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Bidirectional membrane tube dynamics driven by nonprocessive motors

机译:非过程电机驱动的双向膜管动力学

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摘要

In cells, membrane tubes are extracted by molecular motors. Although individual motors cannot provide enough force to pull a tube, clusters of such motors can. Here,weinvestigate, using a minimal in vitro model system, how the tube pulling process depends on fundamental properties of the motor species involved. Previously, it has been shown that processive motors can pull tubes by dynamic association at the tube tip. We demonstrate that, remarkably, nonprocessive motors can also cooperatively extract tubes. Moreover, the tubes pulled by nonprocessive motors exhibit rich dynamics as compared to those pulled by their processive counterparts. We report distinct phases of persistent growth, retraction, and an intermediate regime characterized by highly dynamic switching between the two. We interpret the different phases in the context of a single-species model. The model assumes only a simple motor clustering mechanism along the length of the entire tube and the presence of a length-dependent tube tension. The resulting dynamic distribution of motor clusters acts as both a velocity and distance regulator for the tube. We show the switching phase to be an attractor of the dynamics of this model, suggesting that the switching observed experimentally is a robust characteristic of nonprocessive motors. A similar system could regulate in vivo biological membrane networks.
机译:在细胞中,膜管通过分子马达提取。尽管单个马达无法提供足够的力来拉管,但可以将这些马达簇聚集在一起。在这里,我们使用最小的体外模型系统研究管的拉拔过程如何取决于所涉及的运动物质的基本特性。先前已经证明,过程电动机可以通过管端的动态关联来拉动管。我们证明,值得注意的是,非过程电机也可以协同提取管。而且,与由其过程性对应物牵引的那些管相比,由非过程性电动机牵引的管表现出丰富的动力学。我们报告了持续增长,收缩和中间机制的不同阶段,两者之间具有高度动态的切换。我们在单物种模型的背景下解释不同的阶段。该模型仅假设沿整个管子的长度有简单的电机聚类机制,并且存在与管子长度有关的长度。电机簇的最终动态分布同时充当管的速度和距离调节器。我们表明切换阶段是该模型动力学的吸引者,这表明实验观察到的切换是非过程电动机的强大特性。一个类似的系统可以调节体内生物膜网络。

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