G Protein-Coupled Bile Acid Receptor TGR5 Activation Inhibits Kidney Disease in Obesity and Diabetes

内分泌学 SOD2 内科学 SIRT3 线粒体生物发生 G蛋白偶联胆汁酸受体 氧化应激 局灶节段性肾小球硬化 医学 生物 胆汁酸 线粒体 化学 锡尔图因 超氧化物歧化酶 肾小球肾炎 生物化学 乙酰化 基因
作者
Xiaoxin X. Wang,Michal Herman Edelstein,Uzi Gafter,Liru Qiu,Yuhuan Luo,Evgenia Dobrinskikh,Scott Lucia,Luciano Adorini,Vivette D. D’Agati,Jonathan Levi,Avi Z. Rosenberg,Jeffrey B. Kopp,David Gius,Moin A. Saleem,Moshe Levi
出处
期刊:Journal of The American Society of Nephrology 卷期号:27 (5): 1362-1378 被引量:167
标识
DOI:10.1681/asn.2014121271
摘要

Obesity and diabetes mellitus are the leading causes of renal disease. In this study, we determined the regulation and role of the G protein-coupled bile acid receptor TGR5, previously shown to be regulated by high glucose and/or fatty acids, in obesity-related glomerulopathy (ORG) and diabetic nephropathy (DN). Treatment of diabetic db/db mice with the selective TGR5 agonist INT-777 decreased proteinuria, podocyte injury, mesangial expansion, fibrosis, and CD68 macrophage infiltration in the kidney. INT-777 also induced renal expression of master regulators of mitochondrial biogenesis, inhibitors of oxidative stress, and inducers of fatty acid β-oxidation, including sirtuin 1 (SIRT1), sirtuin 3 (SIRT3), and Nrf-1. Increased activity of SIRT3 was evidenced by normalization of the increased acetylation of mitochondrial superoxide dismutase 2 (SOD2) and isocitrate dehydrogenase 2 (IDH2) observed in untreated db/db mice. Accordingly, INT-777 decreased mitochondrial H2O2 generation and increased the activity of SOD2, which associated with decreased urinary levels of H2O2 and thiobarbituric acid reactive substances. Furthermore, INT-777 decreased renal lipid accumulation. INT-777 also prevented kidney disease in mice with diet-induced obesity. In human podocytes cultured with high glucose, INT-777 induced mitochondrial biogenesis, decreased oxidative stress, and increased fatty acid β-oxidation. Compared with normal kidney biopsy specimens, kidney specimens from patients with established ORG or DN expressed significantly less TGR5 mRNA, and levels inversely correlated with disease progression. Our results indicate that TGR5 activation induces mitochondrial biogenesis and prevents renal oxidative stress and lipid accumulation, establishing a role for TGR5 in inhibiting kidney disease in obesity and diabetes.
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