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由ADF/丝切蛋白介导的肌动蛋白丝随机动力学

Actin-filament stochastic dynamics mediated by ADF/cofilin.

作者信息

Michelot Alphée, Berro Julien, Guérin Christophe, Boujemaa-Paterski Rajaa, Staiger Christopher J, Martiel Jean-Louis, Blanchoin Laurent

机构信息

Institut de Recherches en Technologie et Sciences pour le Vivant, Laboratoire de Physiologie Cellulaire Végétale, CEA Grenoble, Université Joseph Fourier, 17 rue des Martyrs, F38054 Grenoble, France.

出版信息

Curr Biol. 2007 May 15;17(10):825-33. doi: 10.1016/j.cub.2007.04.037.

Abstract

BACKGROUND

The rapid dynamics of actin filaments is a fundamental process that powers a large number of cellular functions. However, the basic mechanisms that control and coordinate such dynamics remain a central question in cell biology. To reach beyond simply defining the inventory of molecules that control actin dynamics and to understand how these proteins act synergistically to modulate filament turnover, we combined evanescent-wave microscopy with a biomimetic system and followed the behavior of single actin filaments in the presence of a physiologically relevant mixture of accessory proteins. This approach allows for the real-time visualization of actin polymerization and age-dependent filament severing.

RESULTS

In the presence of actin-depolymerizing factor (ADF)/cofilin and profilin, actin filaments with a processive formin attached at their barbed ends were observed to oscillate between stochastic growth and shrinkage phases. Fragmentation of continuously growing actin filaments by ADF/cofilin is the key mechanism modulating the prominent and frequent shortening events. The net effect of continuous actin polymerization, driven by a processive formin that uses profilin-actin, and of ADF/cofilin-mediating severing that trims the aged ends of the growing filaments is an up to 155-fold increase in the rate of actin-filament turnover in vitro in comparison to that of actin alone. Lateral contact between actin filaments dampens the dynamics and favors actin-cable formation. A kinetic simulation accurately validates these observations.

CONCLUSIONS

Our proposed mechanism for the control of actin dynamics is dominated by ADF/cofilin-mediated filament severing that induces a stochastic behavior upon individual actin filaments. When combined with a selection process that stabilizes filaments in bundles, this mechanism could account for the emergence and extension of actin-based structures in cells.

摘要

背景

肌动蛋白丝的快速动态变化是驱动大量细胞功能的基本过程。然而,控制和协调这种动态变化的基本机制仍然是细胞生物学中的核心问题。为了不仅仅简单地确定控制肌动蛋白动态变化的分子清单,并了解这些蛋白质如何协同作用来调节丝的周转,我们将倏逝波显微镜与仿生系统相结合,并在存在生理相关辅助蛋白混合物的情况下跟踪单个肌动蛋白丝的行为。这种方法能够实时观察肌动蛋白聚合和年龄依赖性丝切断。

结果

在存在肌动蛋白解聚因子(ADF)/丝切蛋白和胸腺素β4的情况下,观察到在其带刺末端附着有进行性成肌蛋白的肌动蛋白丝在随机生长和收缩阶段之间振荡。ADF/丝切蛋白对持续生长的肌动蛋白丝的切割是调节突出且频繁的缩短事件的关键机制。由使用胸腺素β4 - 肌动蛋白的进行性成肌蛋白驱动的持续肌动蛋白聚合,以及ADF/丝切蛋白介导的切断(修剪生长丝的老化末端)的净效应是,与单独的肌动蛋白相比,体外肌动蛋白丝周转速率提高了155倍。肌动蛋白丝之间的横向接触会抑制动态变化并有利于肌动蛋白束的形成。动力学模拟准确地验证了这些观察结果。

结论

我们提出的控制肌动蛋白动态变化的机制主要由ADF/丝切蛋白介导的丝切断主导,这会在单个肌动蛋白丝上诱导随机行为。当与使丝束稳定的选择过程相结合时,该机制可以解释细胞中基于肌动蛋白的结构的出现和延伸。

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