Upregulated FSP1 by GPD1/1L Mediated Lipid Droplet Accumulation Enhances Ferroptosis Resistance and Peritoneal Metastasis in Gastric Cancer

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Abstract To successfully metastasize, cancer cells must evade detachment induced cell death, known as anoikis. Unraveling the mechanisms that gastric cancer (GC) circumvent anoikis and achieve peritoneal metastasis especially during unanchored growth, could significantly improve patient outcomes. Our study reveals that GC cells exhibit increased lipid peroxidation, MDA production, and cell death during suspension culture, which can be mitigated by the intervention with liproxstatin-1 and ferrostatin-1. We discovered that oleic acid (OA) or adipocytes stimulate lipid accumulation in GC cells, thereby inhibiting lipid peroxidation and cell death. Lipid mass spectrometry confirmed an upregulation of triglyceride synthesis, indicating that the accumulation of lipid droplet may confer resistance to ferroptosis during suspension growth. In vitro assays demonstrated that OA not only induces lipid droplet accumulation but also upregulates the expression of ferroptosis suppressor protein 1 (FSP1), a process that can be abrogated by the double knockout of GPD1/1L genes. Additionally, we have demonstrated that a decrease in the ubiquitination of FSP1 in GC cells upon lipid droplet accumulation, as well as silencing or pharmacological targeting FSP1, promotes ferroptosis and disrupts the peritoneal metastatic potential of GC cells. Collectively, our findings highlight the potential of FSP1 as a promising therapeutic target for metastatic gastric cancer.
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Upregulated FSP1 by GPD1/1L Mediated Lipid Droplet Accumulation Enhances Ferroptosis Resistance and Peritoneal Metastasis in Gastric Cancer | 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 Article Upregulated FSP1 by GPD1/1L Mediated Lipid Droplet Accumulation Enhances Ferroptosis Resistance and Peritoneal Metastasis in Gastric Cancer Shuai Li, Guoliang Lin, Qingnan Liu, Chengjie Xie, Ke Ding, Guanghua Mo, and 7 more This is a preprint; it has not been peer reviewed by a journal. https://doi.org/ 10.21203/rs.3.rs-4786302/v1 This work is licensed under a CC BY 4.0 License Status: Posted Version 1 posted You are reading this latest preprint version Abstract To successfully metastasize, cancer cells must evade detachment induced cell death, known as anoikis. Unraveling the mechanisms that gastric cancer (GC) circumvent anoikis and achieve peritoneal metastasis especially during unanchored growth, could significantly improve patient outcomes. Our study reveals that GC cells exhibit increased lipid peroxidation, MDA production, and cell death during suspension culture, which can be mitigated by the intervention with liproxstatin-1 and ferrostatin-1. We discovered that oleic acid (OA) or adipocytes stimulate lipid accumulation in GC cells, thereby inhibiting lipid peroxidation and cell death. Lipid mass spectrometry confirmed an upregulation of triglyceride synthesis, indicating that the accumulation of lipid droplet may confer resistance to ferroptosis during suspension growth. In vitro assays demonstrated that OA not only induces lipid droplet accumulation but also upregulates the expression of ferroptosis suppressor protein 1 (FSP1), a process that can be abrogated by the double knockout of GPD1/1L genes. Additionally, we have demonstrated that a decrease in the ubiquitination of FSP1 in GC cells upon lipid droplet accumulation, as well as silencing or pharmacological targeting FSP1, promotes ferroptosis and disrupts the peritoneal metastatic potential of GC cells. Collectively, our findings highlight the potential of FSP1 as a promising therapeutic target for metastatic gastric cancer. Biological sciences/Cancer/Gastrointestinal cancer/Gastric cancer Biological sciences/Cell biology/Cell death/Apoptosis Biological sciences/Cell biology/Cell signalling/Lipid signalling FSP1 lipid droplet gastric cancer ferroptosis Figures Figure 1 Figure 2 Figure 3 Figure 4 Figure 5 Figure 6 Figure 7 INTRODUCTION GC is recognized as one of the most prevalent malignancies globally, consistently ranking within the top five in incidence and alarmingly, among the top three in mortality rates [ 1 ]. The gravity of the situation was underscored in 2020 with an estimated over 1 million new cases diagnosed worldwide, tragically culminating in nearly 769,000 fatalities [ 2 ]. While early-stage gastric cancer is typically associated with a highly favorable prognosis, with an impressive 5-year survival rate exceeding 90%, its early identification remains elusive. The challenge stems from the cancer's subtle onset, often presenting with either no symptoms or vague indicators such as mild indigestion. The situation is further exacerbated by a general lack of public knowledge regarding the importance of screening, leading to a disappointingly low incidence of early-stage diagnoses. As a result, a significant number of patients are diagnosed at later stages, frequently when peritoneal metastasis has already set in. Metastasis marks a critical turning point in gastric cancer, significantly worsening the prognosis to an average 5-year survival rate of less than 20% [ 3 , 4 ]. The propensity for invasion and distant spread is a principal factor underlying the often disappointing outcomes of treatment efforts [ 5 ]. The National Cancer Institute reports that peritoneal metastasis is a prevalent destination for metastatic spread in various abdominal and pelvic cancers, notably gastric, pancreatic, colorectal, ovarian, and uterine malignancies, with the omentum identified as the predominant site for such metastases [ 6 – 8 ]. The peritoneal environment, rich in adipocytes, plays a critical role in the body's metabolic response by hydrolyzing fats to release fatty acids, glycerol, and other metabolic substrates into the circulation when energy demands arise [ 9 ]. These adipocytes are increasingly recognized for their active role in promoting the invasive and metastatic capabilities of several cancers such as ovarian and gastric cancers [ 8 , 10 ]. Our previous investigation has elucidated that adipocytes can donate fatty acids (FAs) to GC cells, which in turn, facilitates the accumulation of lipid droplets (LDs). Subsequently, these LDs can be used to promote NADPH production via lipolysis and β-oxidation, endowing the cells with a survival advantage against anoikis [ 11 ]. LDs composed of a monolayer phospholipids encapsulating neutral lipids, predominantly triacylglycerol (TAG), are vital cellular energy stores. TAG consists of a glycerol backbone esterified with three fatty acids. However, most human cells are incapable of directly metabolizing glycerol, only specialized cells like adipocytes and hepatocytes possess glycerol kinase (GK), which converts glycerol to 3-phosphoglycerol (3-PG). For tumor cells, alternative metabolic routes are essential, such as the conversion of dihydroxyacetone phosphate (DHAP), a glycolytic intermediate, to 3-PG by glycerol-3-phosphate dehydrogenase 1/1-like (GPD1/1L), utilizing NADH as a cofactor. Hence, it is posited that GPD1/1L plays a significant role in the accumulation of LDs in GC cells. So, do lipid droplets serve functions beyond energy provision during the unanchored growth phase of peritoneal metastasis in gastric cancer cells? In the context of peritoneal metastasis, GC cells undergo a state of unanchored growth, severed from the supportive extracellular matrix. This detachment is associated with an increased production of reactive oxygen species (ROS) [ 12 , 13 ], which, when in excess, can inflict irreversible damage on cellular macromolecules, including proteins, lipids, and nucleic acids alike, thus significantly contributing to the onset of anoikis [ 14 ]. Iron, an indispensable element for cell growth and proliferation, is found in every mammalian cell. Notably, the convergence of ROS with ions can initiate a series of oxidative reactions that specifically target polyunsaturated fatty acids (PUFAs) in the cell membrane's phospholipids. The ensuing peroxidation leads to the disruption of the membrane's structural integrity, culminating in the induction of ferroptosis [ 15 ]. Ferroptosis is a type of programmed cell death that is distinct from other forms such as apoptosis, necrosis, and autophagy. It is characterized by the accumulation of ROS due to iron-dependent lipid peroxidation [ 16 , 17 ]. The regulation of ferroptosis is governed by three principal pathways [ 18 ]: the cystine/GSH/the glutathione peroxidase 4 (GPX4) axis, which is central to cellular redox balance [ 19 , 20 ]; the FSP1/CoQ10 axis, implicated in mitochondrial function [ 21 , 22 ]; and the GCH1/BH4/DHFR axis, which influences critical metabolic processes [ 23 , 24 ]. Recent studies have shown a strong correlation between the progression of ferroptosis and lipid accumulation, particularly in the abundance of lipid droplets. Furthermore, these studies have revealed that FSP1 is predominantly localized to intracellular lipid droplets in adipocytes of brown adipose tissue [ 25 ]. However, the functional implications of this localization are not well understood. In this research, we found that the accumulation of lipid droplets in GC cells is associated with a reduction in FSP1 ubiquitination. This decrease in ubiquitination promotes ferroptosis resistance and significantly enhances the peritoneal metastatic potential of GC cells. RESULTS Induction of ferroptosis by anchorage-independent growth in GC cells Detachment of adherent cells can initiate a form of programmed cell death known as anoikis, a process in which ROS are notably implicated. This led us to investigate whether suspension growth could trigger ferroptosis in GC cells. Firstly, we cultured GC cells in a state of suspension using dishes coated with poly-HEMA. Our findings revealed that compared to anchorage, detached BGC823, SGC7901, AGS and HGC27 cells exhibited decreased intracellular NADPH and GSH production (Fig. 1 A). Interestingly, staining with BODIPY 581/591 revealed a significant elevation in intracellular lipid ROS levels in suspended GC cells (Fig. 1 B). Additionally, MDA, a lipid peroxidation marker, demonstrated a significant increase in the detached GC cells (Fig. 1 C). Meanwhile, cell death was assessed using a LDH detection kit and calcein AM/EthD-1 staining. Our findings demonstrated a significant enhancement in LDH release (%) (Fig. 1 D) and cell death in the suspended GC cells (Fig. 1 E, F). Furthermore, we confirmed that the ferroptosis inhibitors liproxstatin-1 (Lip-1) and ferrostatin-1 (Fer-1) effectively mitigated the cell death of GC cells during suspension culture (Fig. 1 G). In our study, we demonstrate that anchorage-independent growth is a potent inducer of ferroptosis. Moreover, our findings reveal that inhibiting ferroptosis significantly enhances the suspension growth capabilities of gastric cancer cells. Lipids drolets attenuate ferroptosis in GC cells during suspension growth Specific alterations in the lipid metabolism, including increased fatty acid uptake and synthesis, are recognized as a mechanism that contribute to anoikis resistance in various types of cancers. Consistent with this, we observed a significant accumulation of neutral lipids in lipid droplets of BGC823 and SGC7901 cells after suspension culture, as visualized by the fluorescent sensor BODIPY 493/503 (Fig. 2 A). Importantly, the level of TAG markedly increased after suspension culture (Fig. 2 B). Next, we employed lipid mass spectrometry to analyze the changes in the distribution of FAs across different lipid species. Specifically, the intracellular PUFAs were predominantly found in TAG, with a comparatively lower presence in phospholipids (Figs. 2 C and S1A). Collectively, these findings suggested that LDs may play a role in mitigating lipid peroxidation. We then induced LDs accumulation in GC cells by co-culturing GC cells with OA or adipocytes (Fig. S1 B). Our findings indicated that the significant increase in cell death and lipid ROS levels, occurred after suspension culture, was mitigated by OA or adipocytes (Fig. 2 D-F). In addition, employing antibodies specific to 4-HNE, a marker of lipid peroxidation, we observed an elevation in lipid peroxidation after suspension culture, which was attenuated by OA treatment (Fig. 2 G). Furthermore, under adherent culture conditions, we used the GPX4 inhibitor RSL3 to induce ferroptosis in GC cells. Both OA and