丁酸盐通过GPR43-Sirt3途径减轻高脂饮食诱发的肾小球病变

IF 3 3区 医学 Q2 NUTRITION & DIETETICS
British Journal of Nutrition Pub Date : 2025-01-14 Epub Date: 2024-11-22 DOI:10.1017/S0007114524002964
Ying Shi, Lin Xing, Ruoyi Zheng, Xin Luo, Fangzhi Yue, Xingwei Xiang, Anqi Qiu, Junyan Xie, Ryan Russell, Dongmei Zhang
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引用次数: 0

摘要

肥胖相关肾小球病(ORG)的发病率在全球范围内不断上升,但治疗方法却非常有限。与肠道-肾脏轴理论类似,丁酸盐(肠道微生物群产生的短链脂肪酸之一)对新陈代谢和某些肾脏疾病的有益作用也日益受到关注。然而,丁酸盐对ORG的影响及其内在机制在很大程度上尚未被探索。本研究以小鼠为研究对象,采用高脂饮食(HFD)饲养 16 周,并在第 8 周开始丁酸钠治疗,建立了 ORG 模型。在小鼠肾脏中评估了荚膜细胞损伤、氧化应激和线粒体功能,并在棕榈酸(PA)处理的 MPC5 细胞中进行了体外验证。此外,还探讨了丁酸钠对荚膜细胞的分子机制。与对照组相比,丁酸钠治疗可减轻高密度脂蛋白饮食小鼠的肾损伤和肾氧化应激。在 MPC5 细胞中,丁酸盐可改善 PA 诱导的荚膜损伤,并有助于维持线粒体的结构和功能。此外,丁酸盐对荚膜细胞的影响是通过 GPR43-Sirt3 信号通路介导的,在 GPR43 或 Sirt3 抑制剂的干预下丁酸盐的作用减弱就是证明。综上所述,我们得出结论:丁酸盐具有治疗 ORG 的潜力。它能通过激活 GPR43-Sirt3 信号通路减轻高频分解诱导的 ORG 和荚膜损伤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Butyrate attenuates high-fat diet-induced glomerulopathy through GPR43-Sirt3 pathway.

The incidence of obesity-related glomerulopathy (ORG) is rising worldwide with very limited treatment methods. Paralleled with the gut–kidney axis theory, the beneficial effects of butyrate, one of the short-chain fatty acids (SCFA) produced by gut microbiota, on metabolism and certain kidney diseases have gained growing attention. However, the effects of butyrate on ORG and its underlying mechanism are largely unexplored. In this study, a mice model of ORG was established with a high-fat diet feeding for 16 weeks, and sodium butyrate treatment was initiated at the 8th week. Podocyte injury, oxidative stress and mitochondria function were evaluated in mice kidney and validated in vitro in palmitic acid-treated-mouse podocyte cell lines. Further, the molecular mechanisms of butyrate on podocytes were explored. Compared with controls, sodium butyrate treatment alleviated kidney injuries and renal oxidative stress in high-fat diet-fed mice. In mouse podocyte cell lines, butyrate ameliorated palmitic acid-induced podocyte damage and helped maintain the structure and function of the mitochondria. Moreover, the effects of butyrate on podocytes were mediated via the GPR43-Sirt3 signal pathway, as evidenced by the diminished effects of butyrate with the intervention of GPR43 or Sirt3 inhibitors. In summary, we conclude that butyrate has therapeutic potential for the treatment of ORG. It attenuates high-fat diet-induced ORG and podocyte injuries through the activation of the GPR43-Sirt3 signalling pathway.

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来源期刊
British Journal of Nutrition
British Journal of Nutrition 医学-营养学
CiteScore
6.60
自引率
5.60%
发文量
740
审稿时长
3 months
期刊介绍: British Journal of Nutrition is a leading international peer-reviewed journal covering research on human and clinical nutrition, animal nutrition and basic science as applied to nutrition. The Journal recognises the multidisciplinary nature of nutritional science and includes material from all of the specialities involved in nutrition research, including molecular and cell biology and nutritional genomics.
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