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PNAS Plus: Distinct VASP tetramers synergize in the processive elongation of individual actin filaments from clustered arrays

机译:PNAS Plus:独特的VASP四聚体在簇状阵列中单个肌动蛋白丝的过程性延伸中协同作用

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摘要

Ena/VASP proteins act as actin polymerases that drive the processive elongation of filament barbed ends in membrane protrusions or at the surface of bacterial pathogens. Based on previous analyses of fast and slow elongating VASP proteins by in vitro total internal reflection fluorescence microscopy (TIRFM) and kinetic and thermodynamic measurements, we established a kinetic model of Ena/VASP-mediated actin filament elongation. At steady state, it entails that tetrameric VASP uses one of its arms to processively track growing filament barbed ends while three G-actin–binding sites (GABs) on other arms are available to recruit and deliver monomers to the filament tip, suggesting that VASP operates as a single tetramer in solution or when clustered on a surface, albeit processivity and resistance toward capping protein (CP) differ dramatically between both conditions. Here, we tested the model by variation of the oligomerization state and by increase of the number of GABs on individual polypeptide chains. In excellent agreement with model predictions, we show that in solution the rates of filament elongation directly correlate with the number of free GABs. Strikingly, however, irrespective of the oligomerization state or presence of additional GABs, filament elongation on a surface invariably proceeded with the same rate as with the VASP tetramer, demonstrating that adjacent VASP molecules synergize in the elongation of a single filament. Additionally, we reveal that actin ATP hydrolysis is not required for VASP-mediated filament assembly. Finally, we show evidence for the requirement of VASP to form tetramers and provide an amended model of processive VASP-mediated actin assembly in clustered arrays.
机译:Ena / VASP蛋白起肌动蛋白聚合酶的作用,驱动膜突起或细菌病原体表面的长丝倒刺末端进行性伸长。基于以前的快速和缓慢延长VASP蛋白的体外全内反射荧光显微镜(TIRFM)以及动力学和热力学测量的分析,我们建立了Ena / VASP介导的肌动蛋白丝伸长的动力学模型。在稳定状态下,它需要四聚体VASP使用其一个臂来逐步追踪生长的长丝倒刺末端,而其他臂上的三个G-肌动蛋白结合位点(GAB)可用于将单体募集并将其输送到长丝尖端,这表明VASP在溶液中或聚集在表面上时,它可以作为单个四聚体运行,尽管在两种条件下,合成能力和对封端蛋白(CP)的抵抗力差异很大。在这里,我们通过改变寡聚状态和增加单个多肽链上GAB的数量来测试模型。与模型预测非常吻合,我们显示出溶液中细丝伸长率与游离GAB的数量直接相关。然而,令人惊讶的是,无论寡聚状态或是否存在其他GAB,表面上的长丝伸长始终以与VASP四聚体相同的速率进行,这表明相邻的VASP分子在单根长丝的伸长中具有协同作用。此外,我们揭示了肌动蛋白ATP水解不是VASP介导的灯丝组件所必需的。最后,我们显示了VASP形成四聚体的要求的证据,并提供了群集阵列中VASP介导的肌动蛋白组装过程的修正模型。

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