46bfd932f9b6","added_by":"auto","created_at":"2020-02-05 19:39:37","extension":"tif","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":6946774,"visible":true,"origin":"","legend":"","description":"","filename":"Fig.S1.tif","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. S1.tif"},{"id":453948,"identity":"81a8aa33-ce32-4dbb-a775-d9fa812e8816","added_by":"auto","created_at":"2020-02-05 19:39:37","extension":"tif","order_by":0,"title":"","display":"","copyAsset":false,"role":"supplement","size":769340,"visible":true,"origin":"","legend":"","description":"","filename":"Fig.S4.tif","url":"https://assets-eu.researchsquare.com/files/59d900ec-d736-4376-9915-83e3a0cb4843/v3/Fig. S4.tif"}],"financialInterests":"","formattedTitle":"Genome-wide indentification for genes involved in sodium dodecyl sulfate toxicity in Saccharomyces cerevisiae","fulltext":[{"header":"Background","content":"\u003cp\u003eSurfactants are organic pollutants distributed widely in the current environment, and their toxicity has caused widespread concern. One of the synthetic anionic surfactants, sodium dodecyl sulfate (SDS), or sodium lauryl sulfate (SLS), a product that consists of approximately 70 % sodium dodecyl sulfate and 30 % sodium tetradecyl sulfate, with the formula of CH3(CH2)\u003csub\u003e11\u003c/sub\u003eOSO\u003csub\u003e3\u003c/sub\u003eNa, has been used in many cleaning and hygiene products such as liquid soaps, shampoos, bubble baths, shower gels, and nearly all toothpastes. SDS is also used in pharmaceutical and food products, as well as in industiral and laboratory applications, i.e, SDS can form complexes with protein through hydrophobic interactions and thus be used in polyacrylamide gel electrophoresis to determine the molecular weight of proteins [\u003ca href=\"#_ENREF_1\"\u003e1\u003c/a\u003e, \u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e]. The concentration of SDS found in consumer products varies by product and manufacturer but typically ranges from 0.01% to 50% in cosmetic products and 1% to 30% in cleaning products [\u003ca href=\"#_ENREF_3\"\u003e3\u003c/a\u003e]. The lethal dose, 50% (LD50) for SDS is 0.8-1.10 g/kg in rats, SDS concentrations ﹥2% are considered irritating to normal skin in human patch testing, and \u0026gt;5% causes depression, labored breathing, diarrhea, and death ( four out of 20 animals) [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e].\u003c/p\u003e\n\u003cp\u003eSafety concerns with SDS application in human include carcinogenicity, skin and eye irritation, and aphthous ulcers. The toxicity of SDS has been demonstrated in bacteria, microalgae, crustaceans, echinoderms, rats, humans and carp. The basis of SDS toxicity seems to be mainly related to the alteration of the cellular ionic balance caused by cellular membrane permeability alterations and to the induction of oxidative stress, that can generate other physiological and biochemical stresses [\u003ca href=\"#_ENREF_4\"\u003e4\u003c/a\u003e]. SDS elicits both physical and biochemical effects on cells, with the membrane the primary target structure, and considered as a a typical cell wall perturbing agent. Effects are concentration dependent and range from loss of barrier function and increased permeability to complete cell lysis. It is suggested that SDS causes elevated the glutathione production, lipid peroxidation as well as changes in carbon metabolism [\u003ca href=\"#_ENREF_5\"\u003e5\u003c/a\u003e], leading to altered cell membrane stability and permeability as well as indirectly to increased accessibility of cell wall [\u003ca href=\"#_ENREF_6\"\u003e6\u003c/a\u003e]. Yeast cell wall serves crucial functions in protecting against osmotic shock stress and mechanical steess, maintaining cell shape, as well as serving a sacffold for cell-surface proteins [\u003ca href=\"#_ENREF_7\"\u003e7\u003c/a\u003e]. SDS interrupts cell membranes and then triggers the Cell Wall Integrity (CWI) signaling pathway, a kinase cascade to maintain cell integrity and can be activated by chemicals that damage the cell wall and membrane in buding yeast [\u003ca href=\"#_ENREF_8\"\u003e8\u003c/a\u003e]. For example, the Slt2/Mpk1, a mitogen-activated protein (MAP) kinase, can be phosphorylated and thus activated by impaired cell integrity [\u003ca href=\"#_ENREF_9\"\u003e9\u003c/a\u003e]. However, deatiled mechanisms of SDS toxicity in microorganisms or higher eukaryotes are poorly understood.\u003c/p\u003e\n\u003cp\u003eYeast has been previously used to demonstrate the effect of SDS on biological membranes, showing that micelles of SDS may penetrate the membrane through pores in the yeast cell wall and destroy the membrane [\u003ca href=\"#_ENREF_10\"\u003e10\u003c/a\u003e]. In defense against SDS surplus, yeast cells increase the expression levels of genes involved in oxidative stress which might be caused by its effect on membrane structure, carbon metabolism, or DNA repair [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e]. Reactive oxygen spesies (ROS) play an important role in inducing cell death or apotosis in yeast cells by causing damages to proteins, lipids and DNA [\u003ca href=\"#_ENREF_11\"\u003e11\u003c/a\u003e, \u003ca href=\"#_ENREF_12\"\u003e12\u003c/a\u003e]. In addtion, ROS could induce cell wall damage in yeast cells lacking mitochondrial DNA , making cells to become more sensitive to of SDS stress [\u003ca href=\"#_ENREF_13\"\u003e13\u003c/a\u003e]. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eAs the simplest eukaryotic organism, the budding yeast \u003cem\u003eSaccharomyces cerevisiae\u003c/em\u003e \u003cem\u003e(S. cerevisiae) \u003c/em\u003ehas been used to identify the mechanism and regulation of metal ion transport [\u003ca href=\"#_ENREF_14\"\u003e14\u003c/a\u003e]. Here, we used \u003cem\u003eS. cerevisiae\u003c/em\u003e to explore the SDS effect on eukaryotic cell growth and compared the oxidative stress (reactive oxygen species, ROS) in cultured cells. We have firstly screened the SDS-sensitive mutants from the yeast nonessential gene deletion library and identified 108 SDS-sensitive mutants. To evaluate whether SDS generates serious oxidative stress to the SDS-sensitive mutant cells, we have then measured the cellular response of cultured yeast cells to SDS in terms of ROS levels. Specifically, we show that SDS can induce oxidative stress and that yeast cells eliminate these oxidative damage by elevating the expression levels of the genes coding for antioxidant defenses.\u0026nbsp;\u003c/p\u003e"},{"header":"Results","content":"\u003cp\u003e\u003cstrong\u003eAn overview of genes involved in the SDS sensitivity of yeast cells\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eTo investigate the cellular functions required for cell growth under a surplus of SDS, a yeast library of diploid nonessential gene deletion was screened to identify genes involved in the sensitivity to SDS. The results show that 108 gene deletion mutants (2.3% of the screened 4757 gene deletion mutants) were identified as sensitive to 0.03% SDS (Fig. 1 and Table 1). The genotypes of these 108 mutants were confirmed by PCR with the forward primer derived from the promoter region of each correspondent gene and a reverse primer KanMX4-R (Additional file 1: Table S1 and Additional file 2: Figure S1) derived from the ORF region of KanMX4. The functional categories of these 108 genes are involved in metabolism (17), cell cycle and DNA processing (15), transcription (14), cellular transport, transport facilities and transport routes (28), biogenesis of cellular components (6), cellular communication / signal transduction mechanism (2), protein with binding function or cofactor requirement (structural or catalytic) (10), as well as unclassified proteins (16) (Table 1). Gene Ontology (GO) enrichment analysis result showed that these 108 SDS-sensitive genes were mainly enriched in vacuolar transport, ATP export, and endosomal transport among the top 16 GO terms in cluster groups \u0026nbsp;(Additional file 3: Figure S2).