驱动蛋白
动力蛋白
细胞生物学
微管
线粒体
分子马达
信号转导衔接蛋白
运动蛋白
化学
磷酸化
分子开关
转运蛋白
细胞内
激酶
微管相关蛋白
生物
生物物理学
基因亚型
机制(生物学)
突变
粒体自噬
螺旋(腹足类)
作者
Christina Gladkova,Maria G Paez-Segala,William P. Grant,Mark Kittisopikul,Samuel A. Myers,Yuxiao Wang,Ronald D. Vale
出处
期刊:Science
[American Association for the Advancement of Science]
日期:2026-08-06
卷期号:393 (6811): 601-606
标识
DOI:10.1126/science.aeh1475
摘要
The cellular distribution of mitochondria in response to stress and local energy needs is governed by the relative activities of the microtubule-based molecular motors kinesin and dynein. The mechanism for switching between these two opposite-polarity microtubule motors remains unknown. In this study, we coupled a cellular synthetic cargo transport assay with AlphaFold2-guided mutagenesis to identify a regulatory helix in the mitochondrial adaptor protein [trafficking kinesin-binding protein (TRAK)] that mediates switching between kinesin- and dynein-driven transport. Differences in the helix sequence explained why two near-identical TRAK isoforms transported mitochondria in predominantly opposite directions. Phosphorylation of the regulatory helix by stress-activated kinases caused the activation of dynein and dissociation of kinesin. Our results reveal a molecular mechanism for coordinating the directional transport of mitochondria in response to intracellular signals.
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