肾尖钠依赖性胆汁酸转运体表达救援通过类雌激素 X 受体激活减轻糖尿病肾病的肾损伤。

IF 2.4 4区 医学 Q2 UROLOGY & NEPHROLOGY Nephrology Pub Date : 2024-10-01 Epub Date: 2024-06-26 DOI:10.1111/nep.14338
Youmei Li, Shuguang Pang, Honggang Guo, Shuo Yang
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引用次数: 0

摘要

目的:胆汁酸(BA)是调节糖脂平衡和能量消耗的信号分子。然而,糖尿病肾病(DKD)患者肾脏中负责肾脏胆汁酸重吸收的顶端钠依赖性胆汁酸转运体(ASBT)的表达下调。本研究以 db/db 小鼠为 DKD 模型,旨在探讨通过腺相关病毒介导的 ASBT(AAVASBT)转运拯救 ASBT 表达对肾脏保护的影响:方法:6周大雄性db/db小鼠肾实质内注射AAVASBT,剂量为1×1011病毒基因组(vg)/只,随后喂食饲料2周。雄性 db/m 小鼠作为对照组。在药物治疗方面,实验开始一天后每天腹腔注射类法尼X受体(FXR)拮抗剂古格雄酮(GS,10 mg/kg):结果:AAVASBT治疗可挽救db/db小鼠肾脏ASBT的表达并减少尿中BA的排出。AAVASBT 治疗激活了肾线粒体的生物生成,并通过激活 FXR 改善了与糖尿病相关的肾功能损害。此外,在DKD小鼠体内注射FXR拮抗剂GS将逆转AAVASBT治疗的这些有益作用:我们的研究表明,恢复肾脏 ASBT 的表达可通过激活 FXR 减缓 DKD 的病程。FXR 激活可刺激线粒体生物生成,同时减少肾脏氧化应激和脂质堆积,这表明 FXR 激活在预防 DKD 方面起着至关重要的作用。这些发现进一步表明,维持肾脏对 BA 的重吸收可能是治疗 DKD 的一种可行方法。
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The renal apical sodium-dependent bile acid transporter expression rescue attenuates renal damage in diabetic nephropathy via farnesoid X receptor activation.

Aim: Bile acids (BA) function as signalling molecules regulating glucose-lipid homeostasis and energy expenditure. However, the expression of the apical sodium-dependent bile acid transporter (ASBT) in the kidney, responsible for renal BA reabsorption, is downregulated in patients with diabetic kidney disease (DKD). Using the db/db mouse model of DKD, this study aimed to investigate the effects of rescuing ASBT expression via adeno-associated virus-mediated delivery of ASBT (AAVASBT) on kidney protection.

Methods: Six-week-old male db/db mice received an intraparenchymal injection of AAVASBT at a dose of 1 × 1011 viral genomes (vg)/animal and were subsequently fed a chow diet for 2 weeks. Male db/m mice served as controls. For drug treatment, daily intraperitoneal (i.p.) injections of the farnesoid X receptor (FXR) antagonist guggulsterone (GS, 10 mg/kg) were administered one day after initiating the experiment.

Results: AAVASBT treatment rescued renal ASBT expression and reduced the urinary BA output in db/db mice. AAVASBT treatment activated kidney mitochondrial biogenesis and ameliorated renal impairment associated with diabetes by activating FXR. In addition, the injection of FXR antagonist GS in DKD mice would reverse these beneficial effects by AAVASBT treatment.

Conclusion: Our work indicated that restoring renal ASBT expression slowed the course of DKD via activating FXR. FXR activation stimulates mitochondrial biogenesis while reducing renal oxidative stress and lipid build up, indicating FXR activation's crucial role in preventing DKD. These findings further suggest that the maintenance of renal BA reabsorption could be a viable treatment for DKD.

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来源期刊
Nephrology
Nephrology 医学-泌尿学与肾脏学
CiteScore
4.50
自引率
4.00%
发文量
128
审稿时长
4-8 weeks
期刊介绍: Nephrology is published eight times per year by the Asian Pacific Society of Nephrology. It has a special emphasis on the needs of Clinical Nephrologists and those in developing countries. The journal publishes reviews and papers of international interest describing original research concerned with clinical and experimental aspects of nephrology.
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