\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eExposure to SDS stress results in ROS generation\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eSince SDS had been confirmed to induce the oxidative stress response [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e], we next measured the intracellular ROS levels of the 108 SDS-sensitive mutants under 0.015% SDS treatment. In the wild-type BY4743 cells, the intracellular ROS level was significantly increased under SDS stress (Fig. 2 and Additional file 4: Figure S3). Interestingly, only six mutants for \u003cem\u003eARG82\u003c/em\u003e, \u003cem\u003eTRP5\u003c/em\u003e, \u003cem\u003eGRR1\u003c/em\u003e, \u003cem\u003eMSH1\u003c/em\u003e, \u003cem\u003eLAS21\u003c/em\u003e, and \u003cem\u003eYNL296W\u003c/em\u003e of these 108 SDS-sensitive mutants, accumulated lower intracellular ROS levels when treated with 0.015% SDS than without SDS (The relative ROS levels in these mutants was smaller than 1; Fig. 2 and Additional file 4: Figure S3). It suggested that the above six genes might not be directly involved in the regulation of intracellular ROS levels under SDS stress. Of these 108 SDS-sensitive mutants, 85 mutants accumulated significantly higher intracellular ROS levels under SDS stress compared with wild-type cells (Additional file 4: Figure S3B and D), indicating that these 85 mutants might respond to lower concentration of SDS and thereby accumulated higher ROS levels than wild type cells. The rest 23 mutants accumulated similar or lower intracellular ROS levels when treated with SDS compared with wild type cells, although the relative ROS levels in some of these mutants were also very high (Fig.2 and Additional file 4: Figure S3B and D). Here we showed that mutants for genes related to the functions of metabolism and cellular transport, transport facilities and transport routes were most sensitive to SDS stress (Table 1). We listed some genes as the representative genes of their categories as below.\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eGenes involved in cellular transport and transport routes are associated with SDS tolerance\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe largest functional category of these 108 identified SDS-sensitive genes is the cellular transport, transport facilities and transport routes (Table 1), including 28 genes identified. There are 63 nonessential vacuolar protein sorting (VPS) genes in the genome of \u003cem\u003eS. cerevisiae\u003c/em\u003e [\u003ca href=\"#_ENREF_15\"\u003e15\u003c/a\u003e]. Notably, 15 mutants for \u003cem\u003eVPS1\u003c/em\u003e, \u003cem\u003eVPS16\u003c/em\u003e, \u003cem\u003eVPS20, VPS24, VPS22, VPS23, VPS25, VPS32, VPS33, VPS36, VPS37,VPS38, VPS51, VPS63\u003c/em\u003e, and \u003cem\u003eVPS64\u003c/em\u003e were identified being sensitive to 0.03% SDS in the present study (Table 1; Fig. 1). The intracellular ROS levels of these 15 mutants were all induced by SDS stress, especially in mutants for \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e and\u003cem\u003e VPS25\u003c/em\u003e (Fig. 2). The results suggest that the VPS pathway involved in protein trafficking and membrane fusion plays an important role in the response of yeast cells to SDS stress.\u003c/p\u003e\n\u003cp\u003eThe H\u003csup\u003e+\u003c/sup\u003e-ATPase localized in the membrane of vacuole (V-ATPase) is composed of the catalytic V1 subcomplex and the proton-translocating membrane V0 subcomplex, playing crucial roles in the organelles acidification and other intracellular activities [\u003ca href=\"#_ENREF_16\"\u003e16\u003c/a\u003e, \u003ca href=\"#_ENREF_17\"\u003e17\u003c/a\u003e]. In this study, four mutants for \u003cem\u003eVMA3\u003c/em\u003e, \u003cem\u003eVMA5\u003c/em\u003e, \u003cem\u003eVMA13\u003c/em\u003e, and\u003cem\u003e VMA21\u003c/em\u003e were sensitive to 0.03% SDS (Table 1; Fig. 1). \u003cem\u003eVMA5\u003c/em\u003e and \u003cem\u003eVMA13\u003c/em\u003e encodes the V1 complex subunit C and H [\u003ca href=\"#_ENREF_18\"\u003e18\u003c/a\u003e, \u003ca href=\"#_ENREF_19\"\u003e19\u003c/a\u003e], respectively. \u003cem\u003eVMA3\u003c/em\u003e encodes the subunit c of the V0 complex [\u003ca href=\"#_ENREF_20\"\u003e20\u003c/a\u003e]. \u003cem\u003eVMA21\u003c/em\u003e is not an actual component of the V-ATPase complex, but encodes proteins functioned in the assembly of the V-ATPase [\u003ca href=\"#_ENREF_21\"\u003e21\u003c/a\u003e]. These results indicate that the V-ATPase is critical for \u003cem\u003eS. cerevisiae\u003c/em\u003e cells in responding to SDS in the environment.\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eMutants for genes involved in cell cycle and DNA processing render yeast cells sensitive to SDS stress\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThere are 14 genes identified in our study that are involved in cell cycle and DNA processing (Table 1; Fig. 1). The intracellular ROS levels in 13 mutants except the mutants for \u003cem\u003eMSH1\u003c/em\u003e were all increased under SDS stress, especially in mutants for \u003cem\u003eMEM1\u003c/em\u003e, \u003cem\u003ePHO85\u003c/em\u003e, \u003cem\u003eEAF1 \u003c/em\u003eand \u003cem\u003eXRS2\u003c/em\u003e (Fig. 2). \u003cem\u003eSLX5\u003c/em\u003e and \u003cem\u003eSLX8\u003c/em\u003e encode the subunit of Slx5-Slx8 ubiquitin-like modifier (SUMO)-targeted ubiquitin ligase (STUbL) complex [\u003ca href=\"#_ENREF_22\"\u003e22-24\u003c/a\u003e]. Mutants for \u003cem\u003eSLX5\u003c/em\u003e or \u003cem\u003eSLX8\u003c/em\u003e were sensitive to 0.03% SDS (Table 1 and Fig. 1), suggesting that STUbL complex is involved in SDS tolerance of yeast cells. The small SUMO-targeted ubiquitin ligase complex is a nuclear ubiquitin ligase complex that specifically targets sumoylated proteins. It is formed of homodimers or heterodimers of RING finger protein 4 family ubiquitin ligases and is conserved in eukaryotes [\u003ca href=\"#_ENREF_23\"\u003e23\u003c/a\u003e]. Three genes, \u003cem\u003eMSH1\u003c/em\u003e, \u003cem\u003eFYV6\u003c/em\u003e and \u003cem\u003eXRS2\u003c/em\u003e, encode three proteins required for the DNA repair process [\u003ca href=\"#_ENREF_25\"\u003e25-27\u003c/a\u003e], has been identified in this study. The other six genes, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eARP5\u003c/em\u003e,\u003cem\u003e RSC1\u003c/em\u003e, \u003cem\u003eRSC2\u003c/em\u003e, \u003cem\u003eDCC1\u003c/em\u003e and \u003cem\u003eCTF4\u003c/em\u003e associated with chromatin modification, remodeling and cohesion [\u003ca href=\"#_ENREF_28\"\u003e28-32\u003c/a\u003e], are all required for SDS tolerance. The \u003cem\u003ePHO85\u003c/em\u003e gene, coding for a cyclin-dependent kinase Pho85, was screened in our study. The kinase Pho85 is involved in regulating the cellular responses of cell cycle progression, autophagy, response to DNA damage, phosphate and glycogen metabolism, establishment of cell polarity, as well calcium-mediated signaling. Therefore, deletion of the \u003cem\u003ePHO85\u003c/em\u003e cause a decreased resistance to oxidative stress, chemicals, toxin, utilization of carbon and nitrogen [\u003ca href=\"#_ENREF_33\"\u003e33-37\u003c/a\u003e]. In addition, we have identified two genes, \u003cem\u003eNEM1\u003c/em\u003e and \u003cem\u003eCDC50\u003c/em\u003e, which are required for normal nuclear envelope morphology and sporulation, or cell division, respectively [\u003ca href=\"#_ENREF_38\"\u003e38\u003c/a\u003e, \u003ca href=\"#_ENREF_39\"\u003e39\u003c/a\u003e]. Taken together, these results suggests that SDS can affect the cell cycle and DNA processing of \u003cem\u003eS. cerevisiae\u003c/em\u003e cells.