adipocytes were found to inhibit ferroptosis induced by RSL3 (Figs. 2 I and S1C), as well as lipid ROS levels (Fig. 2 H). Additionally, OA provided protection against death induced by arachidonic acid (AA), a PUFAs (Fig. S1 D). Collectively, these results demonstrate the role of lipids drolets in attenuating ferroptosis in GC cells during suspension growth. GPD1/1L mediated lipid droplets accumulation confers ferroptosis resistance Triacylglycerols serve as the predominant molecules of energy storage in mammalian cells and are responsible for lipid droplets formation. To elucidate the enzymatic pathways that facilitate the incorporation of both endogenous and exogenous fatty acids into lipid droplets, we first examined several key enzymes involved in triglyceride synthesis. These included GPD1 and GPD2, which are isoforms of the rate-controlling enzyme for glycerol-3-phosphate formation, glycerol-3-phosphate dehydrogenase 1 like protein (GPD1L), lysophosphatidyl acyltransferase 1 (AGPAT1) and diacylglycerol acyltransferase 1 and 2 (DGAT1 and DGAT2). Interestingly, under the suspension culture condition, we observed significant upregulation of GPD1 and GPD1L in BGC823 and SGC7901 cells (Fig. 3 A). In addition, treatment with 200 µM OA induced a time-dependent increase in GPD1 and GPD1L protein expression in BGC823, SGC7901, AGS and HGC27 cells (Fig. 3 B). Subsequent gene set enrichment analysis (GSEA) of transcriptome sequencing data from 375 GC patients in the TCGA database revealed that pathways related to fatty acid metabolism and adipogenesis were significantly enriched in the high-expression groups of GPD1 or GPD1L (Fig. S2 A, B). To investigate the necessity of GPD1 and GPD1L for lipid droplet accumulation, we generated BGC823 and SGC7901 cell lines with double knockout (DKO) of GPD1 and GPD1L using CRISPR/Cas9 systerm. We successfully established two independent cell lines with strong loss-of-function phenotypes and confirmed that both suspension culture and exogenous OA were less effective in promoting triglyceride synthesis and lipid droplet formation in these lines (Fig. 3 C, D). Moreover, the DKO of GPD1 and GPD1L resulted in higher levels of lipid peroxidation and its end products 4-HNE during suspension growth (Fig. 3 E, F). Importantly, the DKO cells exhibited a significant reduction in the protective effect of OA on cell viability (Fig. 3 G, H). Additionally, the BGC823 or SGC7901 GPD1/1L-DKO cell lines displayed a slight increase in sensitivity to the ferroptosis inducer RSL3. Therefore, these findings underscore the importance of GPD1 and GPD1L in lipid droplet formation and their role in modulating GC cell resistance to ferroptosis. Accumulated lipid droplets suppress the ubiquitination of FSP1 The data presented above demonstrate that lipid droplets confers ferroptosis resistance in GC cells. Ferroptosis, a form of regulated cell death driven by iron-dependent lipid peroxidation, can be antagonized by several proteins, including GPX4, ferroptosis inhibitory protein 1 (FSP1), and dihydroorotate dehydrogenase (DHODH). To identify the key pathway responsible for this resistance in GC cells, we analyzed the expression levels of SLC7A11, FSP1, DHODH and GPX4 proteins and observed a significant upregulation of FSP1 in response to OA or adipocyte co-culture. However, the elevation of GPX4 expression was not significant (Figs. 4 A and S3A). Furthermore, FSP1 upregulation induced by OA was not observed in the DKO of GPD1/1L cell lines (Fig. S3 B). Interestingly, using confocal microscopy, we detected the localization of FSP1 and discovered that its expression was up-regulated after OA treatment, with a subset of FSP1 localizing to the lipid droplet surface (Fig. 4 B, C). These findings indicate FSP1’s role in conferring resistance to ferroptosis in GC cells. To ascertain whether lipid droplets exert a direct influence on the transcript levels of FSP1, thereby modulating its protein expression, we performed qPCR assays. The qPCR data indicated that the FSP1 mRNA levels remained largely unaltered in GC cells harboring lipid droplets (Fig. 4 D). Given the critical role of ubiquitination in protein degradation, we employed the protein synthesis inhibitor cycloheximide (CHX, 200 µg/mL) and the proteasome inhibitor MG132 (20 µM) to explore FSP1 ubiquitination. Treatment with CHX led to a diminution in FSP1 protein levels (Fig. 4 E), while MG132 treatment resulted in an increase FSP1 protein level (Fig. 4 F). Notably, pre-treatment with OA prior to CHX addition caused a significant increase of FSP1 protein (Fig. 4 G). Immunodetection with pan-ubiquitin antibodies revealed a marked reduction in FSP1 ubiquitination in OA-induced lipid droplet-containing GC cells (Fig. 4 H). Collectively, These outcomes suggest that lipid droplets may suppress the ubiquitination of FSP1, consequently attenuating its proteasomal degradation. Suppression of FSP1 enhances ferroptosis in GC cells To ascertain the role of FSP1 in regulating lipid peroxidation during the suspension growth of GC cells, we initiated experiments using the FSP1 inhibitor iFSP1. Our findings demonstrate that FSP1 inhibition during suspension culture significantly abrogated the OA induced ferroptosis resistance in GC cells (Fig. 5 A). FSP1 knockout in the cell lines was validated through western blot (Fig. 5 B). Furthermore, the FSP1 knockout cell lines exhibited elevated lipid peroxidation levels and the end product of lipid peroxidation during suspension growth, which corresponded with an decreased cell viability (Fig. 5 C-E). Additionally, these cell lines exhibited a pronounced increase in sensitivity to RSL3 induced ferroptosis under attached condition (Fig. 5 F). Consistent with our hypothesis, under conditions that induce ferroptosis, as triggered by RSL3 in FSP1 knockout GC cells, OA failed to enhance cell viability (Fig. 5 G). To further elucidate the impact of FSP1, we constructed cell lines overexpressing FSP1, and the overexpression was confirmed by western blotting (Fig. 5 H). These FSP1-overexpressing cell lines displayed enhanced cell viability (Fig. 5 I), along with reduced lipid peroxidation levels during suspension growth (Fig. 5 J) and decreased sensitivity to RSL3-induced ferroptosis under attached conditions (Fig. 5 K). These results demonstrate ferroptosis is exacerbated in GC cells when FSP1 is suppressed. Knockout FSP1 reduces the peritoneal dissemination of GC cells in vivo Subsequently, we explored the role of FSP1 in peritoneal dissemination in vivo . Both knockout and control GC cells were injected into the peritoneal cavities of nude mice. FSP1 knockout significantly diminished the formation of mesenteric metastatic nodules on the intestinal wall of the mice (Fig. 6 A). Histological examination using H&E staining and IHC revealed that the absence of FSP1 led to a reduction of Ki-67 levels, indicative of decreased cell proliferation, while there was a concomitant increase in 4-HNE levels, which is consistent with our prior in vitro findings (Fig. 6 B). DISSCUSSION In clinical practice, GC patients with mesenteric metastasis pose a significant challenge due to the scarcity of effective treatment options and generally poor outcomes. The phenomenon of anoikis resistance is a key determinant in the metastatic progression of numerous malignancies, including GC. Anoikis, a specialized form of apoptosis, is triggered when cells detach from the extracellular matrix. It represents a pivotal barrier to tumor metastasis, as cells must evade this programmed cell death to successfully colonize distant sites [ 26 , 27 ]. Anoikis resistance is essential for the survival and sustained propagation of metastatic tumor cells [ 28 ]. Among the myriad of factors implicated in the induction of anoikis, the metabolic perturbations that lead to a critical surge in ROS are particularly significant. These ROS, when influenced by iron ions, have the capacity to assail the polyunsaturated fatty acids within the cell membrane. This assault initiates a cascade of lipid peroxidation events, which are diagnostic of ferroptosis. The potential interplay between anoikis and the onset of ferroptosis is a compelling avenue for further research. Decoding this nexus is crucial as it promises to deepen our comprehension of the intricate pathways of cell death and may reveal innovative therapeutic strategies for conditions marked by abnormal cell detachment and the advancement of tumors. In this study, we revealed that anchorage-independent growth of GC cells potently induced ferroptosis, which can be effectively mitigated by the ferroptosis inhibitors. Our findings substantiate that detachment from the extracellular matrix triggers ferroptosis in GC cells. Exogenous metabolites including lipids are potent modulators of cell function and fate. Our previous study demonstrated that peritoneum-derived adipocytes induces robust lipid droplets accumulation in GC cells. However, the pathways that drive lipid droplet accumulation in GC cells and the relationship between lipid droplets and ferroptosis is complicated. Bailey et al [ 29 ] have reported that lipid droplets protected Drosophila glial cell niche and neural stem cells from damaging PUFAs peroxidation. The accumulation of excess free fatty acids (FFAs) can induce oxidative stress and mitochondrial dysfunction, resulting in the overproduction of ROS, accumulation of unsaturated fatty acids, and escalation of lipid peroxidation [ 30 ].Therefore, tumor cells should aim to minimize oxidative phosphorylation and reduce ROS production, especially during the process of metastasis. Here, we have demonstrated that lipid drolets derived from OA treatment or coculture with adipocytes, can significantly attenuate ferroptosis in GC cells during suspension growth. This indicates that lipid drolets play a significant role in ferroptosis resistance and the development of peritoneal metastasis in GC cells. Moving forward, our investigation is focused on identifying and characterizing the pivotal enzymes that orchestrate the biogenesis of lipid droplets in GC cells. The synthesis of triglycerides, a critical lipid class in lipid droplets, is contingent upon the availability of glycerol-3-phosphate(G3P), a key precursor that is requisite for the esterification process irrespective of the fatty acid's origin, be it exogenous or endogenous. G3P is the basic unit of various lipid metabolites, further serving as the backbone for lipid biosynthesis and different signaling molecules, participating in regulating biological processes of cell survival, energy metabolism, and oxidative stress [ 31 , 32 ]. GPD1 and GPD1L share 70% of the same protein sequence and catalyze the same function. They utilize NADH as a coenzyme to catalyze the production of dihydroxyacetone phosphate derived from glucose to G3P in the cytoplasm. Interestingly, emerging evidence indicates that GPD1 plays a tumor-promoting role [ 33 ], and GPD1/GPD1L DKO in mouse kidney cancer cells inhibited lipid synthesis and in vitro/ in vivo tumor growth [ 34 ]. An observational bladder cancer study also suggested correlated increases in GPD1 and fatty acid synthetic enzyme activities in tumor tissues [ 35 ]. In our investigation, we observed that GPD1/1L utilize intracellular unsaturated fatty acids to synthesize triglycerides during the process of detachment, leading to the accumulation of these lipids within cells during the early stages of metastasis. This results in a reduction lipid peroxidation and preventing ferroptosis. Particularly, when GC cells are transferred to the adipocyte-rich peritoneal environment, the expression of cytoplasmic GPD1/1L is significantly upregulated. This upregulation lead to the accumulation of lipid droplets, potentially facilitating tumor progression. Elucidating the precise scope of GPD1's tumor-promoting roles will necessitate additional research. The system Xc-/GSH/GPX4 axis is a GSH-dependent ferroptosis defense system and is one of the most important antioxidant systems for ferroptosis resistance [ 36 ]. However, in some cell types or cell lines, inhibition of GPX4 cannot induce ferroptosis, which indicates the presence of alternative mechanisms. Among them, the GSH-independent coenzyme Q oxidoreductase FSP1 acts in parallel with GPX4, representing another major regulator of ferroptosis [ 37 , 38 ]. FSP1, as one of the main regulatory molecules of ferroptosis [ 39 ], is regulated by upstream factors, including transcription factors and noncoding RNA, and is subject to epigenetic modifications, which affect the progress of