LBPO.CL02 · 临床研究 · Late-Breaking

GPER调控微生物肝-肠轴并抑制肝细胞癌

GPER modulates microbial liver gut axis and suppresses hepatocellular carcinoma

编号 LB004 展板 20 时间 4/20 09:00–12:00 区域 Section 52 主讲 Sheema Khan, PhD
分会场 Late-Breaking Research: Clinical Research 2
该海报暂无可下载的资料 AACR 官方页面

作者与单位 Authors & Affiliations

Shweta Singh, Valerie Ledezma, Sierra Vidaurri, Hossain Ahmed, Anupam Dhasmana, Swati Dhasmana, Murali Mohan Yallapu, Diane Nguyen, Subhash C. Chauhan, Sheema Khan

The University of Texas Rio Grande Valley, Edinburg, TX

摘要 Abstract

中文摘要
背景:代谢功能障碍相关脂肪性肝病(MASLD)影响近三分之一的美国成年人,可进展为MASH、肝硬化和HCC。高肥胖率和糖尿病发病率加速疾病进展。新出现的证据强调肝-肠轴及微生物来源的代谢产物是肝脏代谢和肿瘤发生的关键调控因子。本研究显示G蛋白偶联雌激素受体(GPER)是该轴的核心,调控脂质代谢、肠-肝屏障完整性以及微生物定植。我们鉴定出一个保护性微生物联合体(BIOM),其在MASLD中富集但在晚期疾病中丧失,与血脂异常呈负相关,而GPER可增强其植入。 方法:通过免疫组织化学、RT qPCR和Western blot评估GPER的表达。采用TEER和FITC葡聚糖实验测定屏障完整性。通过16S rRNA测序和LC-MS/MS对微生物定植和代谢产物生成进行定量。功能实验包括MTT增殖、划痕愈合、集落形成和球体生长实验。通过免疫荧光和蛋白质组学评估DNA损伤。通过RT PCR和Western blot分析KEAP1/NRF2信号通路、自噬以及胆汁酸转运体表达(FXR、FGF19、BSEP、OSTbeta、NTCP)。统计分析涉及多组比较以及微生物-代谢相关性分析。 结果:我们的初步数据表明,GPER表达在MASLD中最高,并在MASH、肝硬化和HCC中逐步下降,高GPER水平与MASLD中保护性BIOM微生物联合体的存在相关,而这些微生物在晚期疾病中丧失。在肝癌细胞中激活GPER可增强微生物增殖、生物膜形成和代谢产物生成,而GPER敲低则减弱这些效应。在功能上,GPER激活抑制HCC细胞的增殖、迁移和集落形成,减少细胞内脂质蓄积。我们首次鉴定出麦角硫因(ergothioneine)为GPER的一种药理性激活剂,其可扩增BIOM物种、促进益生菌生物膜植入并延长生物膜活力;这些效应在GPER敲低后被消除。GPER信号进一步增强膜完整性、上调胆汁酸转运体、激活KEAP1/NRF2抗氧化通路。总体而言,这些发现确立了GPER作为将宿主受体信号与微生物组介导的代谢稳态及肝肿瘤抑制相联系的关键调控因子,凸显其作为预防MASLD进展的治疗靶点的潜力。 结论:GPER作为肝-肠轴的关键调控因子,将宿主信号与微生物和代谢稳态相连接。这些发现确立GPER为预防MASLD进展至MASH、肝硬化和HCC的首要治疗靶点,为代谢性肝癌中基于微生物组和代谢产物的干预提供了机制框架。
查看英文原文 English abstract
Background: Metabolic dysfunction-associated steatotic liver disease (MASLD) affects nearly one-third of U.S. adults and can progress to MASH, cirrhosis, and HCC. High obesity and diabetes rates accelerate disease progression. Emerging evidence highlights the liver-gut axis and microbiota-derived metabolites as key regulators of liver metabolism and tumorigenesis. This study shows that G protein coupled estrogen receptor (GPER) is central to this axis, regulating lipid metabolism, gut-liver barrier integrity, and microbial colonization. We identified a protective microbial consortium (BIOM) enriched in MASLD but lost in advanced disease, inversely correlating with dyslipidemia, and GPER enhances their engraftment. Methods: GPER expression was assessed by immunohistochemistry, RT qPCR, and Western blot. Barrier integrity was measured with TEER and FITC dextran assays. Microbial colonization and metabolite production were quantified via 16S rRNA sequencing and LC-MS/MS. Functional assays included MTT proliferation, wound-healing, colony formation, and spheroid growth. DNA damage was evaluated by immunofluorescence and proteomics. KEAP1/NRF2 signaling, autophagy, and bile acid transporter expression (FXR, FGF19, BSEP, OSTbeta, NTCP) were analyzed by RT PCR and Western blot. Statistical analyses involved multigroup comparisons and microbial-metabolic correlations. Results: Our preliminary data demonstrate that GPER expression is highest in MASLD and progressively declines in MASH, cirrhosis, and HCC, with high GPER levels correlating with the presence of the protective BIOM microbial consortium in MASLD but their loss in advanced disease. Activation of GPER in liver cancer cells enhances microbial proliferation, biofilm formation, and metabolite production, whereas GPER knockdown diminishes these effects. Functionally, GPER activation suppresses HCC cell proliferation, migration, and colony formation, reduces intracellular lipid accumulation. For the first time, we identified ergothioneine as a pharmacologic activator of GPER, which expands BIOM species, promotes probiotic biofilm engraftment, and prolongs biofilm viability; these effects are abolished with GPER knockdown. GPER signaling further strengthens membrane integrity, upregulates bile acid transporters, activates KEAP1/NRF2 antioxidant pathways. Collectively, these findings establish GPER as a critical regulator linking host receptor signaling to microbiome-mediated metabolic homeostasis and liver tumor suppression, highlighting its potential as a therapeutic target to prevent MASLD progression. Conclusions: GPER functions as a pivotal regulator of the liver-gut axis, connecting host signaling to microbial and metabolic homeostasis. These findings establish GPER as a prime therapeutic target to prevent MASLD progression to MASH, cirrhosis, and HCC, providing a mechanistic framework for microbiome and metabolite based interventions in metabolic liver cancer.
利益披露 Disclosure
S. Singh, None.. V. Ledezma, None.. S. Vidaurri, None.. H. Ahmed, None.. A. Dhasmana, None.. S. Dhasmana, None.. M. M. Yallapu, None.. D. Nguyen, None.. S. C. Chauhan, None.. S. Khan, None.

← 返回 AACR 2026 检索