\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eGenes involved in aromatic amino acid biosynthesis and SDS tolerance\u0026nbsp; \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eWe have identified mutants for five genes involved in the synthesis of aromatic amino acids, \u003cem\u003eARO1\u003c/em\u003e, \u003cem\u003eARO2\u003c/em\u003e, \u003cem\u003eARO7\u003c/em\u003e, \u003cem\u003eTRP1 \u003c/em\u003eand\u003cem\u003e TRP5\u003c/em\u003e that were sensitive to 0.03% SDS (Table 1; Fig. 1). The intracellular ROS levels in mutants for \u003cem\u003eARO1\u003c/em\u003e, \u003cem\u003eARO7\u003c/em\u003e, \u003cem\u003eTRP1 \u003c/em\u003eand\u003cem\u003e TRP5 \u003c/em\u003ewere all higher than that of wide type cells when the cells were treated with SDS (Additional file 4: Figure S3B and D). Previously, Aro1 catalyzes steps 2 through 6 in the biosynthesis of chorismate, which is a precursor to aromatic amino acids [\u003ca href=\"#_ENREF_23\"\u003e23\u003c/a\u003e]; Aro2 catalyzes the conversion of 5-enolpyruvylshikimate 3-phosphate (EPSP) to form chorismate; and Aro7 catalyzes the conversion of chorismate to prephenate to initiate the tyrosine/phenylalanine-specific branch of aromatic amino acid biosynthesis [\u003ca href=\"#_ENREF_40\"\u003e40-42\u003c/a\u003e]. Trp1 and Trp5 involved in the synthesis of tryptophan, where Trp1 catalyzes the third step in tryptophan biosynthesis and Trp5 catalyzes the last step of tryptophan biosynthesis [\u003ca href=\"#_ENREF_43\"\u003e43\u003c/a\u003e, \u003ca href=\"#_ENREF_44\"\u003e44\u003c/a\u003e]. It was reported previously that \u003cem\u003etrp1-1\u003c/em\u003e cells had a disadvantage in the response to SDS compared to auxotrophy for adenine, histidine, leucine or uracil when cells were grown on rich media [\u003ca href=\"#_ENREF_45\"\u003e45\u003c/a\u003e]. They also showed that the cell membrane damage triggered by SDS was independent of CWI (cell wall integrity) signaling and was not a cause of tryptophan starvation. Our present results confirmed this previous findings that tryptophan exhibited protection from membrane disruptions and thus conferred resistance to SDS stress.\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eSDS generates oxidative stress by regulating the expression of genes involved in redox homeostasis\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe relative ROS levels in 11 mutants for \u003cem\u003ePRS3\u003c/em\u003e, \u003cem\u003eTRP1\u003c/em\u003e, \u003cem\u003eNEM1\u003c/em\u003e, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eIKI3\u003c/em\u003e, \u003cem\u003eCBP3\u003c/em\u003e, \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e, \u003cem\u003eVPS25\u003c/em\u003e, and \u003cem\u003eTUS1 \u003c/em\u003ewere all higher than that of wild-type cells (Fig. 2), indicating that these 11 genes were all important for dealing with the oxidative damage generated by SDS stress. To further confirm these results, we constructed the 11 plasmids expressing the above 11 genes in pRS316 plasmid, respectively, and then transformed them into the corresponding mutants. The growth defect of SDS-treatment mutant cells could be suppressed by introducing the expression plasmid back into the corresponding mutants (Fig. 3A), and their intracellular ROS levels were also recovered to that of the wild-type cells (Fig. 3B). Taken together, these results indicate that yeast cells lacking any of the above 11 genes are sensitive to SDS stress, leading to increased intracellular ROS levels.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIt was reported that many of the oxidative stress scavenging genes could be induced by SDS stress in a DNA microarray analysis [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e]. To investigate whether the deletion of genes \u003cem\u003ePRS3\u003c/em\u003e, \u003cem\u003eTRP1\u003c/em\u003e, \u003cem\u003eNEM1\u003c/em\u003e, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eIKI3\u003c/em\u003e, \u003cem\u003eCBP3\u003c/em\u003e, \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e, \u003cem\u003eVPS25\u003c/em\u003e, and \u003cem\u003eTUS1\u003c/em\u003e influence the expression of genes coding for the antioxidant defenses, we tested the expression of \u003cem\u003eGSH1\u003c/em\u003e (glutamylcysteine synthetase), \u003cem\u003eSOD1 \u003c/em\u003e(cooper/zinc superoxide dismutase), \u003cem\u003eCTT1\u003c/em\u003e (cytosolic catalase T), \u003cem\u003eGPX2\u003c/em\u003e (2-Cys peroxiredoxin), \u003cem\u003eTRR1\u003c/em\u003e (thioredoxin reductase) and \u003cem\u003eTRX2\u003c/em\u003e (thioredoxin 2) by quantitative real-time PCR analyses. In the wild-type cells, the expression levels of \u003cem\u003eGSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e were significantly up-regulated after treatment with 0.015% SDS (Fig. 4), while no significant difference in the expression levels of \u003cem\u003eTRR1\u003c/em\u003e or \u003cem\u003eTRX2 \u003c/em\u003ewere observed when treated with or without SDS (Additional file 5: Figure S4). Interestingly, both of the expression levels of \u003cem\u003eSOD1\u003c/em\u003e and \u003cem\u003eCTT1\u003c/em\u003e were reduced in the 11 mutants compared with wild type cells (Fig. 4B and 4C). In addition, the expression levels of \u003cem\u003eGSH1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e were also reduced in these mutants except the mutants for \u003cem\u003eNEM1\u003c/em\u003e and \u003cem\u003eVPS25\u003c/em\u003e, or \u003cem\u003eEAF1\u003c/em\u003e, respectively (Fig. 4A and 4D). To investigate the decreased expression of\u003cem\u003e GSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e, we further analyzed the expression levels of these four genes in the wide type cells treated with 0.005% and 0.01% (Additional file 6: Figure S5). We found that the expression levels of\u003cem\u003e GSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e were induced when the SDS concentrations were 0.01 and 0.015, but remain unchanged or slightly induced when the SDS concentration was 0.005%. It suggested that the expressions of the above four genes were dependent on the concentration of SDS. Overall, our results demonstrate that the decreased expression of \u003cem\u003eGSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e might be responsible for the high intracellular ROS levels accumulated in these mutants than wide type cells. \u0026nbsp;\u003c/p\u003e"},{"header":"Discussion","content":"\u003cp\u003eSDS is considered as a generally recognized safe ingredient for food