FSP1-related diseases. FSP1 is closely associated with the poor prognosis of malignant tumors and plays an important role in disease treatment [ 40 ]. Moreover, a study found that dehydroabietic acid can stimulate the upregulation of FSP1 through activating NRF2 pathway, inhibit ROS accumulation and lipid peroxidation, and mitigate nonalcoholic fatty liver disease (NAFLD) induced by a high-fat diet (HFD) [ 41 ]. In our investigation, we found that lipid droplets, when accumulated, can suppress the ubiquitination of FSP1. This observation lays the groundwork for delving into novel molecular mechanisms, particularly from the perspective of protein stability pathway. Briefly, when exposed to a high-fat environment in the peritoneum, a large amount of fatty acids are taken up for synthesis of triglycerides, which can upregulate FSP1 to eliminate intracellular lipid ROS during metastasis. This study unveils the important relationship between lipid metabolism reorganization and ferroptosis, demonstrating that GPD1/1L regulates the accumulation of lipid droplets and that lipid droplets can confer resistance to ferroptosis through FSP1 (Fig. 7 ). These findings provide a novel target for the prevention and treatment of peritoneal metastasis of gastric cancer. MATERIALS AND METHODS Cell Lines and Reagents Human GC cell lines, as well as GES-1, were purchased from ATCC (Manassas, VA, USA). All cell lines were routinely cultured in RPMI-1640 medium (Hyclone, Cat No.SH30809.01), supplemented with 10% FBS and 1% penicillin/streptomycin solution, under a humidified atmosphere containing 5% CO 2 . For suspension growth, cells were plated on discs coated with poly-2-hydroxyethyl methacrylate (poly-HEMA) (Sigma, Cat No. P3932), prepared by dissolving poly-HEMA powder to a concentration of 12 mg/mL in 95% ethanol. To induce lipid droplets formation in GC cells, we employed oleic acid (OA) (Sigma, Cat No. O1383-1G) at a final concentration of 200µM. Additionally, the ferroptosis inducer RSL3 (Selleck, Cat No. S8155) and the FSP1 suppressor iFSP1 (Selleck, Cat No. S9663) were added to serum-free culture media. CCK-8 cell viability GC cells were cultured in a suspension culture within 96-well plates that had been coated with Poly-HEMA to induce anoikis. Subsequently, the cells were incubated in RPMI-1640 medium with a range of drug concentrations, prepared by serial dilution, for a duration of 48 hours. To assess cell viability, 10 µL of the CCK-8 reagent (Corning Incorporated) was added to each well, followed by a 2 hours incubation at 37°C. The optical density (OD) at 450 nm was then measured using a microplate reader to quantify the cells' response to the treatment. Immunofluorescence staining GC cells were first fixed in 4% paraformaldehyde solution for 30 min, followed by permeabilization using a 0.5% Triton-X 100 solution in 1× PBS for 15 min. After permeabilization, the cells were blocked with a 5% BSA solution in 1× PBS for 1 h at room temperature to reduce non-specific binding. The cells were then incubated with primary antibodies against FSP1 (Proteintech, Cat No. 20886-1-AP) overnight at 4°C. Subsequently, they were incubated with a secondary antibody, anti-rabbit IgG (Proteintech, Cat No. SA00013-4), diluted 1:200, for 1 h at room temperature. The cell nuclei were counterstained with DAPI (Biofroxx, Cat No. 1155MG010) at a final concentration of 1 µg/mL for 10 min. Lipid droplets were visualized using BODIPY 493/503 (Thermo Fisher Scientific, Cat No. D3922) for 15 min. After staining, the cells were washed with 1× PBS to remove excess stain and then sealed using an antifade reagent (Life Technologies, Cat No. P36934) to preserve fluorescence. Finally, the cells were observed under a fluorescence microscope. Protein extraction and Western blotting Protein lysates were extracted from cells using a radio-immunoprecipitation assay buffer (RIPA buffer, Beyotime, Cat No. P0013B), which is composed of 50 mM Tris-HCl at pH 7.4, 150 mM NaCl, 1% Triton X-100, 1% sodium deoxycholate, 1 mM EDTA, 0.1% SDS, and supplemented with Phenylmethanesulfonyl fluoride (PMSF) (Beyotime, Cat No. ST2573) to inhibit protease activity. The samples were centrifuged at 12,000 rpm at 4°C for 10 min to collect the supernatants and the protein concentration of the lysates was determined using a bicinchoninic acid (BCA) protein assay kit (Beyotime, Cat No. P0012). Equal amounts of protein were then loaded onto sodium dodecyl sulfate–polyacrylamide gels for electrophoretic separation. Following electrophoresis, the proteins were transferred onto polyvinylidene fluoride (PVDF) membranes (Millipore, Cat No. IPVH00010). The membranes were incubated in 5% non-fat milk solution in 1× PBS for 1 h at room temperature and then, with primary antibodies overnight at 4°C. Subsequently, Horseradish Peroxidase (HRP)-conjugated secondary antibodies (Proteintech Cat No. SA00001-1; Cat No. SA00001-2) were applied, and the immunoreactive signals were visualized using an enhanced chemiluminescence (ECL) detection reagent (Beyotime, Cat No. P0018FS) (Beyotime, Cat No. P0018FS) according to the established protocols. Quantifed the protein bands using Image J software after being normalized to the tublin level. Lipidomics Samples in liquid nitrogen were sent to Novogene Co., Ltd. (Beijing, China) for UHPLC-mass spectrum (MS)/MS analysis. Methanol (0.75 mL) was added to a 100 µL sample, which was placed into a glass tube with a Teflon lined cap, and the tube was vortexed. 2.5 mL of Methyl Tertiary Butyl Ether (MTBE) was added and the mixture was incubated for 1 h at room temperature in a shaker. Phase separation was induced by adding 0.625 ml of MS-grade water. Upon 10 min of incubation at room temperature, the sample was centrifuged at 1,000 g for 10 min. The upper phase was collected, and the lower phase was re-extracted with 1 mL of the solvent mixture (MTBE/methanol/water (10:3:2.5, v/v/v)), and collecting the upper phase. Combined organicphases were dried and dissolved in 100 µL of isopropanol for storage. Then analyzed by UHPLC-MS/MS using a Vanquish UHPLC system (Thermo Fisher, Germany) coupled with an Orbitrap Q ExactiveTM HF mass spectrometer (Thermo Fisher, Germany) in Novogene Co., Ltd. according to the established protocols. Hematoxylin and eosin staining (H&E) and immunohistochemistry (IHC) Fresh tumor tissue were fixed in 4% paraformaldehyde solution. Following fixation, the tissues underwent dehydration, paraffin embedding, and sectioning to prepare for H&E staining or IHC analysis. The IHC was performed as described previously [ 11 ]. In brief, tissue sections were incubated with specific primary antibodies, including those against Ki-67 (Cell Signaling Technology Cat No. 9027s), diluted 1:500, and 4-Hydroxynonenal (4-HNE) (Abcam, Cat No. ab48506) diluted 1:400, overnight at 4°C. The subsequent day, the slides were treated with corresponding secondary antibodies. The immunoreactivity was visualized using a 3,3'-diaminobenzidine (DAB) staining kit (ZSGB-BIO, Cat No. PV-9000). Images were captured randomly from each tumor section at a 200× magnification, with five images taken per tumor, using a Leica Aperio CS2 microscope. Gene Knockout Mediated by CRISPR-Cas9 Using the services of AZENTA (Suzhou, China), we integrated single-guide RNAs (sgRNAs) and a CRISPR-Cas9 expression system into the lentiCRISPR-v2 vector. Subsequently, the generation of stable cell lines was achieved through antibiotic selection with 5 µg/mL puromycin (Sigma-Aldrich, USA), applied for a period of 3 days. Following this selection, single cells were sorted and seeded into 96-well plates for clonal expansion. These monoclonal populations were cultured for a duration of 3 to 4 weeks to allow for the establishment of stable cell lines. The efficiency of the gene knockout was subsequently validated through immunoblotting and quantitative polymerase chain reaction (qPCR) assays. The sequences of the sgRNAs targeting GPD1, GPD1L, and FSP1 were as follows: 5′-TCAGCCATCGCCAAGATCGT-3′ for GPD1, 5′-GCATAGACGAGGGCCCCGAG-3′ for GPD1L, and 5′-TCAAGGACAACTTCCGGCAG-3′ for FSP1, respectively. Measurement of MDA, NADPH/NADP + and GSH/GSSG The relative malonaldehyde (MDA) concentration in cell was assessed using a lipid peroxidation MDA assay kit (Abcam Cat No. ab118970), according to the manufacturer’s protocol. The determination of intracellular NADPH and total NADP levels were performed in accordance with the standard procedures provided by the manufacturer. For the measurement of GSH, a GSH/GSSG-Glo Assay Kit (Promega, #V6611) was employed, according to the manufacturer’s instructions. Anoikis and Lipid ROS assay Anoikis was induced by suspending cells in poly-HEMA pre-coated in six-well plates. To assess cell viability, we employed a dual-staining method using calcein AM (Invitrogen, Cat No. C1430, 4 µM) and ethidium homodimer (EthD-1, Invitrogen, Cat No. E1169, 4 µM). Calcein AM serves as a green fluorescent marker for live cells, while EthD-1 indicates dead cells with red fluorescence. Both dyes were pre-incubated at 37°C for 30 minutes before the cells were visualized under a fluorescence microscope to distinguish live from dead populations. For the lipid ROS assay, harvested cells were subjected to staining with BODIPY 581/591 C11 (Thermo Fisher Scientific, D3861), following the manufacturer's recommended protocol. The ROS levels were analyzed using a CytoFLEX cytometer instrument (Beckman Coulter, Brea) for flow cytometric analysis, and representative images were also captured using a fluorescence microscope for direct observation. Animal studies All animal experiments were approved by the Institutional Animal Care and Use Committee of Guangzhou Medical University. Female BALB/c nude mice, approximately 4 weeks of age, were purchased from Guangdong Medical Laboratory Animal Center (Foshan, China). We evaluated the peritoneal dissemination capacity of GC cells using an intraperitoneal injection model. Briefly, approximately 3×10 6 GC cells were enzymatically digested and resuspended in 400µL of 1× PBS. This cell suspension was then immediately injected into the peritoneal cavity of each nude mouse, with five mice per experimental group. After a period of about one month, the mice were humanely sacrificed using the CO 2 asphyxiation. Subsequently, the peritoneum was meticulously examined and documented, and tissue samples were collected for subsequent embedding and histological staining analysis. Statistical analyses All experiments were repeated at least three times. Statistical p-values were obtained by application of the appropriate statistical analysis using the GraphPad Prism (version 8.0). Data were presented as the means ± standard deviation of the mean. To determine significant differences between two groups, we employed Student's t-test. For comparisons involving more than two groups, we used one-way analysis of variance (ANOVA) and Tukey'stest for multiple comparisons. Statistical significance was considered at p < 0.05 (*) and p < 0.01 (**). Declarations COMPETING INTERESTS The authors declare no competing interests. ETHICS APPROVAL Animal protocols were reviewed and approved by the Institutional Animal Care and Use Committee of Guangzhou Medical University. AUTHOR CONTRIBUTIONS SL and HBS conceived and designed the research. GLL, QNL, CJX, KD, GHM, LZ, FZ, RXL, LL, WH and YLM performed the research and acquired the data. GLL, QNL, SL and HBS analyzed and interpreted the data. GLL, QNL, SL and HBS involved in drafting and revising the manuscript. All authors read and approved the final manuscript. ACKNOWLEDGEMENTS This work was supported by the Natural Science Foundation of China (grant numbers 82173141, 81702886), Bureau of Education of Guangzhou Municipality (grant number 202032801), the Education Department of Guangdong Province (grant numbers 2021ZDZX2044 and 2019KZDXM058), the Education Department of Guangzhou Medical University (grant numbers 2021A090), the scientific research project of Traditional Chinese Medicine Bureau of Guangdong Province (grant numbers 20222122), the scientific research capacity improvement project of 2023 from Guangzhou Medical University, and the open research funds (2021) and the funds of selected project (2022) from GMU-GIBH Joint School of Life Sciences, Guangzhou Medical University. The founders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript. References Smyth EC, Nilsson M, Grabsch HI, van Grieken NC, Lordick F. Gastric cancer. Lancet. 2020;396:635–48. 