Podocyte-Specific Overexpression of the Antioxidant Metallothionein Reduces Diabetic Nephropathy

足细胞 糖尿病肾病 氧化应激 内分泌学 内科学 金属硫蛋白 转基因小鼠 转基因 肾病 尼福林 肾小球基底膜 糖尿病 生物 肾小球肾炎 医学 肾 蛋白尿 生物化学 基因
作者
Shirong Zheng,Edward C. Carlson,Lu Yang,Patricia M. Kralik,Yun Huang,Paul N. Epstein
出处
期刊:Journal of The American Society of Nephrology [American Society of Nephrology]
卷期号:19 (11): 2077-2085 被引量:74
标识
DOI:10.1681/asn.2007080967
摘要

Podocytes are critical components of the selective filtration barrier of the glomerulus and are susceptible to oxidative damage. For investigation of the role of oxidative stress and podocyte damage in diabetic nephropathy, transgenic mice that overexpress the antioxidant protein metallothionein (MT) specifically in podocytes (Nmt mice) were produced. MT expression was increased six- and 18-fold in glomeruli of two independent lines of Nmt mice, and podocyte-specific overexpression was confirmed. Glomerular morphology and urinary albumin excretion were normal in Nmt mice. OVE26 transgenic mice, a previously reported model of diabetic nephropathy, were crossed with Nmt mice to determine whether an antioxidant transgene targeted to podocytes could reduce diabetic nephropathy. Double-transgenic OVE26Nmt mice developed diabetes similar to OVE26 mice, but MT overexpression reduced podocyte damage, indicated by more podocytes, less glomerular cell death, and higher density of podocyte foot processes. In addition, expansion of glomerular and mesangial volume were significantly less in OVE26Nmt mice compared with OVE26 mice. Four-month-old OVE26Nmt mice had a 70 to 90% reduction in 24-h albumin excretion, but this protection does not seem to be permanent. These results provide evidence for the role of oxidative damage to the podocyte in diabetic mice and show that protection of the podocyte can reduce or delay primary features of diabetic nephropathy.
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