and hygiene products. However, safety concern arises as oral ulcer or skin irritation was reported to be caused by products containing SDS in recent studies [\u003ca href=\"#_ENREF_46\"\u003e46\u003c/a\u003e, \u003ca href=\"#_ENREF_47\"\u003e47\u003c/a\u003e]. \u003cem\u003eS. cerevisiae,\u003c/em\u003e a budding yeast used in brewing beer and baking, is a single-celled eukaryote used extensively in laborary due to the fact that its genome has been sequenced and its\u003c/p\u003e\n\u003cp\u003egenetics are easily manipulated. Here, we used \u003cem\u003eS. cerevisiae \u003c/em\u003eto examiner the genome-wide SDS stress on eukaryotes and identified 108 SDS-sensitive mutants from the yeast nonessential gene deletion library, representing 2.3% of the screened 4757 gene deletion mutants. Previous study reported that 295 ORFs were up-regulated and 118 ORFs were down-regulated aftert SDS treatment , and the functional classifications of these genes were involved in a number of major cellular processes, including metabolism, protein sorting, transcription, cellular transport and biogenesis, DNA and protein synthesis, cellular communication / signal transduction and ionic homeostasis, etc [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e]. Interestingly, The 108 SDS-sensitive genes encoded proteins that are also involved in many of these cellular processes.\u003c/p\u003e\n\u003cp\u003eA significant aspect of SDS toxicity may be related to its effect on biological membranes that SDS may penetrate the membrane through pores in the yeast cell wall and destroy the membrane [\u003ca href=\"#_ENREF_48\"\u003e48\u003c/a\u003e]. For example, SDS is used as a perturbing agent to cell wall integrity, and through \u003cem\u003eMPT5\u003c/em\u003e and \u003cem\u003eSSD1 \u003c/em\u003esignaling pathway SDS can result in sensitivity to changes in external osmolarity, defect budding, and cell lysis [\u003ca href=\"#_ENREF_49\"\u003e49\u003c/a\u003e]. Our results support this by showing that mutants for six genes (\u003cem\u003eTUS1\u003c/em\u003e, \u003cem\u003eROM2\u003c/em\u003e, \u003cem\u003eSIT4\u003c/em\u003e, \u003cem\u003eTOH1\u003c/em\u003e, \u003cem\u003eSLG1\u003c/em\u003e and \u003cem\u003eLAS21\u003c/em\u003e) involved in the process of cell wall integrity were sensitive to SDS (Table 1 and Fig. 1). Interstingly, the intracellular ROS levels in these six mutants were all higher than wide type cells when cells were teated with SDS, indicating their crucial role in maintaining the cell wall integrity under SDS stress in \u003cem\u003eS. cerevisiae\u003c/em\u003e.\u003c/p\u003e\n\u003cp\u003eBeside the stress on cell wall, SDS also introduced stresses on intracellular sorting and delivery of soluble vacuolar proteins. The largest functional category (28) of these identified SDS-sensitive genes are of cellular transport, transport facilities and transport routes. Vacuolar protein sorting (VPS) genes involved in vesicle transport to vacuoles play an important role in segregating molecules into distinct organelles and even affect the telomere length regulation [\u003ca href=\"#_ENREF_50\"\u003e50\u003c/a\u003e]. Vacuolar H(+)-ATPase (V-ATPase) localized in the vacuole membrane (V-ATPase) is composed of the catalytic V1 subcomplex and the proton-translocating membrane V0 subcomplex [\u003ca href=\"#_ENREF_51\"\u003e51\u003c/a\u003e]. It has a crucial role in the vacuolar system and acidification of the vacuole and other internal compartments including the whole secretory pathway [\u003ca href=\"#_ENREF_52\"\u003e52\u003c/a\u003e]. The V1 complex is composed of at least eight subunits (A-H) encoded by eight \u003cem\u003eVMA \u003c/em\u003e(Vacuolar Membrane ATPase) genes: \u003cem\u003eVMA1\u003c/em\u003e, \u003cem\u003eVMA2\u003c/em\u003e, \u003cem\u003eVMA4\u003c/em\u003e, \u003cem\u003eVMA5\u003c/em\u003e, \u003cem\u003eVMA7\u003c/em\u003e, \u003cem\u003eVMA8\u003c/em\u003e, \u003cem\u003eVMA10 \u003c/em\u003eand \u003cem\u003eVMA13\u003c/em\u003e, respectively. The V0 complex is composed of at least five subunits (a, c, d, c\u0026rsquo; and c\u0026rsquo;\u0026rsquo;) encoded by six \u003cem\u003eVMA\u003c/em\u003e genes: \u003cem\u003eVPH1\u003c/em\u003e,\u003cem\u003e STV1\u003c/em\u003e, \u003cem\u003eVMA3\u003c/em\u003e, \u003cem\u003eVMA6\u003c/em\u003e, \u003cem\u003eVMA11\u003c/em\u003e, and\u003cem\u003e VMA16\u003c/em\u003e, respectively. Three genes \u003cem\u003eVMA12\u003c/em\u003e, \u003cem\u003eVMA21 \u003c/em\u003eand \u003cem\u003eVMA22\u003c/em\u003e encode proteins that are required for the biogenesis of a functional V-ATPase [\u003ca href=\"#_ENREF_51\"\u003e51\u003c/a\u003e]. Mutants for the VMA genes showed growth defects in response to oxidative stress, such as H\u003csub\u003e2\u003c/sub\u003eO\u003csub\u003e2 \u003c/sub\u003e[\u003ca href=\"#_ENREF_53\"\u003e53\u003c/a\u003e]. In present study, 15 SDS-sensitive genes involved in the VPS pathway and four SDS-sensitive genes involved in V-ATPase function have been identified sensitive to SDS stress. We speculate that the absence of these genes might reduce the supply of cell wall and/or cell membrane components, leading to cell membrane damage or defects in cell wall structure in the SDS stress.\u003c/p\u003e\n\u003cp\u003eThe expression of about 65 genes involved in the carbon metabolism were induced by SDS stress, including genes related to amino acid metabolism, C-compound and carbohydrate metabolism, lipid, fatty acid, and isoprenoid metabolism, vitamin, cofactor, and prosthetic group metabolism, and nucleotide metabolism [\u003ca href=\"#_ENREF_2\"\u003e2\u003c/a\u003e, \u003ca href=\"#_ENREF_54\"\u003e54\u003c/a\u003e]. Mutants for a large group of 16 genes involved in metabolism is revealed to be sensitive to SDS stress in the present study, including six genes related to amino acids metabolism (\u003cem\u003eARO1\u003c/em\u003e, \u003cem\u003eARO2\u003c/em\u003e, \u003cem\u003eARO7, TRP1, TRP5\u003c/em\u003e, \u003cem\u003ePRS3 \u003c/em\u003eand \u003cem\u003eTHR4\u003c/em\u003e), four genes related to lipid and fatty acid metabolism (\u003cem\u003eARG82\u003c/em\u003e, \u003cem\u003eELO3\u003c/em\u003e, \u003cem\u003eIPK1, \u003c/em\u003eand\u003cem\u003e ERG3\u003c/em\u003e), four genes involved in nucleotide metabolism (\u003cem\u003eGRR1\u003c/em\u003e, \u003cem\u003eREG1\u003c/em\u003e, \u003cem\u003eELM1 \u003c/em\u003eand\u003cem\u003e AFT1\u003c/em\u003e), and one gene associated with carbohydrate metabolism (\u003cem\u003eNRK1\u003c/em\u003e) (Table 1 and Fig. 1). In a previous study, it has been showed that the cell membrane damage trigged by SDS stress was independent of Cell Wall Integrity signaling pathway, and the biosynthesis of tryptophan and tyrosine played an important role in the SDS-induced plasma membrane stress response [\u003ca href=\"#_ENREF_45\"\u003e45\u003c/a\u003e]. It is might explain why the six mutants for \u003cem\u003eARO1\u003c/em\u003e, \u003cem\u003eARO2\u003c/em\u003e, \u003cem\u003eARO7, TRP1, \u003c/em\u003e, \u003cem\u003ePRS3 \u003c/em\u003eand\u003cem\u003e TRP5,\u003c/em\u003e involved in the synthesis of aromatic amino acids and tryptophan, were sensitive to SDS toxicity. In addition, lipid and fatty acid metabolism has significant role in maintaining the structures of cell membrane and cell wall, nucleotide metabolism is related to the processes of DNA synthesis, cell division and DNA repair, while carbohydrate metabolism is associated to cell growth and many other cellular activities. Moreover, it has been previously reported that, cell wall defects led to cells sensitive to SDS stress for a weakened cell wall allows it to penetrate more easily [\u003ca href=\"#_ENREF_8\"\u003e8\u003c/a\u003e]. Therefore, it is not surprising that deletion mutants for the other ten genes involved in the above metabolism functions are sensitive to SDS stress.