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脂联素受体1缺失时整合素的运输、纤连蛋白结构与肾小球损伤

Integrin Trafficking, Fibronectin Architecture, and Glomerular Injury upon Adiponectin Receptor 1 Depletion.

作者信息

Lindfors Sonja, Schmotz Constanze, Lewandowski Dominik, Hau Annika, Saikko Leena, Lehtonen Eero, Majaniemi Ville, Karhe Minna, Naams Jette-Britt, Nisen Harry, Tienari Jukka, Saleem Moin A, Pfeil Katharina, Bugger Heiko, Pietiläinen Kirsi H, Mirtti Tuomas, Palczewski Krzysztof, Lehtonen Sanna

机构信息

Research Program for Clinical and Molecular Metabolism, Faculty of Medicine, University of Helsinki, Helsinki, Finland.

Gavin Herbert Eye Institute-Center for Translational Vision Research, Department of Ophthalmology, University of California, Irvine, Irvine, California.

出版信息

J Am Soc Nephrol. 2025 May 1;36(5):825-844. doi: 10.1681/ASN.0000000611. Epub 2025 Jan 28.

Abstract

KEY POINTS

Glomerular expression of adiponectin receptor 1 (AdipoR1) was lower in people with type 2 diabetes and correlates with podocyte loss. AdipoR1 knockout induced glomerular injury and fibrosis in mice, predominantly in males. AdipoR1 knockdown podocytes showed impaired trafficking of active integrin 1, fibronectin accumulation, impaired adhesion, and increased apoptosis.

BACKGROUND

Deficiency of adiponectin and its downstream signaling may contribute to the pathogenesis of kidney injury in type 2 diabetes. Adiponectin activates intracellular signaling using adiponectin receptor 1 (AdipoR1) and adiponectin receptor 2, but the role of adiponectin receptor–mediated signaling in glomerular injury in type 2 diabetes remains unknown.

METHODS

The expression of AdipoR1 in the kidneys of people with type 2 diabetes and the expression of podocyte proteins or injury markers in the kidneys of AdipoR1 knockout (AdipoR1-KO) mice and immortalized AdipoR1-deficient human podocytes were investigated by immunohistochemistry and immunoblotting. The functional role of AdipoR1 was studied in AdipoR1-deficient podocytes by performing assays for apoptosis, cytokine secretion, mechanical stress, adhesion, and endocytic trafficking.

RESULTS

Glomerular AdipoR1 expression was lower in type 2 diabetes and associated kidney disease, correlating with higher body mass index and podocyte loss. Male AdipoR1-KO mice showed typical signs of early diabetic kidney disease, including albuminuria, glomerular structural abnormalities, and lower expression of central podocyte proteins; females were less affected. Podocyte apoptosis increased in female and male AdipoR1-KO mice, and excessive podocyte loss, potentially due to detachment, was detected in males. AdipoR1 deficiency impaired the yes-associated protein–mediated mechanoresponse and induced accumulation of the extracellular matrix (ECM) protein fibronectin in the glomeruli and podocytes . Functionally, AdipoR1 deficiency impaired endocytosis of the ECM receptor active integrin 1, disturbed focal adhesion turnover, and remodulated podocyte-derived ECM, thereby reducing podocyte adhesion.

CONCLUSIONS

AdipoR1 deficiency in mice resulted in the development of kidney injury predominantly in males. Mechanistically, AdipoR1 loss in podocytes impaired endocytosis of active integrin 1, which plausibly compromised focal adhesion dynamics, disturbed fibronectin matrix turnover, and hindered podocyte adhesion.

摘要

要点

2型糖尿病患者中脂联素受体1(AdipoR1)的肾小球表达较低,且与足细胞丢失相关。AdipoR1基因敲除在小鼠中诱导肾小球损伤和纤维化,主要发生在雄性小鼠。敲低AdipoR1的足细胞显示活性整合素β1的转运受损、纤连蛋白积聚、黏附受损及细胞凋亡增加。

背景

脂联素及其下游信号通路的缺陷可能参与2型糖尿病肾损伤的发病机制。脂联素通过脂联素受体1(AdipoR1)和脂联素受体2激活细胞内信号,但脂联素受体介导的信号在2型糖尿病肾小球损伤中的作用尚不清楚。

方法

通过免疫组织化学和免疫印迹法研究2型糖尿病患者肾脏中AdipoR1的表达,以及AdipoR1基因敲除(AdipoR1-KO)小鼠和永生化AdipoR1缺陷型人足细胞中足细胞蛋白或损伤标志物的表达。通过进行细胞凋亡、细胞因子分泌、机械应激、黏附及内吞转运分析,研究AdipoR1在AdipoR1缺陷型足细胞中的功能作用。

结果

2型糖尿病及相关肾病患者的肾小球AdipoR1表达较低,与较高的体重指数和足细胞丢失相关。雄性AdipoR1-KO小鼠表现出早期糖尿病肾病的典型症状,包括蛋白尿、肾小球结构异常及足细胞核心蛋白表达降低;雌性小鼠受影响较小。雌性和雄性AdipoR1-KO小鼠的足细胞凋亡均增加,且在雄性小鼠中检测到过多的足细胞丢失,可能是由于脱离所致。AdipoR1缺乏会损害Yes相关蛋白介导的机械反应,并诱导肾小球和足细胞中细胞外基质(ECM)蛋白纤连蛋白的积累。在功能上,AdipoR1缺乏会损害ECM受体活性整合素β1的内吞作用,扰乱黏着斑周转,并重塑足细胞衍生的ECM,从而降低足细胞黏附。

结论

小鼠中AdipoR1缺乏主要在雄性小鼠中导致肾损伤的发生。机制上,足细胞中AdipoR1的缺失损害了活性整合素β1的内吞作用,这可能会损害黏着斑动力学、扰乱纤连蛋白基质周转并阻碍足细胞黏附。

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