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Gao G, Xie Z, Li EW, Yuan Y, Fu Y, Wang P, et al. Dehydroabietic acid improves nonalcoholic fatty liver disease through activating the Keap1/Nrf2-ARE signaling pathway to reduce ferroptosis. J Nat Med. 2021;75:540–52. Additional Declarations (Not answered) Supplementary Files SupplementaryFig1.tif SupplementaryFig2.tif SupplementaryFig3.tif WB.pdf Cite Share Download PDF Status: Posted Version 1 posted You are reading this latest preprint version 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. As a division of Research Square Company, we’re committed to making research communication faster, fairer, and more useful. We do this by developing innovative software and high quality services for the global research community. Our growing team is made up of researchers and industry professionals working together to solve the most critical problems facing scientific publishing. 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-4786302","acceptedTermsAndConditions":true,"allowDirectSubmit":true,"archivedVersions":[],"articleType":"Article","associatedPublications":[],"authors":[{"id":339736463,"identity":"36f5ae19-4538-44e8-bc74-36868e99ed59","order_by":0,"name":"Shuai 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1","display":"","copyAsset":false,"role":"figure","size":726190,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eInduction ferroptosis by anchorage-independent growth in GC cells.\u003c/strong\u003e \u003cstrong\u003eA\u003c/strong\u003e Measurement of NADPH/NADP\u003csup\u003e+\u003c/sup\u003e and GSH/GSSG levels in the GC cells under attached and detached conditions. \u003cstrong\u003eB\u003c/strong\u003e Lipid peroxidation in GC cells was assessed under attached and detached conditions using a fluorescence microscope to measure the fluorescence intensity of BODIPY 581/591. Red fluorescence represents reduction and green fluorescence represents oxidation. Cell nuclei were stained with DAPI. Scale bars 10 μm. \u003cstrong\u003eC\u003c/strong\u003e Measurement of MDA levels in GC cells under attached and detached conditions. \u003cstrong\u003eD\u003c/strong\u003e Measurement of LDH levels in GC cells under attached and detached conditions. \u003cstrong\u003eE-F\u003c/strong\u003e Representative images and quantification of GC cells under attached or detached conditions for 48 h. Scale bars 50 μm. Calcein AM (green fluorescent dye) was used to detect cell viability and EthD-1 (red fluorescent dye) for cell death. \u003cstrong\u003eG\u003c/strong\u003e Cell viability assessment in GC cells under attached or detached conditions, with or without exposure to ferroptosis inhibitor liproxstatin-1 or ferrostatin-1. Data are mean ± SD of at least three replicates from two independent experiments. P values were determined by a two-tailed t-test.\u003c/p\u003e","description":"","filename":"Fig1.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/9d399ed240d02583fc2a095d.jpg"},{"id":66370843,"identity":"6665db62-8697-46fd-b868-b0028554ee75","added_by":"auto","created_at":"2024-10-11 04:36:47","extension":"jpg","order_by":2,"title":"Figure 2","display":"","copyAsset":false,"role":"figure","size":795559,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eLipids drolets attenuate ferroptosis in GC cells during suspension growth. A\u003c/strong\u003e BODIPY 493/503 imaging of neutral lipid accumulation (green) in BGC823 and SGC7901 under detached conditions. Cell nuclei were stained with DAPI. Scale bars 10 μm. \u003cstrong\u003eB\u003c/strong\u003e Measurement of TAG levels in the GC cells under attached and detached conditions. \u003cstrong\u003eC\u003c/strong\u003e Fold change in the distribution of PUFAs in various lipid contents (log2) of cells cultured with attachment and detachment detected by lipid mass spectrometry. \u003cstrong\u003eD\u003c/strong\u003eAnalysis of lipid ROS using BODIPY 581/591 by flow cytometry in GC cells under detached conditions and treated with OA (200 μM). \u003cstrong\u003eE, F\u003c/strong\u003e Representative images and quantification of GC cells treated with OA (200 μM) or co-cultured with adipocytes under detached conditions for 48 h. Scale bars 50 μm. Calcein AM (green fluorescent dye) was used to detect cell viability and EthD-1 (red fluorescent dye) for cell death. \u003cstrong\u003eG\u003c/strong\u003e 4-HNE expression detected by western blot analysis in GC cells treated with OA (200 μM) or co-culture with adipocytes under detached conditions. \u003cstrong\u003eH\u003c/strong\u003e Analysis of lipid ROS using BODIPY 581/591 by flow cytometry in GC cells under attached conditions treated with RSL3. \u003cstrong\u003eI\u003c/strong\u003e Cell viability of indicated GC cells treated with RSL3 for 24 h. Data are mean ± SD of at least three replicates from two independent experiments. P values were determined by a two-tailed t-test.\u003c/p\u003e","description":"","filename":"Fig2.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/0c9cf2e24914856330bdaa53.jpg"},{"id":66371694,"identity":"aab81225-f507-4a71-8729-ecf5bfa757be","added_by":"auto","created_at":"2024-10-11 04:44:47","extension":"jpg","order_by":3,"title":"Figure 3","display":"","copyAsset":false,"role":"figure","size":800014,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eGPD1/1L mediated lipid droplets accumulation confers ferroptosis resistance. A\u003c/strong\u003e Key enzymes related to lipid synthesis detected by western blot in the GC cells under attached or detached conditions. \u003cstrong\u003eB\u003c/strong\u003e Western blot analysis of GPD1 and GPD1L expression in GC cells treated with OA (200 μM) for 3 h, 6 h, 12 h and 24 h. \u003cstrong\u003eC\u003c/strong\u003e The effect of gRNAs-mediated gene knockout of GPD1 and GPD1L in SGC7901 and HGC27 cells was confirmed by western blot analysis. \u003cstrong\u003eD\u003c/strong\u003e BODIPY 493/503 imaging of neutral lipid accumulation (green) in the indicated GC cells under detached conditions or treated with OA (200 μM). Cell nuclei were stained with DAPI. Scale bars 10μm. \u003cstrong\u003eE\u003c/strong\u003e Analysis of lipid ROS using BODIPY 581/591 by flow cytometry in the indicated GC cells under detached conditions. \u003cstrong\u003eF\u003c/strong\u003e 4-HNE expression detected by western blot analysis in the indicated GC cells under detached conditions. \u003cstrong\u003eG\u003c/strong\u003e Comparison of viability of the GPD1/1L knockout GC cells treated with OA (200 μM) under detached conditions for 48 h as revealed by CCK8 assays. \u003cstrong\u003eH\u003c/strong\u003e Cell viability of the indicated GC cells treated with OA (200 μM) and treated with RSL3 for 24 h. Data are mean ± SD of at least three replicates from two independent experiments. P values were determined by a two-tailed t-test.\u003c/p\u003e","description":"","filename":"Fig3.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/19f554b2e33e3fd4be7a64b8.jpg"},{"id":66370850,"identity":"6d55ec09-adbf-4918-82ab-2dedeba13807","added_by":"auto","created_at":"2024-10-11 04:36:47","extension":"jpg","order_by":4,"title":"Figure 4","display":"","copyAsset":false,"role":"figure","size":627533,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eAccumulated lipid droplets suppress the ubiquitination of FSP1. A\u003c/strong\u003e Key proteins related to ferroptosis regulatory detected by western blot in the GC cells treated with OA (200μM) for 6 h, 12 h and 24 h. \u003cstrong\u003eB\u003c/strong\u003e Confocal imaging of distribution of FSP1 (red) and lipid droplets (green) in GC cells treated with (200μM) for 24 h. Cell nuclei were stained with DAPI. Scale bars 5 μm. \u003cstrong\u003eC\u003c/strong\u003e Quantification of FSP1 expression in GC cells. Each data point represents the fluorescence intensity signal from an independent biological replicate (n=3). \u003cstrong\u003eD\u003c/strong\u003e The expression of FSP1 in gastric cancer cells treated with was analyzed by qPCR treated with OA (200 μM) for 24 h. GAPDH as the loading reference control. \u003cstrong\u003eE-F\u003c/strong\u003e Western blot analysis of FSP1 expression in GC cells treated with CHX (200 μg/ml) or MG132(20 μM) for 6 h, 12 h and 24 h. \u003cstrong\u003eG\u003c/strong\u003e Western blot analysis of FSP1 expression in GC cells treated with CHX (200 μg/ml) for 24 h and OA (200 μM) for 12 h and 24 h. \u003cstrong\u003eH\u003c/strong\u003e IP analysis demonstrating the ubiquitination level of FSP1 in GC cells treated with OA (200 μM) for 24 h. Data are mean ± SD of at least three replicates from two independent experiments. P values were determined by a two-tailed t-test.\u003c/p\u003e","description":"","filename":"Fig4.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/539871fb6e1c440ece6f9f29.jpg"},{"id":66370847,"identity":"68b03a81-e43a-489b-a464-d8f11f5a6562","added_by":"auto","created_at":"2024-10-11 04:36:47","extension":"jpg","order_by":5,"title":"Figure 5","display":"","copyAsset":false,"role":"figure","size":637569,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eSuppression of FSP1 enhances ferroptosis in GC cells. A\u003c/strong\u003eCell viability of indicated GC cells treated with different concentrations of iFSP1 and OA(200 μM) for 24 h under detached conditions. \u003cstrong\u003eB\u003c/strong\u003e The effect of gRNAs-mediated gene knockout of FSP1 in SGC7901 and HGC27 cells was confirmed by western blot and qPCR analysis. \u003cstrong\u003eC\u003c/strong\u003e Analysis of lipid ROS using BODIPY 581/591 by flow cytometry in the indicated GC cells under detached conditions. \u003cstrong\u003eD\u003c/strong\u003e4-HNE expression detected by western blot analysis in the indicated GC cells under detached conditions. \u003cstrong\u003eE\u003c/strong\u003e Comparison of viability of the FSP1 knockout GC cells under detached conditions for 48 h as revealed by CCK8 assays. \u003cstrong\u003eF\u003c/strong\u003e Cell viability of indicated GC cells treated with different concentrations of RSL3 for 24 h as revealed by CCK8 assays. \u003cstrong\u003eG\u003c/strong\u003e Cell viability measured by CCK-8 assay of the indicated GC cells treated with OA (200 μM) and treated with RSL3 for 24 h. \u003cstrong\u003eH\u003c/strong\u003e The effect of overexpressing FSP1 in SGC7901 and HGC27 cells was confirmed by western blot. \u003cstrong\u003eI\u003c/strong\u003e Comparison of viability of the overexpressing FSP1 GC cells under detached conditions for 48 h as revealed by CCK8 assays. \u003cstrong\u003eJ\u003c/strong\u003e Analysis of lipid ROS using BODIPY 581/591 by flow cytometry in the indicated GC cells under detached conditions. \u003cstrong\u003eK\u003c/strong\u003e Cell viability of indicated GC cells treated with RSL3 for 24 h. Data are mean ± SD of at least three replicates from two independent experiments. P values were determined by a two-tailed t-test.\u003c/p\u003e","description":"","filename":"Fig5.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/a41411f5304d373796652b64.jpg"},{"id":66370854,"identity":"cc821b46-b9bb-4190-a0c8-44b79830a5db","added_by":"auto","created_at":"2024-10-11 04:36:48","extension":"jpg","order_by":6,"title":"Figure 6","display":"","copyAsset":false,"role":"figure","size":675178,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eKnockout FSP1 arrests the peritoneal dissemination of GC cells in vivo. A\u003c/strong\u003e Nude mice were intraperitoneally injected with either scramble control or FSP1-KO of the described GC cells. After approximately one month, the mice were examined for metastases in the abdomen and the affected areas were photographed. The metastatic lesions in the intestines were quantified and presented in a histogram for every group (n = 5). \u003cstrong\u003eB\u003c/strong\u003eHistological analysis of dispersed tumors in the nude mice included H\u0026amp;E staining (scale bars 0.5 mm), 4-HNE (scale bars 50 μm) and Ki67. scale bars 50 μm). Apoptotic cells within the tumors were visualized by TUNEL staining (green), with nuclei counter stained by DAPI (blue) (scale bars 50 μm).\u003c/p\u003e","description":"","filename":"Fig6.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/6957c0bd6227c6615bc3d57c.jpg"},{"id":66370852,"identity":"2d2d901d-8efd-4a6e-8da0-71b35365ba7e","added_by":"auto","created_at":"2024-10-11 04:36:48","extension":"jpg","order_by":7,"title":"Figure 7","display":"","copyAsset":false,"role":"figure","size":106607,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cstrong\u003eProposed mechanism of FSP1 action in the inhibition of ferroptosis. \u003c/strong\u003eGPD1/1L regulates the accumulation of lipid droplets and can suppress the ubiquitination of FSP1. This inhibition may confer resistance to ferroptosis, thereby further suppressing the process of anoikis in GC cells.