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Actin-induced dimerization of palladin promotes actin-bundling

机译:肌动蛋白诱导的圣骑士二聚作用促进肌动蛋白束缚

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摘要

A subset of actin binding proteins is able to form crosslinks between two or more actin filaments, thus producing structures of parallel or networked bundles. These actin crosslinking proteins interact with actin through either bivalent binding or dimerization. We recently identified two binding sites within the actin binding domain of palladin, an actin crosslinking protein that plays an important role in normal cell adhesion and motility during wound healing and embryonic development. In this study, we show that actin induces dimerization of palladin. Furthermore, the extent of dimerization reflects earlier comparisons of actin binding and bundling between different domains of palladin. On the basis of these results we hypothesized that actin binding may promote a conformational change that results in dimerization of palladin, which in turn may drive the crosslinking of actin filaments. The proximal distance between two actin binding sites on crosslinking proteins determines the ultrastructural properties of the filament network, therefore we also explored interdomain interactions using a combination of chemical crosslinking experiments and actin cosedimentation assays. Limited proteolysis data reveals that palladin is less susceptible to enzyme digestion after actin binding. Our results suggest that domain movements in palladin are necessary for interactions with actin and are induced by interactions with actin filaments. Accordingly, we put forth a model linking the structural changes to functional dynamics.
机译:肌动蛋白结合蛋白的一个子集能够在两个或多个肌动蛋白丝之间形成交联,从而产生平行或网状束的结构。这些肌动蛋白交联蛋白通过二价结合或二聚作用与肌动蛋白相互作用。我们最近在圣骑士的肌动蛋白结合域内发现了两个结合位点,这是一种肌动蛋白交联蛋白,在伤口愈合和胚胎发育过程中在正常细胞粘附和运动中起着重要作用。在这项研究中,我们表明肌动蛋白诱导帕拉丁的二聚化。此外,二聚化的程度反映了肌动蛋白结合和捆绑之间的较早的比较之间圣帕拉丁的域。基于这些结果,我们假设肌动蛋白结合可能促进构象变化,从而导致帕拉丁的二聚化,进而驱动肌动蛋白丝的交联。交联蛋白上两个肌动蛋白结合位点之间的近端距离决定了细丝网络的超微结构特性,因此,我们还结合了化学交联实验和肌动蛋白沉淀实验,探索了域间相互作用。有限的蛋白水解数据显示,肌动蛋白结合后,palladin对酶消化的敏感性降低。我们的结果表明,palladin中的域运动对于与肌动蛋白相互作用是必需的,并且是由与肌动蛋白丝相互作用引起的。因此,我们提出了一个将结构变化与功能动力学联系起来的模型。

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