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eAnother concern with SDS toxicity has been its carcinogenicity; no evidence shows SDS-related tumorigenicity or carcinogenicity in early official review. SDS was extensively tested for genetic toxicity. Tests with SDS in bacterial or in mammalian systems (in vitro and in vivo) show no indication of genotoxicity with or without metabolic activation [\u003ca href=\"#_ENREF_55\"\u003e55\u003c/a\u003e]. Published reports suggest that SDS has low acute mammalian toxicity and no known chronic effects. However, we have identified 14 SDS-sensitive genes of \u003cem\u003eS. cerevisiae\u003c/em\u003e are involved in cell cycle and DNA processing in our study, though further investigation is required to clarify the significance.\u003c/p\u003e\n\u003cp\u003eFinally, we examined the intracellular ROS levels under SDS stress. Increased ROS level may result in significant damage to cell structures and constant high ROS level is known as oxidative stress. Most significantly, ROS is considered to damage DNA or RNA of cells. Under the SDS treatment, we observed most mutants (85/108) increased the intracellular ROS levels comparing with the wild-types, consistent with their being-affected growth. We pick up 11 mutants for \u003cem\u003ePRS3\u003c/em\u003e, \u003cem\u003eTRP1\u003c/em\u003e, \u003cem\u003eNEM1\u003c/em\u003e, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eIKI3\u003c/em\u003e, \u003cem\u003eCBP3\u003c/em\u003e, \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e, \u003cem\u003eVPS25\u003c/em\u003e, and \u003cem\u003eTUS1\u003c/em\u003e, which accumulated higher relative ROS levels than that of wild-type cells under SDS treatment (Fig. 2), to investigate the mechanism of oxidative damage induced by SDS stress. We have shown that the expression of some antioxidant defenses genes were down-regulated by SDS stress in these mutants. It suggests that some of the SDS-sensitive genes might be involved in maintaining the redox balance under SDS treatment. However, some mutants reduced its ROS production, the genes involved in these mutants may be related the detoxification of SDS by yeast cells. Another interesting result of our study is that six mutants for \u003cem\u003eARG82\u003c/em\u003e, \u003cem\u003eTRP5\u003c/em\u003e, \u003cem\u003eGRR1\u003c/em\u003e, \u003cem\u003eMSH1\u003c/em\u003e, \u003cem\u003eLAS21\u003c/em\u003e, and \u003cem\u003eYNL296W\u003c/em\u003e, accumulated lower intracellular ROS levels under 0.015% SDS treatment when compared with no SDS treatment. They could also play a role in detoxification of SDS by yeast cells, but further investigations are needed.\u003c/p\u003e"},{"header":"Conclusions","content":"\u003cp\u003eTo study the SDS toxicity we have performed a genome-wide screen for mutants that are sensitive to 0.03% SDS. It is demonstrated that the intracellular ROS levels in 85 of the identified 108 SDS-sensitive mutants were significantly higher than that of the wild-type BY4743 cells in response to SDS stress. In addition, the expression levels of genes involved in antioxidant defenses suggest that SDS might generate oxidative damage by regulating these genes, leading to cells sensitive to SDS stress. Taken together, our present study provides a potential way to understand the detoxification mechanisms of SDS by yeast cells.\u003c/p\u003e"},{"header":"Methods","content":"\u003cp\u003e\u003cstrong\u003eStrains, media and culture conditions\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eAll\u003cem\u003e S. cerevisiae \u003c/em\u003estrains were derived from the S288C genetic background. The homozygous diploid deletion mutant library were purchased from Invitrogen Inc. [http://clones.invitrogen.com/] and was frozen at -80 ℃ in 96-well microtitre plates in 15% glycerol in liquid YPD medium (1% yeast extract, 2% peptone, 2% glucose). SD-URA media (0.17% (w/v) yeast nitrogen base, 2% (w/v) glucose, 0.5% ammonia sulfate, adding 1/10 mL amino acid mixture without uracil) was used to culture yeast cells for plasmid selection. Solid media were produced by adding 2% (w/v) agar when necessary. SDS was purchased from Sangon Biotech (Shanghai, China), and Dihydroethidium was purchased from Sigma (Beijing, China).\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003ePrimary screen for mutants involved in SDS toxicity \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003ePrior to the primary screen for SDS-sensitive mutations, the deletion mutant library was first transferred to fresh liquid YPD medium and cultured at 30℃. Then each mutant strains were transferred to fresh liquid YPD medium with or without 0.015% SDS, respectively, and cultured at 30℃ for about 6 to 12 h. The growth rates of each mutant in YPD medium with and without 0.015% SDS were measured at OD\u003csub\u003e600\u003c/sub\u003e to determine the SDS-sensitivity in the primary screen. The SDS sensitive strains showed reduced growth and was defined as mutants with a relative OD\u003csub\u003e600\u003c/sub\u003e reduced by more than 30% in liquid YPD medium containing supplemented SDS but not in liquid YPD medium without supplemented SDS as compared to that of the wild-type.\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003ePhenotypic analysis by spot dilution growth assays\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe identified mutants that appeared sensitive were subjected to the secondary screen retested by spot dilution growth assays. In brief, each mutants were cultured overnight in liquid YPD at 30℃ and then were spotted onto YPD plates with or without 0.03% SDS in comparison to the wild type BY4743 strain.\u003c/p\u003e\n\u003cp\u003eTo further confirm the SDS sensitivity of mutants for \u003cem\u003ePRS3\u003c/em\u003e, \u003cem\u003eTRP1\u003c/em\u003e, \u003cem\u003eNEM1\u003c/em\u003e, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eIKI3\u003c/em\u003e, \u003cem\u003eCBP3\u003c/em\u003e, \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e, \u003cem\u003eVPS25\u003c/em\u003e, and \u003cem\u003eTUS1\u003c/em\u003e genes, we introduced the pRS316 vector and pRS316 vector expressing the conresponding genes back into mutants for \u003cem\u003ePRS3\u003c/em\u003e, \u003cem\u003eTRP1\u003c/em\u003e, \u003cem\u003eNEM1\u003c/em\u003e, \u003cem\u003eEAF1\u003c/em\u003e, \u003cem\u003eIKI3\u003c/em\u003e, \u003cem\u003eCBP3\u003c/em\u003e, \u003cem\u003eVPS20\u003c/em\u003e, \u003cem\u003eVPS36\u003c/em\u003e, \u003cem\u003eVPS63\u003c/em\u003e, \u003cem\u003eVPS25\u003c/em\u003e, and \u003cem\u003eTUS1\u003c/em\u003e. The sensitivity to SDS of the transformants was examined on YPD and YPD+0.03% SDS plates using the above serial dilution assay method.