Institut Jacques Monod, CNRS, Université Paris-Diderot, 75013 Paris, France.
Institut Jacques Monod, CNRS, Université Paris-Diderot, 75013 Paris, France
Proc Natl Acad Sci U S A. 2019 Feb 12;116(7):2595-2602. doi: 10.1073/pnas.1812053116. Epub 2019 Jan 28.
Proteins of the actin depolymerizing factor (ADF)/cofilin family are the central regulators of actin filament disassembly. A key function of ADF/cofilin is to sever actin filaments. However, how it does so in a physiological context, where filaments are interconnected and under mechanical stress, remains unclear. Here, we monitor and quantify the action of ADF/cofilin in different mechanical situations by using single-molecule, single-filament, and filament network techniques, coupled to microfluidics. We find that local curvature favors severing, while tension surprisingly has no effect on cofilin binding and weakly enhances severing. Remarkably, we observe that filament segments that are held between two anchoring points, thereby constraining their twist, experience a mechanical torque upon cofilin binding. We find that this ADF/cofilin-induced torque does not hinder ADF/cofilin binding, but dramatically enhances severing. A simple model, which faithfully recapitulates our experimental observations, indicates that the ADF/cofilin-induced torque increases the severing rate constant 100-fold. A consequence of this mechanism, which we verify experimentally, is that cross-linked filament networks are severed by cofilin far more efficiently than nonconnected filaments. We propose that this mechanochemical mechanism is critical to boost ADF/cofilin's ability to sever highly connected filament networks in cells.
肌动蛋白解聚因子 (ADF)/丝切蛋白家族的蛋白质是肌动蛋白丝解聚的核心调节剂。ADF/cofilin 的一个关键功能是切断肌动蛋白丝。然而,在纤维相互连接并承受机械应力的生理环境中,它是如何做到这一点的仍然不清楚。在这里,我们通过使用单分子、单纤维和纤维网络技术,并结合微流控技术,监测和量化 ADF/cofilin 在不同机械情况下的作用。我们发现局部曲率有利于切断,而张力出人意料地对丝切蛋白结合没有影响,并且微弱地增强了切断。值得注意的是,我们观察到,当纤维段被固定在两个锚定点之间,从而限制它们的扭曲时,在丝切蛋白结合时会经历机械扭矩。我们发现,这种 ADF/cofilin 诱导的扭矩不会阻碍 ADF/cofilin 的结合,但会显著增强切断。一个忠实再现我们实验观察结果的简单模型表明,ADF/cofilin 诱导的扭矩将切断速率常数提高了 100 倍。该机制的一个后果,我们通过实验验证,是交联的纤维网络被丝切蛋白有效地切断,远远超过非连接的纤维。我们提出,这种机械化学机制对于提高 ADF/cofilin 在细胞中切断高度连接的纤维网络的能力至关重要。