\u003c/p\u003e","description":"","filename":"Fig7.jpg","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/11b5dd966bbcdaf39a9fdc56.jpg"},{"id":66371847,"identity":"1b21268c-a096-4e19-8eca-6d23092e6ca0","added_by":"auto","created_at":"2024-10-11 04:52:51","extension":"pdf","order_by":0,"title":"","display":"","copyAsset":false,"role":"manuscript-pdf","size":5119226,"visible":true,"origin":"","legend":"","description":"","filename":"manuscript.pdf","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/c3966cfa-8d83-4161-9315-4129f609fc5f.pdf"},{"id":66370851,"identity":"5b083025-0eba-4d77-a8d1-d9c57031a837","added_by":"auto","created_at":"2024-10-11 04:36:48","extension":"tif","order_by":1,"title":"","display":"","copyAsset":false,"role":"supplement","size":1985652,"visible":true,"origin":"","legend":"\u003cp\u003e\u003cbr\u003e\u003c/p\u003e","description":"","filename":"SupplementaryFig1.tif","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/6bb97c7531bc2be6c7ec95bf.tif"},{"id":66370846,"identity":"2aad6f43-70ac-4ef8-bb38-1b2f778739a9","added_by":"auto","created_at":"2024-10-11 04:36:47","extension":"tif","order_by":2,"title":"","display":"","copyAsset":false,"role":"supplement","size":925862,"visible":true,"origin":"","legend":"","description":"","filename":"SupplementaryFig2.tif","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/7747055d9303e1e0cb1d5f1f.tif"},{"id":66371695,"identity":"48ad4365-5cf9-4327-b8af-361bbe954042","added_by":"auto","created_at":"2024-10-11 04:44:47","extension":"tif","order_by":3,"title":"","display":"","copyAsset":false,"role":"supplement","size":562294,"visible":true,"origin":"","legend":"","description":"","filename":"SupplementaryFig3.tif","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/156e3ae435044d1a6abb5ea0.tif"},{"id":66370853,"identity":"1d95d21e-849c-4524-97a0-91f9f571c7cd","added_by":"auto","created_at":"2024-10-11 04:36:48","extension":"pdf","order_by":4,"title":"","display":"","copyAsset":false,"role":"supplement","size":655346,"visible":true,"origin":"","legend":"","description":"","filename":"WB.pdf","url":"https://assets-eu.researchsquare.com/files/rs-4786302/v1/87da59ac0cf9c2ec7d75696f.pdf"}],"financialInterests":"(Not answered)","formattedTitle":"Upregulated FSP1 by GPD1/1L Mediated Lipid Droplet Accumulation Enhances Ferroptosis Resistance and Peritoneal Metastasis in Gastric Cancer","fulltext":[{"header":"INTRODUCTION","content":"\u003cp\u003eGC is recognized as one of the most prevalent malignancies globally, consistently ranking within the top five in incidence and alarmingly, among the top three in mortality rates [\u003cspan citationid=\"CR1\" class=\"CitationRef\"\u003e1\u003c/span\u003e]. The gravity of the situation was underscored in 2020 with an estimated over 1\u0026nbsp;million new cases diagnosed worldwide, tragically culminating in nearly 769,000 fatalities [\u003cspan citationid=\"CR2\" class=\"CitationRef\"\u003e2\u003c/span\u003e]. While early-stage gastric cancer is typically associated with a highly favorable prognosis, with an impressive 5-year survival rate exceeding 90%, its early identification remains elusive. The challenge stems from the cancer's subtle onset, often presenting with either no symptoms or vague indicators such as mild indigestion. The situation is further exacerbated by a general lack of public knowledge regarding the importance of screening, leading to a disappointingly low incidence of early-stage diagnoses. As a result, a significant number of patients are diagnosed at later stages, frequently when peritoneal metastasis has already set in. Metastasis marks a critical turning point in gastric cancer, significantly worsening the prognosis to an average 5-year survival rate of less than 20% [\u003cspan citationid=\"CR3\" class=\"CitationRef\"\u003e3\u003c/span\u003e, \u003cspan citationid=\"CR4\" class=\"CitationRef\"\u003e4\u003c/span\u003e]. The propensity for invasion and distant spread is a principal factor underlying the often disappointing outcomes of treatment efforts [\u003cspan citationid=\"CR5\" class=\"CitationRef\"\u003e5\u003c/span\u003e].\u003c/p\u003e \u003cp\u003eThe National Cancer Institute reports that peritoneal metastasis is a prevalent destination for metastatic spread in various abdominal and pelvic cancers, notably gastric, pancreatic, colorectal, ovarian, and uterine malignancies, with the omentum identified as the predominant site for such metastases [\u003cspan additionalcitationids=\"CR7\" citationid=\"CR6\" class=\"CitationRef\"\u003e6\u003c/span\u003e\u0026ndash;\u003cspan citationid=\"CR8\" class=\"CitationRef\"\u003e8\u003c/span\u003e]. The peritoneal environment, rich in adipocytes, plays a critical role in the body's metabolic response by hydrolyzing fats to release fatty acids, glycerol, and other metabolic substrates into the circulation when energy demands arise [\u003cspan citationid=\"CR9\" class=\"CitationRef\"\u003e9\u003c/span\u003e]. These adipocytes are increasingly recognized for their active role in promoting the invasive and metastatic capabilities of several cancers such as ovarian and gastric cancers [\u003cspan citationid=\"CR8\" class=\"CitationRef\"\u003e8\u003c/span\u003e, \u003cspan citationid=\"CR10\" class=\"CitationRef\"\u003e10\u003c/span\u003e]. Our previous investigation has elucidated that adipocytes can donate fatty acids (FAs) to GC cells, which in turn, facilitates the accumulation of lipid droplets (LDs). Subsequently, these LDs can be used to promote NADPH production via lipolysis and β-oxidation, endowing the cells with a survival advantage against anoikis [\u003cspan citationid=\"CR11\" class=\"CitationRef\"\u003e11\u003c/span\u003e]. LDs composed of a monolayer phospholipids encapsulating neutral lipids, predominantly triacylglycerol (TAG), are vital cellular energy stores. TAG consists of a glycerol backbone esterified with three fatty acids. However, most human cells are incapable of directly metabolizing glycerol, only specialized cells like adipocytes and hepatocytes possess glycerol kinase (GK), which converts glycerol to 3-phosphoglycerol (3-PG). For tumor cells, alternative metabolic routes are essential, such as the conversion of dihydroxyacetone phosphate (DHAP), a glycolytic intermediate, to 3-PG by glycerol-3-phosphate dehydrogenase 1/1-like (GPD1/1L), utilizing NADH as a cofactor. Hence, it is posited that GPD1/1L plays a significant role in the accumulation of LDs in GC cells. So, do lipid droplets serve functions beyond energy provision during the unanchored growth phase of peritoneal metastasis in gastric cancer cells?\u003c/p\u003e \u003cp\u003eIn the context of peritoneal metastasis, GC cells undergo a state of unanchored growth, severed from the supportive extracellular matrix. This detachment is associated with an increased production of reactive oxygen species (ROS) [\u003cspan citationid=\"CR12\" class=\"CitationRef\"\u003e12\u003c/span\u003e, \u003cspan citationid=\"CR13\" class=\"CitationRef\"\u003e13\u003c/span\u003e], which, when in excess, can inflict irreversible damage on cellular macromolecules, including proteins, lipids, and nucleic acids alike, thus significantly contributing to the onset of anoikis [\u003cspan citationid=\"CR14\" class=\"CitationRef\"\u003e14\u003c/span\u003e]. Iron, an indispensable element for cell growth and proliferation, is found in every mammalian cell. Notably, the convergence of ROS with ions can initiate a series of oxidative reactions that specifically target polyunsaturated fatty acids (PUFAs) in the cell membrane's phospholipids. The ensuing peroxidation leads to the disruption of the membrane's structural integrity, culminating in the induction of ferroptosis [\u003cspan citationid=\"CR15\" class=\"CitationRef\"\u003e15\u003c/span\u003e].\u003c/p\u003e \u003cp\u003eFerroptosis is a type of programmed cell death that is distinct from other forms such as apoptosis, necrosis, and autophagy. It is characterized by the accumulation of ROS due to iron-dependent lipid peroxidation [\u003cspan citationid=\"CR16\" class=\"CitationRef\"\u003e16\u003c/span\u003e, \u003cspan citationid=\"CR17\" class=\"CitationRef\"\u003e17\u003c/span\u003e]. The regulation of ferroptosis is governed by three principal pathways [\u003cspan citationid=\"CR18\" class=\"CitationRef\"\u003e18\u003c/span\u003e]: the cystine/GSH/the glutathione peroxidase 4 (GPX4) axis, which is central to cellular redox balance [\u003cspan citationid=\"CR19\" class=\"CitationRef\"\u003e19\u003c/span\u003e, \u003cspan citationid=\"CR20\" class=\"CitationRef\"\u003e20\u003c/span\u003e]; the FSP1/CoQ10 axis, implicated in mitochondrial function [\u003cspan citationid=\"CR21\" class=\"CitationRef\"\u003e21\u003c/span\u003e, \u003cspan citationid=\"CR22\" class=\"CitationRef\"\u003e22\u003c/span\u003e]; and the GCH1/BH4/DHFR axis, which influences critical metabolic processes [\u003cspan citationid=\"CR23\" class=\"CitationRef\"\u003e23\u003c/span\u003e, \u003cspan citationid=\"CR24\" class=\"CitationRef\"\u003e24\u003c/span\u003e]. Recent studies have shown a strong correlation between the progression of ferroptosis and lipid accumulation, particularly in the abundance of lipid droplets. Furthermore, these studies have revealed that FSP1 is predominantly localized to intracellular lipid droplets in adipocytes of brown adipose tissue [\u003cspan citationid=\"CR25\" class=\"CitationRef\"\u003e25\u003c/span\u003e]. However, the functional implications of this localization are not well understood. In this research, we found that the accumulation of lipid droplets in GC cells is associated with a reduction in FSP1 ubiquitination. This decrease in ubiquitination promotes ferroptosis resistance and significantly enhances the peritoneal metastatic potential of GC cells.\u003c/p\u003e"},{"header":"RESULTS","content":"\u003cdiv id=\"Sec3\" class=\"Section2\"\u003e \u003ch2\u003eInduction of ferroptosis by anchorage-independent growth in GC cells\u003c/h2\u003e \u003cp\u003eDetachment of adherent cells can initiate a form of programmed cell death known as anoikis, a process in which ROS are notably implicated. This led us to investigate whether suspension growth could trigger ferroptosis in GC cells. Firstly, we cultured GC cells in a state of suspension using dishes coated with poly-HEMA. Our findings revealed that compared to anchorage, detached BGC823, SGC7901, AGS and HGC27 cells exhibited decreased intracellular NADPH and GSH production (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eA). Interestingly, staining with BODIPY 581/591 revealed a significant elevation in intracellular lipid ROS levels in suspended GC cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eB). Additionally, MDA, a lipid peroxidation marker, demonstrated a significant increase in the detached GC cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eC). Meanwhile, cell death was assessed using a LDH detection kit and calcein AM/EthD-1 staining. Our findings demonstrated a significant enhancement in LDH release (%) (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eD) and cell death in the suspended GC cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eE, F). Furthermore, we confirmed that the ferroptosis inhibitors liproxstatin-1 (Lip-1) and ferrostatin-1 (Fer-1) effectively mitigated the cell death of GC cells during suspension culture (Fig.\u0026nbsp;\u003cspan refid=\"Fig1\" class=\"InternalRef\"\u003e1\u003c/span\u003eG). In our study, we demonstrate that anchorage-independent growth is a potent inducer of ferroptosis. Moreover, our findings reveal that inhibiting ferroptosis significantly enhances the suspension growth capabilities of gastric cancer cells.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec4\" class=\"Section2\"\u003e \u003ch2\u003eLipids drolets attenuate ferroptosis in GC cells during suspension growth\u003c/h2\u003e \u003cp\u003eSpecific alterations in the lipid metabolism, including increased fatty acid uptake and synthesis, are recognized as a mechanism that contribute to anoikis resistance in various types of cancers. Consistent with this, we observed a significant accumulation of neutral lipids in lipid droplets of BGC823 and SGC7901 cells after suspension culture, as visualized by the fluorescent sensor BODIPY 493/503 (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eA). Importantly, the level of TAG markedly increased after suspension culture (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eB). Next, we employed lipid mass spectrometry to analyze the changes in the distribution of FAs across different lipid species. Specifically, the intracellular PUFAs were predominantly found in TAG, with a comparatively lower presence in phospholipids (Figs.