品脱1
粒体自噬
细胞生物学
线粒体
生物
内膜转移酶
外膜转位酶
线粒体内膜
细菌外膜
内膜
线粒体膜转运蛋白
转位酶
线粒体载体
DNAJA3公司
ATP-ADP转位酶
自噬
线粒体凋亡诱导通道
线粒体融合
膜电位
机制(生物学)
膜间隙
生物化学
生物物理学
转运蛋白
作者
Julia A. Thayer,Derek P. Narendra
出处
期刊:Autophagy
[Taylor & Francis]
日期:2026-03-22
卷期号:22 (6): 1424-1425
标识
DOI:10.1080/15548627.2026.2646238
摘要
Mutations in PINK1 and PRKN/parkin are the leading recessive causes of Parkinson disease (PD). Together PINK1 and PRKN form a mitophagy pathway for clearing damaged mitochondria from the cell. It was unclear, however, whether diverse forms of mitochondrial damage activate the PINK1-PRKN pathway through a unified mechanism. Recently, we demonstrated that loss of mitochondrial membrane potential (MMP) leads to the stabilization and activation of PINK1 under a wide range of mitochondrial stressors, including mitochondrial protein misfolding. Mechanistically, we suggest that the MMP is required at a key step of PINK1 import into mitochondria, in which PINK1 is transferred between the translocases of the outer and inner mitochondrial membranes. Consistent with this model, retention of active PINK1 of the outer membrane requires the translocase of the outer mitochondrial membrane (TOMM) complex, whereas import of PINK1 from the outer to inner membrane requires the TIMM23 (translocase of inner mitochondrial membrane 23) complex. Notably, chronic disruption of the TIMM23 complex is sufficient to stabilize active PINK1 in the TOMM complex, phenocopying MMP loss. Together, our findings suggest PINK1 primarily senses catastrophic drops in a mitochondrion's MMP: a dead-end for the mitochondrion's continued biogenesis.
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