\u003c/p\u003e\n\u003cp\u003e\u003cem\u003e\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eDNA manipulations\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eTo express the \u003cem\u003eTRP1\u003c/em\u003e gene in the plasmid pRS316, the DNA fragment which contains the promoter, ORF and terminator region, was first amplified with primers TRP1-F and TRP1-R (Additional file 1: Table S1), and were cloned into the \u003cem\u003eBam\u003c/em\u003eHI and \u003cem\u003eHin\u003c/em\u003edⅢ sites of pRS316 to yield pRS316-\u003cem\u003eTRP1\u003c/em\u003e. The other plasmids of pRS316- \u003cem\u003eIKI3\u003c/em\u003e, pRS316-\u003cem\u003ePRS3\u003c/em\u003e, pRS316-\u003cem\u003eCBP3\u003c/em\u003e, pRS316-\u003cem\u003eNEM1\u003c/em\u003e, pRS316-\u003cem\u003eVPS36\u003c/em\u003e, pRS316-\u003cem\u003eVPS25\u003c/em\u003e, pRS316-\u003cem\u003eVPS63\u003c/em\u003e, pRS316-\u003cem\u003eVPS20\u003c/em\u003e, pRS316-\u003cem\u003eTUS1\u003c/em\u003e and pRS316-\u003cem\u003eEAF1\u003c/em\u003e were all constructed by the same method described above. All the inserts were confirmed by DNA sequencing.\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eOxidative stress assay for SDS-sensitive mutants \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eTo determine the cellular oxidative stress of the SDS-sensitive mutants, we tested the intracellular ROS level by the dihydroethidium as previously described [\u003ca href=\"#_ENREF_56\"\u003e56\u003c/a\u003e]. Briefly, overnight cell cultures were inoculated in YPD to an optical density OD\u003csub\u003e600\u003c/sub\u003e=0.1, grown to middle log phase, and split into two aliquots with or without 0.015% SDS and were grown for 2 h. Then about 5\u0026times;10\u003csup\u003e6\u003c/sup\u003e cells were harvested by centrifugation and resuspended in 250 \u0026mu;l PBS with 2.5 \u0026mu;g/ml DHE, and incubated in the dark for 30 min. The relative fluorescence units (RFU) were tested by a fluorescence reader (Synergy\u0026trade; H4, BioTek).\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eRNA extraction and quantitative PCR analysis \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe mutants were first grown to middle log phase (OD\u003csub\u003e600\u003c/sub\u003e =0.6-1.0), and then they were grown in the presence or absence of 0.015% SDS for 1 h. The total RNA was extracted by hot phenol method. The genomic DNA was first removed from the total RNA with RNase-free DNase I. The first-strand cDNA synthesis was performed using the Primer Script RT reagent kit (Cwbiotech, China) according to the manufacturer\u0026rsquo;s instructions. The expression mRNA levels of \u003cem\u003eTRR1\u003c/em\u003e, \u003cem\u003eTRX2\u003c/em\u003e, \u003cem\u003eGSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and\u003cem\u003e GPX2\u003c/em\u003e were detected by quantitative PCR (qPCR) as described previously [\u003ca href=\"#_ENREF_57\"\u003e57\u003c/a\u003e] (Additional file 1: Table S1). Each reaction was carried out in triplicate.\u003c/p\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eEnrichment analysis for the identified genes\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe web-based tool (\u003ca href=\"http://metascape.org/gp/index.html#/main/step1\"\u003ehttp://metascape.org/gp/index.html#/main/step1\u003c/a\u003e) was used for enrichment analysis of SDS-sensitive genes. p-value \u0026lt;0.01, min overlap genes = 3, and min enrichment factor \u0026gt;1.5 were set as the cutoff criteria and the significance was ranked by enrichment score (-log 10 (P-value)).\u003c/p\u003e"},{"header":"Abbreviations","content":"\u003cp\u003eSDS, sodium dodecyl sulfate; ROS, reavtive oxygen species; VPS, vacuolar protein sorting; VMA, vacuolar membrane ATPase; qPCR: quantitative PCR; RFU: relative fluorescence units; CWI, cell wall integrity \u003c/p\u003e"},{"header":"Declarations","content":"\u003cp\u003e\u003cstrong\u003eAcknowledgements \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eWe thank the Test Platform for Large Instruments and Equipment of School of Biotechnology and the State Key Laboratory of Food Science and Technology for the technical supports.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eFunding\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThis work was supported by the Natural Science Foundation of Jiangsu Province (BK20181345) and the Open Foundation of Jiangsu Key Laboratory of Industrial Biotechnology (KLIB-KF201807). None of the funders had any role in designing and/or conducting of the study; collection,management, analysis and interpretation of the data; and preparation, review or approval of the manuscript.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAuthors\u0026rsquo; contributions \u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eZYY designed the experiment and revised the manuscript. CCL and CZF performed the experiment. CCL and YPB wrote and revised the manuscript. We confirm that the final version manuscript has been read and approved by all named authors.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAvailability of data and materials\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eAll data generated or analysed during this study are included in this published article and its supplementary information files.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eEthics approval and consent to participate\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eNot applicable.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eConsent for publication\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eNot applicable.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eCompeting interests\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe authors declare that they have no competing interests.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAuthor details\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003csup\u003e1\u003c/sup\u003eNational Engineering Laboratory for Cereal Fermentation Technology (NELCF), Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China. \u003csup\u003e2\u003c/sup\u003eJiangsu Provincial Research Center for Bioactive Product Processing Technology, Jiangnan University, 1800 Lihu Road, Wuxi, Jiangsu 214122, China. \u003csup\u003e3\u003c/sup\u003eCollege of Animal Science and Technology, Yangzhou University, Yangzhou, Jiangsu 225009, China.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003ePublisher\u0026rsquo;s Note\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eSpringer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.\u003c/p\u003e"},{"header":"References","content":"\u003col\u003e\n\u003cli\u003eWang Y, Zhang Y, Li X, Sun M, Wei Z, Wang Y, Gao A, Chen D, Zhao X, Feng X. 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G3 (Bethesda). 2019. doi: 10.1534/g3.119.400933.\u003c/li\u003e\n\u003c/ol\u003e"},{"header":"Table","content":"\u003cp style=\"margin-left: 0pt; text-align: left; text-indent: 0in; line-height: 150%;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 12.0pt; line-height: 150%; font-family: 'Times New Roman',serif;\"\u003eTable 1 \u003c/span\u003e\u003c/strong\u003e\u003cspan style=\"font-size: 12.0pt; line-height: 150%; font-family: 'Times New Roman',serif;\"\u003eFunctional categories of 108 genes whose deletion mutants are sensitive to 0.03% SDS\u003c/span\u003e\u003c/p\u003e\n\u003cp\u003e\u003cspan style=\"font-family: 'Times New Roman',serif;\"\u003eThe number of asterisks represents SDS-sensitivity of different mutants. Mutant with five asterisks was most sensitive to SDS stress, while mutant with one asterisk was least sensitive to SDS. \u003c/span\u003e\u003c/p\u003e\n\u003ctable style=\"border-collapse: collapse; margin-left: 6.75pt; margin-right: 6.75pt;\" width=\"98%\"\u003e\n\u003ctbody\u003e\n\u003ctr style=\"height: 15.15pt;\"\u003e\n\u003ctd style=\"width: 30.9%; border-top: solid windowtext 1.0pt; border-left: none; border-bottom: solid windowtext 1.0pt; border-right: none; padding: 0in 5.4pt 0in 5.4pt; height: 15.15pt;\" width=\"30%\"\u003e\n\u003cp style=\"text-align: left;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 12.