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eC and S1A). Collectively, these findings suggested that LDs may play a role in mitigating lipid peroxidation. We then induced LDs accumulation in GC cells by co-culturing GC cells with OA or adipocytes (Fig. \u003cspan refid=\"MOESM1\" class=\"InternalRef\"\u003eS1\u003c/span\u003eB). Our findings indicated that the significant increase in cell death and lipid ROS levels, occurred after suspension culture, was mitigated by OA or adipocytes (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eD-F). In addition, employing antibodies specific to 4-HNE, a marker of lipid peroxidation, we observed an elevation in lipid peroxidation after suspension culture, which was attenuated by OA treatment (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eG). Furthermore, under adherent culture conditions, we used the GPX4 inhibitor RSL3 to induce ferroptosis in GC cells. Both OA and adipocytes were found to inhibit ferroptosis induced by RSL3 (Figs.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eI and S1C), as well as lipid ROS levels (Fig.\u0026nbsp;\u003cspan refid=\"Fig2\" class=\"InternalRef\"\u003e2\u003c/span\u003eH). Additionally, OA provided protection against death induced by arachidonic acid (AA), a PUFAs (Fig. \u003cspan refid=\"MOESM1\" class=\"InternalRef\"\u003eS1\u003c/span\u003eD). Collectively, these results demonstrate the role of lipids drolets in attenuating ferroptosis in GC cells during suspension growth.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003c/div\u003e\n\u003ch3\u003eGPD1/1L mediated lipid droplets accumulation confers ferroptosis resistance\u003c/h3\u003e\n\u003cp\u003eTriacylglycerols serve as the predominant molecules of energy storage in mammalian cells and are responsible for lipid droplets formation. To elucidate the enzymatic pathways that facilitate the incorporation of both endogenous and exogenous fatty acids into lipid droplets, we first examined several key enzymes involved in triglyceride synthesis. These included GPD1 and GPD2, which are isoforms of the rate-controlling enzyme for glycerol-3-phosphate formation, glycerol-3-phosphate dehydrogenase 1 like protein (GPD1L), lysophosphatidyl acyltransferase 1 (AGPAT1) and diacylglycerol acyltransferase 1 and 2 (DGAT1 and DGAT2). Interestingly, under the suspension culture condition, we observed significant upregulation of GPD1 and GPD1L in BGC823 and SGC7901 cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eA). In addition, treatment with 200 \u0026micro;M OA induced a time-dependent increase in GPD1 and GPD1L protein expression in BGC823, SGC7901, AGS and HGC27 cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eB). Subsequent gene set enrichment analysis (GSEA) of transcriptome sequencing data from 375 GC patients in the TCGA database revealed that pathways related to fatty acid metabolism and adipogenesis were significantly enriched in the high-expression groups of GPD1 or GPD1L (Fig. \u003cspan refid=\"MOESM2\" class=\"InternalRef\"\u003eS2\u003c/span\u003eA, B).\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eTo investigate the necessity of GPD1 and GPD1L for lipid droplet accumulation, we generated BGC823 and SGC7901 cell lines with double knockout (DKO) of GPD1 and GPD1L using CRISPR/Cas9 systerm. We successfully established two independent cell lines with strong loss-of-function phenotypes and confirmed that both suspension culture and exogenous OA were less effective in promoting triglyceride synthesis and lipid droplet formation in these lines (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eC, D). Moreover, the DKO of GPD1 and GPD1L resulted in higher levels of lipid peroxidation and its end products 4-HNE during suspension growth (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eE, F). Importantly, the DKO cells exhibited a significant reduction in the protective effect of OA on cell viability (Fig.\u0026nbsp;\u003cspan refid=\"Fig3\" class=\"InternalRef\"\u003e3\u003c/span\u003eG, H). Additionally, the BGC823 or SGC7901 GPD1/1L-DKO cell lines displayed a slight increase in sensitivity to the ferroptosis inducer RSL3. Therefore, these findings underscore the importance of GPD1 and GPD1L in lipid droplet formation and their role in modulating GC cell resistance to ferroptosis.\u003c/p\u003e \u003cdiv id=\"Sec6\" class=\"Section2\"\u003e \u003ch2\u003eAccumulated lipid droplets suppress the ubiquitination of FSP1\u003c/h2\u003e \u003cp\u003eThe data presented above demonstrate that lipid droplets confers ferroptosis resistance in GC cells. Ferroptosis, a form of regulated cell death driven by iron-dependent lipid peroxidation, can be antagonized by several proteins, including GPX4, ferroptosis inhibitory protein 1 (FSP1), and dihydroorotate dehydrogenase (DHODH). To identify the key pathway responsible for this resistance in GC cells, we analyzed the expression levels of SLC7A11, FSP1, DHODH and GPX4 proteins and observed a significant upregulation of FSP1 in response to OA or adipocyte co-culture. However, the elevation of GPX4 expression was not significant (Figs.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eA and S3A). Furthermore, FSP1 upregulation induced by OA was not observed in the DKO of GPD1/1L cell lines (Fig. \u003cspan refid=\"MOESM3\" class=\"InternalRef\"\u003eS3\u003c/span\u003eB). Interestingly, using confocal microscopy, we detected the localization of FSP1 and discovered that its expression was up-regulated after OA treatment, with a subset of FSP1 localizing to the lipid droplet surface (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eB, C). These findings indicate FSP1\u0026rsquo;s role in conferring resistance to ferroptosis in GC cells.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003cp\u003eTo ascertain whether lipid droplets exert a direct influence on the transcript levels of FSP1, thereby modulating its protein expression, we performed qPCR assays. The qPCR data indicated that the FSP1 mRNA levels remained largely unaltered in GC cells harboring lipid droplets (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eD). Given the critical role of ubiquitination in protein degradation, we employed the protein synthesis inhibitor cycloheximide (CHX, 200 \u0026micro;g/mL) and the proteasome inhibitor MG132 (20 \u0026micro;M) to explore FSP1 ubiquitination. Treatment with CHX led to a diminution in FSP1 protein levels (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eE), while MG132 treatment resulted in an increase FSP1 protein level (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eF). Notably, pre-treatment with OA prior to CHX addition caused a significant increase of FSP1 protein (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eG). Immunodetection with pan-ubiquitin antibodies revealed a marked reduction in FSP1 ubiquitination in OA-induced lipid droplet-containing GC cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig4\" class=\"InternalRef\"\u003e4\u003c/span\u003eH). Collectively, These outcomes suggest that lipid droplets may suppress the ubiquitination of FSP1, consequently attenuating its proteasomal degradation.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec7\" class=\"Section2\"\u003e \u003ch2\u003eSuppression of FSP1 enhances ferroptosis in GC cells\u003c/h2\u003e \u003cp\u003eTo ascertain the role of FSP1 in regulating lipid peroxidation during the suspension growth of GC cells, we initiated experiments using the FSP1 inhibitor iFSP1. Our findings demonstrate that FSP1 inhibition during suspension culture significantly abrogated the OA induced ferroptosis resistance in GC cells (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eA). FSP1 knockout in the cell lines was validated through western blot (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eB). Furthermore, the FSP1 knockout cell lines exhibited elevated lipid peroxidation levels and the end product of lipid peroxidation during suspension growth, which corresponded with an decreased cell viability (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eC-E). Additionally, these cell lines exhibited a pronounced increase in sensitivity to RSL3 induced ferroptosis under attached condition (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eF). Consistent with our hypothesis, under conditions that induce ferroptosis, as triggered by RSL3 in FSP1 knockout GC cells, OA failed to enhance cell viability (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eG). To further elucidate the impact of FSP1, we constructed cell lines overexpressing FSP1, and the overexpression was confirmed by western blotting (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eH). These FSP1-overexpressing cell lines displayed enhanced cell viability (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eI), along with reduced lipid peroxidation levels during suspension growth (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eJ) and decreased sensitivity to RSL3-induced ferroptosis under attached conditions (Fig.\u0026nbsp;\u003cspan refid=\"Fig5\" class=\"InternalRef\"\u003e5\u003c/span\u003eK). These results demonstrate ferroptosis is exacerbated in GC cells when FSP1 is suppressed.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec8\" class=\"Section2\"\u003e \u003ch2\u003eKnockout FSP1 reduces the peritoneal dissemination of GC cells in vivo\u003c/h2\u003e \u003cp\u003eSubsequently, we explored the role of FSP1 in peritoneal dissemination \u003cem\u003ein vivo\u003c/em\u003e. Both knockout and control GC cells were injected into the peritoneal cavities of nude mice. FSP1 knockout significantly diminished the formation of mesenteric metastatic nodules on the intestinal wall of the mice (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003eA). Histological examination using H\u0026amp;E staining and IHC revealed that the absence of FSP1 led to a reduction of Ki-67 levels, indicative of decreased cell proliferation, while there was a concomitant increase in 4-HNE levels, which is consistent with our prior in vitro findings (Fig.\u0026nbsp;\u003cspan refid=\"Fig6\" class=\"InternalRef\"\u003e6\u003c/span\u003eB).\u003c/p\u003e \u003cp\u003e \u003c/p\u003e \u003c/div\u003e"},{"header":"DISSCUSSION","content":"\u003cp\u003eIn clinical practice, GC patients with mesenteric metastasis pose a significant challenge due to the scarcity of effective treatment options and generally poor outcomes. The phenomenon of anoikis resistance is a key determinant in the metastatic progression of numerous malignancies, including GC. Anoikis, a specialized form of apoptosis, is triggered when cells detach from the extracellular matrix. It represents a pivotal barrier to tumor metastasis, as cells must evade this programmed cell death to successfully colonize distant sites [\u003cspan citationid=\"CR26\" class=\"CitationRef\"\u003e26\u003c/span\u003e, \u003cspan citationid=\"CR27\" class=\"CitationRef\"\u003e27\u003c/span\u003e]. Anoikis resistance is essential for the survival and sustained propagation of metastatic tumor cells [\u003cspan citationid=\"CR28\" class=\"CitationRef\"\u003e28\u003c/span\u003e]. Among the myriad of factors implicated in the induction of anoikis, the metabolic perturbations that lead to a critical surge in ROS are particularly significant. These ROS, when influenced by iron ions, have the capacity to assail the polyunsaturated fatty acids within the cell membrane. This assault initiates a cascade of lipid peroxidation events, which are diagnostic of ferroptosis. The potential interplay between anoikis and the onset of ferroptosis is a compelling avenue for further research. Decoding this nexus is crucial as it promises to deepen our comprehension of the intricate pathways of cell death and may reveal innovative therapeutic strategies for conditions marked by abnormal cell detachment and the advancement of tumors. In this study, we revealed that anchorage-independent growth of GC cells potently induced ferroptosis, which can be effectively mitigated by the ferroptosis inhibitors. Our findings substantiate that detachment from the extracellular matrix triggers ferroptosis in GC cells.