首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Cooperative extraction of membrane nanotubes by molecular motors.
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Cooperative extraction of membrane nanotubes by molecular motors.

机译:分子马达协同提取膜纳米管。

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摘要

In eukaryotic cells, nanotubes represent a substantial fraction of transport intermediates between organelles. They are extracted from membranes by molecular motors walking along microtubules. We previously showed that kinesins fixed on giant unilamellar vesicles in contact with microtubules are sufficient to form nanotubes in vitro. Motors were attached to the membrane through beads, thus facilitating cooperative effects. Koster et al. proposed that motors could dynamically cluster at the tip of tubes when they are individually attached to the membrane. We demonstrate, in a recently designed experimental system, the existence of an accumulation of motors allowing tube extraction. We determine the motor density along a tube by using fluorescence intensity measurements. We also perform a theoretical analysis describing the dynamics of motors and tube growth. The only adjustable parameter is the motor binding rate onto microtubules, which we measure to be 4.7 +/- 2.4 s(-1). In addition, we quantitativelydetermine, for a given membrane tension, the existence of a threshold in motor density on the vesicle above which nanotubes can be formed. We find that the number of motors pulling a tube can range from four at threshold to a few tens away from it. The threshold in motor density (or in membrane tension at constant motor density) could be important for the understanding of membrane traffic regulation in cells.
机译:在真核细胞中,纳米管占细胞器之间运输中间体的很大一部分。它们是通过分子马达沿着微管行走而从膜中提取的。我们以前显示驱动蛋白固定在与微管接触的巨大单层囊泡上足以在体外形成纳米管。电机通过珠子附着在膜上,从而促进了协同作用。 Koster等。他们提出,当电动机单独附接到膜上时,它们可以动态地聚集在管的尖端。我们在最近设计的实验系统中证明了存在大量允许抽气的电机。我们通过使用荧光强度测量来确定沿管的电机密度。我们还进行了理论分析,描述了电机和电子管增长的动力。唯一可调节的参数是微管上的运动结合率,我们测量为4.7 +/- 2.4 s(-1)。另外,对于给定的膜张力,我们定量地确定了囊上运动密度的阈值的存在,在该阈值之上可以形成纳米管。我们发现,拉动管子的电动机的数量可以在阈值范围内从四个到相距数十个范围。运动密度(或恒定运动密度下的膜张力)阈值对于理解细胞中的膜运输调节可能是重要的。

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