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eFunction\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 69.1%; border-top: solid windowtext 1.0pt; border-left: none; border-bottom: solid windowtext 1.0pt; border-right: none; padding: 0in 5.4pt 0in 5.4pt; height: 15.15pt;\" colspan=\"8\" width=\"69%\"\u003e\n\u003cp style=\"text-align: left;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 12.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eGenes\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 12.65pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"30%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eMetabolism\u0026nbsp; (16)\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"7%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003ePRS3\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e*\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eTHR4\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eARG82\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e****\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eREG1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e***\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 12.65pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eIPK1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e***\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; 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padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e\u0026nbsp;\u003c/span\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e\u0026nbsp;\u003c/span\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"10%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e\u0026nbsp;\u003c/span\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e\u0026nbsp;\u003c/span\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 12.25pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"30%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"7%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"10%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 12.25pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 13.5pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" rowspan=\"3\" width=\"30%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eProtein with binding function or cofactor requirement (structural or catalytic)\u0026nbsp; (9)\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"7%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eDIA4\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e****\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eRPL35A\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eNUP84\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eAPL2\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e****\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eMAP1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eRPL13B\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"10%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eCBP3\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eHIT1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e*\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 3.05pt;\"\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"7%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eOCT1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"10%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 3.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 8.75pt;\"\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"7%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"10%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 8.75pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 13.5pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"30%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eBiogenesis of cellular components (5)\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"7%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eMDM10\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e***\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eMRPL32\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e*\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eMRPL24\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e**\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eGIM5\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e*\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eMDM20\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e*****\u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"10%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 13.05pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"30%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"7%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.08%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 9.1%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"9%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 10.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"10%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; padding: 0in 5.4pt 0in 5.4pt; height: 13.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003ctr style=\"height: 13.5pt;\"\u003e\n\u003ctd style=\"width: 30.9%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"30%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cstrong\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eCell wall integrity and osmotic stress response (7)\u003c/span\u003e\u003c/strong\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 7.46%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"7%\"\u003e\n\u003cp style=\"text-align: left; line-height: 12.0pt;\"\u003e\u003cem\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003eTUS1\u003c/span\u003e\u003c/em\u003e\u003cem\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: #222222;\"\u003e***\u0026nbsp;\u0026nbsp;\u0026nbsp;\u0026nbsp;\u0026nbsp;\u0026nbsp;\u0026nbsp;\u0026nbsp; \u003c/span\u003e\u003c/sup\u003e\u003c/em\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.12%; padding: 0in 5.4pt 0in 5.4pt; height: 13.5pt;\" width=\"8%\"\u003e\n\u003cp style=\"text-align: left; 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line-height: 12.0pt;\"\u003e\u003cspan style=\"font-size: 9.0pt; font-family: 'Times New Roman',serif; color: black;\"\u003eYDR008C\u003c/span\u003e\u003csup\u003e\u003cspan style=\"font-size: 7.5pt; font-family: 'Times New Roman',serif; color: black;\"\u003e*\u003c/span\u003e\u003c/sup\u003e\u003c/p\u003e\n\u003c/td\u003e\n\u003ctd style=\"width: 8.04%; border: none; border-bottom: solid windowtext 1.0pt; padding: 0in 5.4pt 0in 5.4pt; height: 14.05pt;\" width=\"8%\"\u003e\u0026nbsp;\u003c/td\u003e\n\u003c/tr\u003e\n\u003c/tbody\u003e\n\u003c/table\u003e\n\u003cp\u003e\u0026nbsp;\u003c/p\u003e"},{"header":"Additional File Legends","content":"\u003cp\u003e\u003cstrong\u003eAdditional file 1: Table S1. \u003c/strong\u003ePrimers used in this study\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAdditional file 2: Figure S1.