\u003c/p\u003e \u003cp\u003eExogenous metabolites including lipids are potent modulators of cell function and fate. Our previous study demonstrated that peritoneum-derived adipocytes induces robust lipid droplets accumulation in GC cells. However, the pathways that drive lipid droplet accumulation in GC cells and the relationship between lipid droplets and ferroptosis is complicated. Bailey et al [\u003cspan citationid=\"CR29\" class=\"CitationRef\"\u003e29\u003c/span\u003e] have reported that lipid droplets protected Drosophila glial cell niche and neural stem cells from damaging PUFAs peroxidation. The accumulation of excess free fatty acids (FFAs) can induce oxidative stress and mitochondrial dysfunction, resulting in the overproduction of ROS, accumulation of unsaturated fatty acids, and escalation of lipid peroxidation [\u003cspan citationid=\"CR30\" class=\"CitationRef\"\u003e30\u003c/span\u003e].Therefore, tumor cells should aim to minimize oxidative phosphorylation and reduce ROS production, especially during the process of metastasis.\u003c/p\u003e \u003cp\u003eHere, we have demonstrated that lipid drolets derived from OA treatment or coculture with adipocytes, can significantly attenuate ferroptosis in GC cells during suspension growth. This indicates that lipid drolets play a significant role in ferroptosis resistance and the development of peritoneal metastasis in GC cells.\u003c/p\u003e \u003cp\u003eMoving forward, our investigation is focused on identifying and characterizing the pivotal enzymes that orchestrate the biogenesis of lipid droplets in GC cells. The synthesis of triglycerides, a critical lipid class in lipid droplets, is contingent upon the availability of glycerol-3-phosphate(G3P), a key precursor that is requisite for the esterification process irrespective of the fatty acid's origin, be it exogenous or endogenous. G3P is the basic unit of various lipid metabolites, further serving as the backbone for lipid biosynthesis and different signaling molecules, participating in regulating biological processes of cell survival, energy metabolism, and oxidative stress [\u003cspan citationid=\"CR31\" class=\"CitationRef\"\u003e31\u003c/span\u003e, \u003cspan citationid=\"CR32\" class=\"CitationRef\"\u003e32\u003c/span\u003e]. GPD1 and GPD1L share 70% of the same protein sequence and catalyze the same function. They utilize NADH as a coenzyme to catalyze the production of dihydroxyacetone phosphate derived from glucose to G3P in the cytoplasm. Interestingly, emerging evidence indicates that GPD1 plays a tumor-promoting role [\u003cspan citationid=\"CR33\" class=\"CitationRef\"\u003e33\u003c/span\u003e], and GPD1/GPD1L DKO in mouse kidney cancer cells inhibited lipid synthesis and in vitro/ in vivo tumor growth [\u003cspan citationid=\"CR34\" class=\"CitationRef\"\u003e34\u003c/span\u003e]. An observational bladder cancer study also suggested correlated increases in GPD1 and fatty acid synthetic enzyme activities in tumor tissues [\u003cspan citationid=\"CR35\" class=\"CitationRef\"\u003e35\u003c/span\u003e]. In our investigation, we observed that GPD1/1L utilize intracellular unsaturated fatty acids to synthesize triglycerides during the process of detachment, leading to the accumulation of these lipids within cells during the early stages of metastasis. This results in a reduction lipid peroxidation and preventing ferroptosis. Particularly, when GC cells are transferred to the adipocyte-rich peritoneal environment, the expression of cytoplasmic GPD1/1L is significantly upregulated. This upregulation lead to the accumulation of lipid droplets, potentially facilitating tumor progression. Elucidating the precise scope of GPD1's tumor-promoting roles will necessitate additional research.\u003c/p\u003e \u003cp\u003eThe system Xc-/GSH/GPX4 axis is a GSH-dependent ferroptosis defense system and is one of the most important antioxidant systems for ferroptosis resistance [\u003cspan citationid=\"CR36\" class=\"CitationRef\"\u003e36\u003c/span\u003e]. However, in some cell types or cell lines, inhibition of GPX4 cannot induce ferroptosis, which indicates the presence of alternative mechanisms. Among them, the GSH-independent coenzyme Q oxidoreductase FSP1 acts in parallel with GPX4, representing another major regulator of ferroptosis [\u003cspan citationid=\"CR37\" class=\"CitationRef\"\u003e37\u003c/span\u003e, \u003cspan citationid=\"CR38\" class=\"CitationRef\"\u003e38\u003c/span\u003e]. FSP1, as one of the main regulatory molecules of ferroptosis [\u003cspan citationid=\"CR39\" class=\"CitationRef\"\u003e39\u003c/span\u003e], is regulated by upstream factors, including transcription factors and noncoding RNA, and is subject to epigenetic modifications, which affect the progress of FSP1-related diseases. FSP1 is closely associated with the poor prognosis of malignant tumors and plays an important role in disease treatment [\u003cspan citationid=\"CR40\" class=\"CitationRef\"\u003e40\u003c/span\u003e]. Moreover, a study found that dehydroabietic acid can stimulate the upregulation of FSP1 through activating NRF2 pathway, inhibit ROS accumulation and lipid peroxidation, and mitigate nonalcoholic fatty liver disease (NAFLD) induced by a high-fat diet (HFD) [\u003cspan citationid=\"CR41\" class=\"CitationRef\"\u003e41\u003c/span\u003e]. In our investigation, we found that lipid droplets, when accumulated, can suppress the ubiquitination of FSP1. This observation lays the groundwork for delving into novel molecular mechanisms, particularly from the perspective of protein stability pathway.\u003c/p\u003e \u003cp\u003eBriefly, when exposed to a high-fat environment in the peritoneum, a large amount of fatty acids are taken up for synthesis of triglycerides, which can upregulate FSP1 to eliminate intracellular lipid ROS during metastasis. This study unveils the important relationship between lipid metabolism reorganization and ferroptosis, demonstrating that GPD1/1L regulates the accumulation of lipid droplets and that lipid droplets can confer resistance to ferroptosis through FSP1 (Fig.\u0026nbsp;\u003cspan refid=\"Fig7\" class=\"InternalRef\"\u003e7\u003c/span\u003e). These findings provide a novel target for the prevention and treatment of peritoneal metastasis of gastric cancer.\u003c/p\u003e \u003cp\u003e \u003c/p\u003e"},{"header":"MATERIALS AND METHODS","content":"\u003cdiv id=\"Sec11\" class=\"Section2\"\u003e \u003ch2\u003eCell Lines and Reagents\u003c/h2\u003e \u003cp\u003eHuman GC cell lines, as well as GES-1, were purchased from ATCC (Manassas, VA, USA). All cell lines were routinely cultured in RPMI-1640 medium (Hyclone, Cat No.SH30809.01), supplemented with 10% FBS and 1% penicillin/streptomycin solution, under a humidified atmosphere containing 5% CO\u003csub\u003e2\u003c/sub\u003e. For suspension growth, cells were plated on discs coated with poly-2-hydroxyethyl methacrylate (poly-HEMA) (Sigma, Cat No. P3932), prepared by dissolving poly-HEMA powder to a concentration of 12 mg/mL in 95% ethanol. To induce lipid droplets formation in GC cells, we employed oleic acid (OA) (Sigma, Cat No. O1383-1G) at a final concentration of 200\u0026micro;M. Additionally, the ferroptosis inducer RSL3 (Selleck, Cat No. S8155) and the FSP1 suppressor iFSP1 (Selleck, Cat No. S9663) were added to serum-free culture media.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec12\" class=\"Section2\"\u003e \u003ch2\u003eCCK-8 cell viability\u003c/h2\u003e \u003cp\u003eGC cells were cultured in a suspension culture within 96-well plates that had been coated with Poly-HEMA to induce anoikis. Subsequently, the cells were incubated in RPMI-1640 medium with a range of drug concentrations, prepared by serial dilution, for a duration of 48 hours. To assess cell viability, 10 \u0026micro;L of the CCK-8 reagent (Corning Incorporated) was added to each well, followed by a 2 hours incubation at 37\u0026deg;C. The optical density (OD) at 450 nm was then measured using a microplate reader to quantify the cells' response to the treatment.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec13\" class=\"Section2\"\u003e \u003ch2\u003eImmunofluorescence staining\u003c/h2\u003e \u003cp\u003e GC cells were first fixed in 4% paraformaldehyde solution for 30 min, followed by permeabilization using a 0.5% Triton-X 100 solution in 1\u0026times; PBS for 15 min. After permeabilization, the cells were blocked with a 5% BSA solution in 1\u0026times; PBS for 1 h at room temperature to reduce non-specific binding. The cells were then incubated with primary antibodies against FSP1 (Proteintech, Cat No. 20886-1-AP) overnight at 4\u0026deg;C. Subsequently, they were incubated with a secondary antibody, anti-rabbit IgG (Proteintech, Cat No. SA00013-4), diluted 1:200, for 1 h at room temperature. The cell nuclei were counterstained with DAPI (Biofroxx, Cat No. 1155MG010) at a final concentration of 1 \u0026micro;g/mL for 10 min. Lipid droplets were visualized using BODIPY 493/503 (Thermo Fisher Scientific, Cat No. D3922) for 15 min. After staining, the cells were washed with 1\u0026times; PBS to remove excess stain and then sealed using an antifade reagent (Life Technologies, Cat No. P36934) to preserve fluorescence. Finally, the cells were observed under a fluorescence microscope.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec14\" class=\"Section2\"\u003e \u003ch2\u003eProtein extraction and Western blotting\u003c/h2\u003e \u003cp\u003eProtein lysates were extracted from cells using a radio-immunoprecipitation assay buffer (RIPA buffer, Beyotime, Cat No. P0013B), which is composed of 50 mM Tris-HCl at pH 7.4, 150 mM NaCl, 1% Triton X-100, 1% sodium deoxycholate, 1 mM EDTA, 0.1% SDS, and supplemented with Phenylmethanesulfonyl fluoride (PMSF) (Beyotime, Cat No. ST2573) to inhibit protease activity. The samples were centrifuged at 12,000 rpm at 4\u0026deg;C for 10 min to collect the supernatants and the protein concentration of the lysates was determined using a bicinchoninic acid (BCA) protein assay kit (Beyotime, Cat No. P0012). Equal amounts of protein were then loaded onto sodium dodecyl sulfate\u0026ndash;polyacrylamide gels for electrophoretic separation. Following electrophoresis, the proteins were transferred onto polyvinylidene fluoride (PVDF) membranes (Millipore, Cat No. IPVH00010). The membranes were incubated in 5% non-fat milk solution in 1\u0026times; PBS for 1 h at room temperature and then, with primary antibodies overnight at 4\u0026deg;C. Subsequently, Horseradish Peroxidase (HRP)-conjugated secondary antibodies (Proteintech Cat No. SA00001-1; Cat No. SA00001-2) were applied, and the immunoreactive signals were visualized using an enhanced chemiluminescence (ECL) detection reagent (Beyotime, Cat No. P0018FS) (Beyotime, Cat No. P0018FS) according to the established protocols. Quantifed the protein bands using Image J software after being normalized to the tublin level.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec15\" class=\"Section2\"\u003e \u003ch2\u003eLipidomics\u003c/h2\u003e \u003cp\u003eSamples in liquid nitrogen were sent to Novogene Co., Ltd. (Beijing, China) for UHPLC-mass spectrum (MS)/MS analysis. Methanol (0.75 mL) was added to a 100 \u0026micro;L sample, which was placed into a glass tube with a Teflon lined cap, and the tube was vortexed. 2.5 mL of Methyl Tertiary Butyl Ether (MTBE) was added and the mixture was incubated for 1 h at room temperature in a shaker. Phase separation was induced by adding 0.625 ml of MS-grade water. Upon 10 min of incubation at room temperature, the sample was centrifuged at 1,000 g for 10 min. The upper phase was collected, and the lower phase was re-extracted with 1 mL of the solvent mixture (MTBE/methanol/water (10:3:2.5, v/v/v)), and collecting the upper phase. Combined organicphases were dried and dissolved in 100 \u0026micro;L of isopropanol for storage. Then analyzed by UHPLC-MS/MS using a Vanquish UHPLC system (Thermo Fisher, Germany) coupled with an Orbitrap Q ExactiveTM HF mass spectrometer (Thermo Fisher, Germany) in Novogene Co., Ltd. according to the established protocols.