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蛋白酶体调节剂 PA28 的抑制加剧了糖尿病大鼠大脑中的氧化蛋白过载。

Inhibition of the Proteasome Regulator PA28 Aggravates Oxidized Protein Overload in the Diabetic Rat Brain.

机构信息

School of Basic Medicine Sciences, Dali University, 6th Snowman Road, Dali, 671000, Yunnan, People's Republic of China.

Zhuhai People's Hospital, 79th Kangning Road, Zhuhai, 519000, Guangdong, People's Republic of China.

出版信息

Cell Mol Neurobiol. 2023 Aug;43(6):2857-2869. doi: 10.1007/s10571-023-01322-y. Epub 2023 Jan 30.

Abstract

Oxidized protein overloading caused by diabetes is one accelerating pathological pathway in diabetic encephalopathy development. To determine whether the PA28-regulated function of the proteasome plays a role in diabetes-induced oxidative damaged protein degradation, brain PA28α and PA28β interference experiments were performed in a high-fat diet (HFD) and streptozotocin (STZ)-induced rat model. The present results showed that proteasome activity was changed in the brains of diabetic rats, but the constitutive subunits were not. In vivo PA28α and PA28β inhibition via adeno-associated virus (AAV) shRNA infection successfully decreased PA28 protein levels and further exacerbated oxidized proteins load by regulating proteasome catalytic activity. These findings suggest that the proteasome plays a role in the elimination of oxidized proteins and that PA28 is functionally involved in the regulation of proteasome activity in vivo. This study suggests that abnormal protein turbulence occurring in the diabetic brain could be explained by the proteasome-mediated degradation pathway. Changes in proteasome activity regulator PA28 could be a reason to induce oxidative aggregation in diabetic brain. Proteasome regulator PA28 inhibition in vivo by AAV vector injection could aggravate oxidized proteins abundance in brain of HFD-STZ diabetic rat model.

摘要

糖尿病引起的蛋白质氧化过载是糖尿病性脑病发展的一个加速病理途径。为了确定蛋白酶体的 PA28 调节功能是否在糖尿病诱导的氧化损伤蛋白降解中起作用,在高脂肪饮食 (HFD) 和链脲佐菌素 (STZ) 诱导的大鼠模型中进行了脑 PA28α 和 PA28β 干扰实验。目前的结果表明,糖尿病大鼠大脑中的蛋白酶体活性发生了变化,但组成型亚基没有变化。通过腺相关病毒 (AAV) shRNA 感染体内抑制 PA28α 和 PA28β 成功降低了 PA28 蛋白水平,并通过调节蛋白酶体催化活性进一步加剧了氧化蛋白的负荷。这些发现表明蛋白酶体在氧化蛋白的消除中起作用,PA28 参与体内蛋白酶体活性的调节。本研究表明,糖尿病大脑中发生的异常蛋白质湍流可以用蛋白酶体介导的降解途径来解释。蛋白酶体活性调节剂 PA28 的变化可能是诱导糖尿病大脑中氧化聚集的一个原因。通过 AAV 载体注射体内抑制蛋白酶体调节剂 PA28 可能会加重 HFD-STZ 糖尿病大鼠模型大脑中氧化蛋白的丰度。

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