\u003c/strong\u003e Genotype confirmation of the 108 gene deletion mutants by PCR. Cells of the 108 gene mutants were grown overnight in YPD medium at 30℃ and then collected for DNA extraction. PCR was performed with genomic DNA of each of these mutants with the primer located at the upstream of its open reading frame and the reverse primer KanMX4-R from the internal sequence of the KanMX4. PCR products were separated on 1% agarose gel, and sizes of the DNA marker were indicated on the left or right of the gel.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAdditional file 3: Figure S2. \u003c/strong\u003eMeta-enrichment analysis summary of SDS-sensitive genes. Heatmap of the top 16 enriched GO terms. For GO terms, each band represents one enriched term coloured according to its -log 10 \u003cem\u003ep\u003c/em\u003e-value. The dominant term within each group is used as a group heading.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAdditional file 4: Figure S3.\u003c/strong\u003e Intracellular ROS levels of 108 SDS-sensitive gene mutants in response to SDS stress. a: Metabolism; b: Cell cycle and DNA Processing; c: Transcription; d: Protein with Binding Function or Cofactor Requirement (structural or catalytic); e: Cellular Transport, Transport Facilities and Transport Routes; f: Biogenesis of cellular components; g: Cell wall integrity and osmotic stress response; h: Unclassified Proteins. Log-phase cells were grown with or without 0.015% SDS for two hours before they were collected for measurement of intracellular ROS levels stained by the dihydroethidium. The intracellular ROS levels of these SDS-sensitive mutants were listed according to their categories in comparison to that of wild type cell BY4743. The value is the average of three independent assays for each strain.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAdditional file 5: Figure S4.\u003c/strong\u003e The expression of \u003cem\u003eTRR1 \u003c/em\u003eand \u003cem\u003eTRX2\u003c/em\u003e under SDS stress. (A-B) WT and the indicated 11 mutants were treated to SDS medium for 1 h. The expression of the indicated genes was tested by qRT-PCR. The value is the average of three independent assays for each strain.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAdditional file 6: Figure S5. \u003c/strong\u003eThe expression levels of \u003cem\u003eGSH1\u003c/em\u003e, \u003cem\u003eSOD1\u003c/em\u003e, \u003cem\u003eCTT1\u003c/em\u003e and \u003cem\u003eGPX2\u003c/em\u003e genes in response to different concentrations of SDS in the wide type BY4743 cells. The expression of the indicated genes was tested by qRT-PCR. The value is the average of three independent assays for each strain.\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":"researchsquare","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":true,"externalIdentity":"","sideBox":"","snPcode":"","submissionUrl":"/submission","title":"Research Square","twitterHandle":"researchsquare","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"","reportingPortfolio":"","inReviewEnabled":false,"inReviewRevisionsEnabled":true},"keywords":"Saccharomyces cerevisiae, SDS, Genetic screening, Genomics, ROS","lastPublishedDoi":"10.21203/rs.2.15488/v3","lastPublishedDoiUrl":"https://doi.org/10.21203/rs.2.15488/v3","license":{"name":"CC BY 4.0","url":"https://creativecommons.org/licenses/by/4.0/"},"manuscriptAbstract":"Background: Sodium dodecyl sulfate (SDS) is one of the most widely used anionic alkyl sulfate surfactants. Toxicological information on SDS is accumulating, however, mechanisms of SDS toxicity regulation remain poorly understood. In this study, the relationship between the SDS-sensitive mutants and their intracellular ROS levels has been investigated.\nResults: Through a genome-scale screen, we have identified 108 yeast single-gene deletion mutants that are sensitive to 0.03% SDS. These genes were predominantly related to the cellular processes of metabolism, cell cycle and DNA processing, cellular transport, transport facilities and transport routes, transcription and the protein with binding function or cofactor requirement (structural or catalytic). Measurement of the intracellular ROS (reactive oxygen species) levels of these SDS-sensitive mutants showed that about 79% of SDS-sensitive mutants accumulated significantly higher intracellular ROS levels than the wild-type cells under SDS stress. Moreover, SDS could generate oxidative damage and up-regulate several antioxidant defenses genes, and some of the SDS-sensitive genes were involved in this process.\nConclusion: This study provides insight on yeast genes involved in SDS tolerance and the elevated intracellular ROS caused by SDS stress, which is a potential way to understand the detoxification mechanisms of SDS by yeast cells.","manuscriptTitle":"Genome-wide indentification for genes involved in sodium dodecyl sulfate toxicity in Saccharomyces cerevisiae","msid":"","msnumber":"","nonDraftVersions":[{"code":3,"date":"2020-02-05 19:39:36","doi":"10.21203/rs.2.15488/v3","editorialEvents":[{"type":"communityComments","content":0}],"status":"published","journal":{"display":true,"email":"
[email protected]","identity":"researchsquare","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":true,"externalIdentity":"","sideBox":"","snPcode":"","submissionUrl":"/submission","title":"Research Square","twitterHandle":"researchsquare","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"","reportingPortfolio":"","inReviewEnabled":false,"inReviewRevisionsEnabled":true}},{"code":2,"date":"2020-01-02 18:32:48","doi":"10.21203/rs.2.15488/v2","editorialEvents":[{"type":"communityComments","content":0}],"status":"published","journal":{"display":true,"email":"
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[email protected]","identity":"researchsquare","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":true,"externalIdentity":"","sideBox":"","snPcode":"","submissionUrl":"/submission","title":"Research Square","twitterHandle":"researchsquare","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"","reportingPortfolio":"","inReviewEnabled":false,"inReviewRevisionsEnabled":true}}],"origin":"","ownerIdentity":"3317dc59-2eaf-4679-afc7-07f06001b272","owner":[],"postedDate":"February 5th, 2020","published":true,"recentEditorialEvents":[],"rejectedJournal":[],"revision":"","amendment":"","status":"published-in-journal","subjectAreas":[{"id":46359,"name":"General Microbiology"}],"tags":[],"updatedAt":"2021-09-27T18:27:28+00:00","versionOfRecord":{"articleIdentity":"rs-6153","link":"https://doi.org/10.1186/s12866-020-1721-2","journal":{"identity":"bmc-microbiology","isVorOnly":false,"title":"BMC Microbiology"},"publishedOn":"2020-02-17 18:18:27","publishedOnDateReadable":"February 17th, 2020"},"versionCreatedAt":"2020-02-05 19:39:36","video":"","vorDoi":"10.1186/s12866-020-1721-2","vorDoiUrl":"https://doi.org/10.1186/s12866-020-1721-2","workflowStages":[]},"version":"v3","identity":"rs-6153","journalConfig":"researchsquare"},"__N_SSP":true},"page":"/article/[identity]/[[...version]]","query":{"identity":"rs-6153","version":["v3"]},"buildId":"7rjqhiLT3MXkJMwkYKINL","isFallback":false,"isExperimentalCompile":false,"dynamicIds":[84888],"gssp":true,"scriptLoader":[]}
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