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec16\" class=\"Section2\"\u003e \u003ch2\u003eHematoxylin and eosin staining (H\u0026amp;E) and immunohistochemistry (IHC)\u003c/h2\u003e \u003cp\u003eFresh tumor tissue were fixed in 4% paraformaldehyde solution. Following fixation, the tissues underwent dehydration, paraffin embedding, and sectioning to prepare for H\u0026amp;E staining or IHC analysis. The IHC was performed as described previously [\u003cspan citationid=\"CR11\" class=\"CitationRef\"\u003e11\u003c/span\u003e]. In brief, tissue sections were incubated with specific primary antibodies, including those against Ki-67 (Cell Signaling Technology Cat No. 9027s), diluted 1:500, and 4-Hydroxynonenal (4-HNE) (Abcam, Cat No. ab48506) diluted 1:400, overnight at 4\u0026deg;C. The subsequent day, the slides were treated with corresponding secondary antibodies. The immunoreactivity was visualized using a 3,3'-diaminobenzidine (DAB) staining kit (ZSGB-BIO, Cat No. PV-9000). Images were captured randomly from each tumor section at a 200\u0026times; magnification, with five images taken per tumor, using a Leica Aperio CS2 microscope.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec17\" class=\"Section2\"\u003e \u003ch2\u003eGene Knockout Mediated by CRISPR-Cas9\u003c/h2\u003e \u003cp\u003e Using the services of AZENTA (Suzhou, China), we integrated single-guide RNAs (sgRNAs) and a CRISPR-Cas9 expression system into the lentiCRISPR-v2 vector. Subsequently, the generation of stable cell lines was achieved through antibiotic selection with 5 \u0026micro;g/mL puromycin (Sigma-Aldrich, USA), applied for a period of 3 days. Following this selection, single cells were sorted and seeded into 96-well plates for clonal expansion. These monoclonal populations were cultured for a duration of 3 to 4 weeks to allow for the establishment of stable cell lines. The efficiency of the gene knockout was subsequently validated through immunoblotting and quantitative polymerase chain reaction (qPCR) assays. The sequences of the sgRNAs targeting GPD1, GPD1L, and FSP1 were as follows: 5\u0026prime;-TCAGCCATCGCCAAGATCGT-3\u0026prime; for GPD1, 5\u0026prime;-GCATAGACGAGGGCCCCGAG-3\u0026prime; for GPD1L, and 5\u0026prime;-TCAAGGACAACTTCCGGCAG-3\u0026prime; for FSP1, respectively.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec18\" class=\"Section2\"\u003e \u003ch2\u003eMeasurement of MDA, NADPH/NADP\u003csup\u003e+\u003c/sup\u003e and GSH/GSSG\u003c/h2\u003e \u003cp\u003eThe relative malonaldehyde (MDA) concentration in cell was assessed using a lipid peroxidation MDA assay kit (Abcam Cat No. ab118970), according to the manufacturer\u0026rsquo;s protocol. The determination of intracellular NADPH and total NADP levels were performed in accordance with the standard procedures provided by the manufacturer. For the measurement of GSH, a GSH/GSSG-Glo Assay Kit (Promega, #V6611) was employed, according to the manufacturer\u0026rsquo;s instructions.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec19\" class=\"Section2\"\u003e \u003ch2\u003eAnoikis and Lipid ROS assay\u003c/h2\u003e \u003cp\u003eAnoikis was induced by suspending cells in poly-HEMA pre-coated in six-well plates. To assess cell viability, we employed a dual-staining method using calcein AM (Invitrogen, Cat No. C1430, 4 \u0026micro;M) and ethidium homodimer (EthD-1, Invitrogen, Cat No. E1169, 4 \u0026micro;M). Calcein AM serves as a green fluorescent marker for live cells, while EthD-1 indicates dead cells with red fluorescence. Both dyes were pre-incubated at 37\u0026deg;C for 30 minutes before the cells were visualized under a fluorescence microscope to distinguish live from dead populations. For the lipid ROS assay, harvested cells were subjected to staining with BODIPY 581/591 C11 (Thermo Fisher Scientific, D3861), following the manufacturer's recommended protocol. The ROS levels were analyzed using a CytoFLEX cytometer instrument (Beckman Coulter, Brea) for flow cytometric analysis, and representative images were also captured using a fluorescence microscope for direct observation.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec20\" class=\"Section2\"\u003e \u003ch2\u003eAnimal studies\u003c/h2\u003e \u003cp\u003e All animal experiments were approved by the Institutional Animal Care and Use Committee of Guangzhou Medical University. Female BALB/c nude mice, approximately 4 weeks of age, were purchased from Guangdong Medical Laboratory Animal Center (Foshan, China). We evaluated the peritoneal dissemination capacity of GC cells using an intraperitoneal injection model. Briefly, approximately 3\u0026times;10\u003csup\u003e6\u003c/sup\u003e GC cells were enzymatically digested and resuspended in 400\u0026micro;L of 1\u0026times; PBS. This cell suspension was then immediately injected into the peritoneal cavity of each nude mouse, with five mice per experimental group. After a period of about one month, the mice were humanely sacrificed using the CO\u003csub\u003e2\u003c/sub\u003e asphyxiation. Subsequently, the peritoneum was meticulously examined and documented, and tissue samples were collected for subsequent embedding and histological staining analysis.\u003c/p\u003e \u003c/div\u003e \u003cdiv id=\"Sec21\" class=\"Section2\"\u003e \u003ch2\u003eStatistical analyses\u003c/h2\u003e \u003cp\u003eAll experiments were repeated at least three times. Statistical p-values were obtained by application of the appropriate statistical analysis using the GraphPad Prism (version 8.0). Data were presented as the means\u0026thinsp;\u0026plusmn;\u0026thinsp;standard deviation of the mean. To determine significant differences between two groups, we employed Student's t-test. For comparisons involving more than two groups, we used one-way analysis of variance (ANOVA) and Tukey'stest for multiple comparisons. Statistical significance was considered at \u003cem\u003ep\u003c/em\u003e\u0026thinsp;\u0026lt;\u0026thinsp;0.05 (*) and \u003cem\u003ep\u003c/em\u003e\u0026thinsp;\u0026lt;\u0026thinsp;0.01 (**).\u003c/p\u003e \u003c/div\u003e"},{"header":"Declarations","content":"\u003cp\u003e \u003ch2\u003eCOMPETING INTERESTS\u003c/h2\u003e \u003cp\u003eThe authors declare no competing interests.\u003c/p\u003e \u003c/p\u003e\u003cp\u003e \u003ch2\u003eETHICS APPROVAL\u003c/h2\u003e \u003cp\u003e Animal protocols were reviewed and approved by the Institutional Animal Care and Use Committee of Guangzhou Medical University.\u003c/p\u003e \u003c/p\u003e\u003ch2\u003eAUTHOR CONTRIBUTIONS\u003c/h2\u003e \u003cp\u003eSL and HBS conceived and designed the research. GLL, QNL, CJX, KD, GHM, LZ, FZ, RXL, LL, WH and YLM performed the research and acquired the data. GLL, QNL, SL and HBS analyzed and interpreted the data. GLL, QNL, SL and HBS involved in drafting and revising the manuscript. All authors read and approved the final manuscript.\u003c/p\u003e\u003ch2\u003eACKNOWLEDGEMENTS\u003c/h2\u003e \u003cp\u003eThis work was supported by the Natural Science Foundation of China (grant numbers 82173141, 81702886), Bureau of Education of Guangzhou Municipality (grant number 202032801), the Education Department of Guangdong Province (grant numbers 2021ZDZX2044 and 2019KZDXM058), the Education Department of Guangzhou Medical University (grant numbers 2021A090), the scientific research project of Traditional Chinese Medicine Bureau of Guangdong Province (grant numbers 20222122), the scientific research capacity improvement project of 2023 from Guangzhou Medical University, and the open research funds (2021) and the funds of selected project (2022) from GMU-GIBH Joint School of Life Sciences, Guangzhou Medical University. The founders had no role in study design, data collection and analysis, decision to publish, or preparation of the manuscript.\u003c/p\u003e"},{"header":"References","content":"\u003col\u003e\u003cli\u003e\u003cspan\u003eSmyth EC, Nilsson M, Grabsch HI, van Grieken NC, Lordick F. Gastric cancer. Lancet. 2020;396:635\u0026ndash;48.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eSung H, Ferlay J, Siegel RL, Laversanne M, Soerjomataram I, Jemal A, et al. Global Cancer Statistics 2020: GLOBOCAN Estimates of Incidence and Mortality Worldwide for 36 Cancers in 185 Countries. CA Cancer J Clin. 2021;71:209\u0026ndash;49.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eCorrea P. Gastric cancer: Overview. Gastroenterol Clin North Am. 2013;42:211\u0026ndash;7.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eSantoro R, Ettorre GM, Santoro E. Subtotal gastrectomy for gastric cancer. World J Gastroenterol. 2014;20:13667\u0026ndash;80.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eCoffey JC, Dillon M, Sehgal R, Dockery P, Quondamatteo F, Walsh D, et al. Mesenteric-Based surgery exploits gastrointestinal, peritoneal, mesenteric and fascial continuity from duodenojejunal flexure to the anorectal Junction\u0026ndash;A review. Dig Surg. 2015;32:291\u0026ndash;300.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eGerber SA, Rybalko VY, Bigelow CE, Lugade AA, Foster TH, Frelinger JG, et al. Preferential attachment of peritoneal tumor metastases to omental immune aggregates and possible role of a unique vascular microenvironment in metastatic survival and growth. Am J Pathol. 2006;169:1739\u0026ndash;52.\u003c/span\u003e\u003c/li\u003e \u003cli\u003e\u003cspan\u003eBerek JS, Renz M, Kehoe S, Kumar L, Friedlander M. Cancer of the ovary, fallopian tube, and peritoneum: 2021 update. 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J Nat Med. 2021;75:540\u0026ndash;52.\u003c/span\u003e\u003c/li\u003e\u003c/ol\u003e"}],"fulltextSource":"","fullText":"","funders":[],"hasAdminPriorityOnWorkflow":false,"hasManuscriptDocX":true,"hasOptedInToPreprint":true,"hasPassedJournalQc":"","hasAnyPriority":false,"hideJournal":true,"highlight":"","institution":"","isAcceptedByJournal":false,"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":"FSP1, lipid droplet, gastric cancer, ferroptosis","lastPublishedDoi":"10.21203/rs.3.rs-4786302/v1","lastPublishedDoiUrl":"https://doi.org/10.21203/rs.3.rs-4786302/v1","license":{"name":"CC BY 4.0","url":"https://creativecommons.org/licenses/by/4.0/"},"manuscriptAbstract":"\u003cp\u003eTo successfully metastasize, cancer cells must evade detachment induced cell death, known as anoikis. Unraveling the mechanisms that gastric cancer (GC) circumvent anoikis and achieve peritoneal metastasis especially during unanchored growth, could significantly improve patient outcomes. Our study reveals that GC cells exhibit increased lipid peroxidation, MDA production, and cell death during suspension culture, which can be mitigated by the intervention with liproxstatin-1 and ferrostatin-1. We discovered that oleic acid (OA) or adipocytes stimulate lipid accumulation in GC cells, thereby inhibiting lipid peroxidation and cell death. Lipid mass spectrometry confirmed an upregulation of triglyceride synthesis, indicating that the accumulation of lipid droplet may confer resistance to ferroptosis during suspension growth. In vitro assays demonstrated that OA not only induces lipid droplet accumulation but also upregulates the expression of ferroptosis suppressor protein 1 (FSP1), a process that can be abrogated by the double knockout of GPD1/1L genes. Additionally, we have demonstrated that a decrease in the ubiquitination of FSP1 in GC cells upon lipid droplet accumulation, as well as silencing or pharmacological targeting FSP1, promotes ferroptosis and disrupts the peritoneal metastatic potential of GC cells. Collectively, our findings highlight the potential of FSP1 as a promising therapeutic target for metastatic gastric cancer.\u003c/p\u003e","manuscriptTitle":"Upregulated FSP1 by GPD1/1L Mediated Lipid Droplet Accumulation Enhances Ferroptosis Resistance and Peritoneal Metastasis in Gastric Cancer","msid":"","msnumber":"","nonDraftVersions":[{"code":1,"date":"2024-10-11 04:36:42","doi":"10.21203/rs.3.rs-4786302/v1","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}}],"origin":"","ownerIdentity":"6154d306-aed2-40e4-b768-ffeaee9ed72e","owner":[],"postedDate":"October 11th, 2024","published":true,"recentEditorialEvents":[],"rejectedJournal":[],"revision":"","amendment":"","status":"posted","subjectAreas":[{"id":35992402,"name":"Biological sciences/Cancer/Gastrointestinal cancer/Gastric cancer"},{"id":35992403,"name":"Biological sciences/Cell biology/Cell death/Apoptosis"},{"id":35992404,"name":"Biological sciences/Cell biology/Cell signalling/Lipid signalling"}],"tags":[],"updatedAt":"2024-10-11T04:36:45+00:00","versionOfRecord":[],"versionCreatedAt":"2024-10-11 04:36:42","video":"","vorDoi":"","vorDoiUrl":"","workflowStages":[]},"version":"v1","identity":"rs-4786302","journalConfig":"researchsquare"},"__N_SSP":true},"page":"/article/[identity]/[[...version]]","query":{"redirect":"/article/rs-4786302","identity":"rs-4786302","version":["v1"]},"buildId":"qtupq5eGEP_6zYnWcrvyt","isFallback":false,"isExperimentalCompile":false,"dynamicIds":[84888],"gssp":true,"scriptLoader":[]}

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