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自噬调节 TP53INP2 介导肌肉消耗,并在糖尿病中受到抑制。

Autophagy-regulating TP53INP2 mediates muscle wasting and is repressed in diabetes.

出版信息

J Clin Invest. 2014 May;124(5):1914-27. doi: 10.1172/JCI72327. Epub 2014 Apr 8.

Abstract

A precise balance between protein degradation and synthesis is essential to preserve skeletal muscle mass. Here, we found that TP53INP2, a homolog of the Drosophila melanogaster DOR protein that regulates autophagy in cellular models, has a direct impact on skeletal muscle mass in vivo. Using different transgenic mouse models, we demonstrated that muscle-specific overexpression of Tp53inp2 reduced muscle mass, while deletion of Tp53inp2 resulted in muscle hypertrophy. TP53INP2 activated basal autophagy in skeletal muscle and sustained p62-independent autophagic degradation of ubiquitinated proteins. Animals with muscle-specific overexpression of Tp53inp2 exhibited enhanced muscle wasting in streptozotocin-induced diabetes that was dependent on autophagy; however, TP53INP2 ablation mitigated experimental diabetes-associated muscle loss. The overexpression or absence of TP53INP2 did not affect muscle wasting in response to denervation, a condition in which autophagy is blocked, further indicating that TP53INP2 alters muscle mass by activating autophagy. Moreover, TP53INP2 expression was markedly repressed in muscle from patients with type 2 diabetes and in murine models of diabetes. Our results indicate that TP53INP2 negatively regulates skeletal muscle mass through activation of autophagy. Furthermore, we propose that TP53INP2 repression is part of an adaptive mechanism aimed at preserving muscle mass under conditions in which insulin action is deficient.

摘要

蛋白质降解和合成之间的精确平衡对于维持骨骼肌质量至关重要。在这里,我们发现 TP53INP2,一种调节细胞模型自噬的果蝇黑色素体 DOR 蛋白的同源物,对体内骨骼肌质量有直接影响。使用不同的转基因小鼠模型,我们证明了肌肉特异性过表达 Tp53inp2 会减少肌肉质量,而 Tp53inp2 的缺失则导致肌肉肥大。TP53INP2 激活了骨骼肌中的基础自噬,并维持了泛素化蛋白的 p62 非依赖性自噬降解。肌肉特异性过表达 Tp53inp2 的动物在链脲佐菌素诱导的糖尿病中表现出增强的肌肉消耗,这依赖于自噬;然而,TP53INP2 缺失减轻了实验性糖尿病相关的肌肉损失。TP53INP2 的过表达或缺失并不影响神经切断后引起的肌肉消耗,在这种情况下自噬被阻断,这进一步表明 TP53INP2 通过激活自噬来改变肌肉质量。此外,TP53INP2 的表达在 2 型糖尿病患者的肌肉和糖尿病小鼠模型中明显受到抑制。我们的结果表明,TP53INP2 通过激活自噬来负调控骨骼肌质量。此外,我们提出 TP53INP2 的抑制是一种适应性机制的一部分,旨在在胰岛素作用不足的情况下保持肌肉质量。

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