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Mechanism of Actin Filament Bundling by Fascin

机译:Fascin actin丝捆绑的机制

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Fascin is the main actin filament bundling protein in filopodia. Because of the important role filopodia play in cell migration, fascin is emerging as a major target for cancer drug discovery. However, an understanding of the mechanism of bundle formation by fascin is critically lacking. Fascin consists of four β-trefoil domains. Here, we show that fascin contains two major actin-binding sites, coinciding with regions of high sequence conservation in β-trefoil domains 1 and 3. The site in β-trefoil-1 is located near the binding site of the fascin inhibitor macroketone and comprises residue Ser-39, whose phosphorylation by protein kinase C down-regulates actin bundling and formation of filopodia. The site in β-trefoil-3 is related by pseudo-2-fold symmetry to that in β-trefoil-1. The two sites are ~5 nm apart, resulting in a distance between actin filaments in the bundle of ~8.1 nm. Residue mutations in both sites disrupt bundle formation in vitro as assessed by co-sedimentation with actin and electron microscopy and severely impair formation of filopodia in cells as determined by rescue experiments in fascin-depleted cells. Mutations of other areas of the fascin surface also affect actin bundling and formation of filopodia albeit to a lesser extent, suggesting that, in addition to the two major actin-binding sites, fascin makes secondary contacts with other filaments in the bundle. In a high resolution crystal structure of fascin, molecules of glycerol and polyethylene glycol are bound in pockets located within the two major actin-binding sites. These molecules could guide the rational design of new anticancer fascin inhibitors.
机译:FASCIN是氟膜透过的主要肌动蛋白丝束蛋白。由于Filopopodia在细胞迁移中发挥着重要作用,因此Fascin正在成为癌症药物发现的主要目标。然而,对Fascin的束形成机制的理解是至关重要的。 Fascin由四个β-三轴域组成。在这里,我们表明Fascin含有两个主要的肌动蛋白结合位点,与β-三轴域1和3中的高序列守恒区域相结合。β-三氟蛋白-1中的部位位于Fascin抑制剂宏观酮的结合位点附近包括残留物SER-39,其蛋白激酶C的磷酸化下调肌动蛋白捆绑和形成氟肽。 β-三氟实-3中的部位通过假-2倍对称性与β-三叶液-1中的对称相关。两个位点分开〜5nm,导致actin长丝在束〜8.1nm束中的距离。通过与肌动蛋白和电子显微镜的共沉降评估,两种部位中的残留突变在体外破坏束形成,并严重损害细胞中的箔片缺失的细胞中的形成,如Fascin耗尽细胞中的救援实验。粘性表面的其他区域的突变也影响肌动蛋白捆绑和氟肽的形成虽然较小程度,表明除了两个主要的肌动蛋白结合位点,Fascin还与束中的其他长丝进行二次接触。在Fascin的高分辨率晶体结构中,甘油和聚乙二醇的分子在位于两个主要肌动蛋白结合位点内的袋中结合。这些分子可以指导新的抗癌患者的合理设计。

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