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活细胞中囊泡的实时追踪表明,tau蛋白过度磷酸化会抑制运动蛋白的单向运输。

Real-Time Tracking of Vesicles in Living Cells Reveals That Tau-Hyperphosphorylation Suppresses Unidirectional Transport by Motor Proteins.

作者信息

Lee Eunsang, Kim Donghee, Song Yo Han, Shin Kyujin, Song Sanggeun, Lee Minho, Goh Yeongchang, Lim Mi Hee, Kim Ji-Hyun, Sung Jaeyoung, Lee Kang Taek

机构信息

Department of Chemistry, School of Physics and Chemistry, Gwangju Institute of Science and Technology (GIST), Gwangju 61005, Republic of Korea.

Creative Research Initiative Center for Chemical Dynamics in Living Cells, Chung-Ang University, Seoul 06974, Republic of Korea.

出版信息

Chem Biomed Imaging. 2024 Apr 23;2(5):362-373. doi: 10.1021/cbmi.4c00016. eCollection 2024 May 27.

Abstract

Synaptic vesicle transport by motor proteins along microtubules is a crucially active process underlying neuronal communication. It is known that microtubules are destabilized by tau-hyperphosphorylation, which causes tau proteins to detach from microtubules and form neurofibril tangles. However, how tau-phosphorylation affects the transport dynamics of motor proteins on the microtubule remains unknown. Here, we discover that the long-distance unidirectional motion of vesicle-motor protein multiplexes (VMPMs) in living cells is suppressed under tau-hyperphosphorylation, with the consequent loss of fast vesicle-transport along the microtubule. The VMPMs in hyperphosphorylated cells exhibit seemingly bidirectional random motion, with dynamic properties far different from those of VMPM motion in normal cells. We establish a parsimonious physicochemical model of VMPM's active motion that provides a unified, quantitative explanation and predictions for our experimental results. Our analysis reveals that, under hyperphosphorylation conditions, motor protein multiplexes have both static and dynamic motility fluctuations. The loss of fast vesicle-transport along the microtubule can be a mechanism of neurodegenerative disorders associated with tau-hyperphosphorylation.

摘要

由驱动蛋白沿着微管进行的突触小泡运输是神经元通讯的一个至关重要的活跃过程。已知微管会因tau蛋白过度磷酸化而不稳定,这会导致tau蛋白从微管上脱离并形成神经原纤维缠结。然而,tau蛋白磷酸化如何影响驱动蛋白在微管上的运输动力学仍不清楚。在这里,我们发现活细胞中囊泡 - 驱动蛋白复合物(VMPMs)的长距离单向运动在tau蛋白过度磷酸化的情况下受到抑制,从而导致沿微管的快速囊泡运输丧失。过度磷酸化细胞中的VMPMs表现出看似双向的随机运动,其动力学特性与正常细胞中VMPM运动的动力学特性有很大不同。我们建立了一个VMPM主动运动的简约物理化学模型,该模型为我们的实验结果提供了统一的定量解释和预测。我们的分析表明,在过度磷酸化条件下,驱动蛋白复合物既有静态又有动态运动波动。沿微管的快速囊泡运输丧失可能是与tau蛋白过度磷酸化相关的神经退行性疾病的一种机制。

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