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Tethering ATG16L1 or LC3 induces targeted autophagic degradation of protein aggregates and mitochondria

自噬 ATG16L1 细胞生物学 生物 蛋白酶体 蛋白质降解 粒体自噬 蛋白质水解 泛素 线粒体 溶酶体 生物化学 细胞凋亡 基因
作者
Ligang Mei,Xiaorong Chen,Fujing Wei,Xue Huang,Lu Liu,Jia Yao,Jing Chen,Xunguang Luo,Zhuolin Wang,Aimin Yang
出处
期刊:Autophagy [Taylor & Francis]
卷期号:19 (11): 2997-3013 被引量:17
标识
DOI:10.1080/15548627.2023.2234797
摘要

Proteolysis-targeting chimeras (PROTACs) based on the ubiquitin-proteasome system have made great progress in the field of drug discovery. There is mounting evidence that the accumulation of aggregation-prone proteins or malfunctioning organelles is associated with the occurrence of various age-related neurodegenerative disorders and cancers. However, PROTACs are inefficient for the degradation of such large targets due to the narrow entrance channel of the proteasome. Macroautophagy (hereafter referred to as autophagy) is known as a self-degradative process involved in the degradation of bulk cytoplasmic components or specific cargoes that are sequestered into autophagosomes. In the present study, we report the development of a generalizable strategy for the targeted degradation of large targets. Our results suggested that tethering large target models to phagophore-associated ATG16L1 or LC3 induced targeted autophagic degradation of the large target models. Furthermore, we successfully applied this autophagy-targeting degradation strategy to the targeted degradation of HTT65Q aggregates and mitochondria. Specifically, chimeras consisting of polyQ-binding peptide 1 (QBP) and ATG16L1-binding peptide (ABP) or LC3-interacting region (LIR) induced targeted autophagic degradation of pathogenic HTT65Q aggregates; and the chimeras consisting of mitochondria-targeting sequence (MTS) and ABP or LIR promoted targeted autophagic degradation of dysfunctional mitochondria, hence ameliorating mitochondrial dysfunction in a Parkinson disease cell model and protecting cells from apoptosis induced by the mitochondrial stress agent FCCP. Therefore, this study provides a new strategy for the selective proteolysis of large targets and enrich the toolkit for autophagy-targeting degradation.
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