Proximal tubular deletion of superoxide dismutase-2 reveals disparate effects on kidney function in diabetes

IF 11.9 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Redox Biology Pub Date : 2025-03-18 DOI:10.1016/j.redox.2025.103601
Inez A. Trambas , Lilliana Bowen , Vicki Thallas-Bonke , Matthew Snelson , Karly C. Sourris , Adrienne Laskowski , Michel Tauc , Isabelle Rubera , Guoping Zheng , David C.H. Harris , Phillip Kantharidis , Takahiko Shimizu , Mark E. Cooper , Sih Min Tan , Melinda T. Coughlan
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Abstract

There is a large body of evidence implicating mitochondrial reactive oxygen species (ROS) overproduction and oxidative stress in the development of diabetic kidney disease and the deficiency of mitochondrial antioxidant systems in the kidney, such as manganese superoxide dismutase (MnSOD/SOD2) have been identified. The proximal tubules of the kidney are densely packed with mitochondria thereby providing energy via oxidative phosphorylation in order to drive active transport for proximal tubular reabsorption of solutes from the glomerular filtrate. We hypothesized that maintenance of MnSOD function in the proximal tubules would be critical to maintain kidney health in diabetes. Here, we induced targeted deletion of SOD2 in the proximal tubules of the kidney in Ins2Akita diabetic mice (SODptKO mice) and show that 20 weeks of SOD2 deletion leads to no major impairment of kidney function and structure, despite these mice displaying enhanced albuminuria and kidney lipid peroxidation (8-isoprostanes). Plasma cystatin C, which is a surrogate marker of glomerular filtration was not altered in SODptKO diabetic mice and histological assessment of the kidney cortex revealed no change in kidney fibrosis. Thus, our findings suggest that deletion of SOD2 in the proximal tubular compartment of the kidney induces a more subtle phenotype than expected, shedding light on the involvement of SOD2 and the proximal tubular compartment in the pathogenesis of diabetic kidney disease.

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近端小管超氧化物歧化酶-2缺失揭示了对糖尿病肾功能的不同影响
有大量证据表明,线粒体活性氧(ROS)的过量产生和氧化应激在糖尿病肾病的发展过程中,以及肾脏中线粒体抗氧化系统(如锰超氧化物歧化酶(MnSOD/SOD2))的缺乏已经被确定。肾近端小管密集分布着线粒体,从而通过氧化磷酸化提供能量,从而推动近端小管从肾小球滤液中重吸收溶质的主动运输。我们假设维持近端小管中MnSOD的功能对于维持糖尿病患者的肾脏健康至关重要。在这里,我们在Ins2Akita糖尿病小鼠(SODptKO小鼠)中诱导了肾近端小管中SOD2的靶向缺失,并表明20周的SOD2缺失不会导致肾脏功能和结构的重大损害,尽管这些小鼠表现出蛋白尿和肾脂质过氧化(8-异前列腺素)的增强。血浆胱抑素C(肾小球滤过的替代标志物)在SODptKO糖尿病小鼠中没有改变,肾皮质的组织学评估显示肾脏纤维化没有变化。因此,我们的研究结果表明,肾脏近端小管间室中SOD2的缺失诱导了比预期更微妙的表型,揭示了SOD2和近端小管间室在糖尿病肾病发病机制中的作用。
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来源期刊
Redox Biology
Redox Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
19.90
自引率
3.50%
发文量
318
审稿时长
25 days
期刊介绍: Redox Biology is the official journal of the Society for Redox Biology and Medicine and the Society for Free Radical Research-Europe. It is also affiliated with the International Society for Free Radical Research (SFRRI). This journal serves as a platform for publishing pioneering research, innovative methods, and comprehensive review articles in the field of redox biology, encompassing both health and disease. Redox Biology welcomes various forms of contributions, including research articles (short or full communications), methods, mini-reviews, and commentaries. Through its diverse range of published content, Redox Biology aims to foster advancements and insights in the understanding of redox biology and its implications.
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