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ATP hydrolysis on actin-related protein 2/3 complex causes debranching of dendritic actin arrays

机译:肌动蛋白相关蛋白2/3复合物上的ATP水解导致树突状肌动蛋白阵列脱支

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摘要

Extension of lamellipodia, an important dissipative process in cell motility, is driven by the turnover of a polarized dendritic array of actin filaments. Motility is driven by catalytic cycles of filament attachment to Wiskott–Aldrich syndrome protein (WASP)-activated actin-related protein (Arp)2/3 complex at the leading edge, branch formation, and detachment, allowing subsequent growth of branched filaments. The morphology, mechanical strength, and lifetime of the array are determined by the processes of filament branching, debranching, and treadmilling. All three processes are controlled by ATP hydrolysis. ATP hydrolysis on F-actin is known to be at the origin of treadmilling. Here, by using radiolabeled ATP covalently bound to Arp2/3, we show that ATP is hydrolyzed on Arp2, not on Arp3, after a delay following filament branching. Hydrolysis of ATP on Arp2 promotes debranching of filaments and acts as a clock that controls the stability of dendritic actin arrays in lamellipodia. Finally, we propose that hydrolysis of ATP on G-actin in the ternary G-actin–WASP–Arp2/3 complex on branch formation destabilizes the WASP–actin interface and energetically facilitates the detachment step in the branching reaction.
机译:肌动蛋白丝的极化树突状阵列的周转驱动了片状脂膜的延长,这是细胞运动中的重要耗散过程。动力是由细丝附着在前沿的Wiskott-Aldrich综合征蛋白(WASP)活化的肌动蛋白相关蛋白(Arp)2/3复合物的催化循环,分支形成和分离,从而允许分支细丝的后续生长。阵列的形态,机械强度和寿命取决于长丝的分支,脱支和踏车的过程。这三个过程均由ATP水解控制。已知F-肌动蛋白上的ATP水解是跑步机的起源。在这里,通过使用与Arp2 / 3共价结合的放射性标记的ATP,我们显示在细丝分支延迟之后,ATP在Arp2而非Arp3上水解。 ATP在Arp2上的水解促进细丝的脱支,并充当控制钟形脂蛋白树突状肌动蛋白阵列稳定性的时钟。最后,我们提出三元G-肌动蛋白–WASP–Arp2 / 3复合物在分支形成时G-肌动蛋白上的ATP水解使WASP–肌动蛋白界面不稳定,并在分支反应中大力促进分离步骤。

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