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动力蛋白依赖GTP的扭转表明膜裂变过程中存在缢缩和张力。

GTP-dependent twisting of dynamin implicates constriction and tension in membrane fission.

作者信息

Roux Aurélien, Uyhazi Katherine, Frost Adam, De Camilli Pietro

机构信息

Department of Cell Biology, Howard Hughes Medical Institute, Kavli Institute for Neuroscience, Boyer Center for Molecular Medicine, Yale University School of Medicine, New Haven, Connecticut 06510, USA.

出版信息

Nature. 2006 May 25;441(7092):528-31. doi: 10.1038/nature04718. Epub 2006 Apr 30.

Abstract

Dynamin, a crucial factor in endocytosis, is a member of a family of GTPases that participates in membrane fission. It was initially proposed to act as a machine that constricts and cuts the neck of nascent vesicles in a GTP-hydrolysis-dependent reaction, but subsequent studies suggested alternative models. Here we monitored the effect of nucleotides on dynamin-coated lipid tubules in real time. Addition of GTP, but not of GDP or GTP-gammaS, resulted in twisting of the tubules and supercoiling, suggesting a rotatory movement of the helix turns relative to each other during GTP hydrolysis. Rotation was confirmed by the movement of beads attached to the tubules. Twisting activity produced a longitudinal tension that was released by tubule breakage when both ends of the tubule were anchored. Fission also occurred when dynamin and GTP were added to lipid tubules that had been generated from liposomes by the motor activity of kinesin on microtubules. No fission events were observed in the absence of longitudinal tension. These findings demonstrate a mechanoenzyme activity of dynamin in endocytosis, but also imply that constriction is not sufficient for fission. At the short necks of endocytic vesicles, other factors leading to tension may cooperate with the constricting activity of dynamin to induce fission.

摘要

发动蛋白是胞吞作用中的一个关键因子,是参与膜裂变的GTP酶家族的成员。最初提出它作为一种机器,在依赖GTP水解的反应中收缩并切断新生囊泡的颈部,但随后的研究提出了其他模型。在这里,我们实时监测了核苷酸对包被有发动蛋白的脂质微管的影响。添加GTP而非GDP或GTP-γS会导致微管扭曲和超螺旋化,这表明在GTP水解过程中螺旋圈相对于彼此发生了旋转运动。通过附着在微管上的珠子的运动证实了旋转。扭曲活动产生了纵向张力,当微管两端固定时,这种张力会因微管断裂而释放。当将发动蛋白和GTP添加到通过驱动蛋白在微管上的运动活性从脂质体产生的脂质微管中时,也会发生裂变。在没有纵向张力的情况下未观察到裂变事件。这些发现证明了发动蛋白在胞吞作用中的一种机械酶活性,但也意味着收缩不足以导致裂变。在内吞囊泡的短颈部,其他导致张力的因素可能与发动蛋白的收缩活性协同作用以诱导裂变。

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