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首页> 外文期刊>Molecular biology of the cell >Ena/VASP processive elongation is modulated by avidity on actin filaments bundled by the filopodia cross-linker fascin
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Ena/VASP processive elongation is modulated by avidity on actin filaments bundled by the filopodia cross-linker fascin

机译:Ena / VASP进行性伸长受丝状伪足交联蛋白fascin束缚的肌动蛋白丝的亲合力调节

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摘要

Ena/VASP tetramers are processive actin elongation factors that localize to diverse F-actin networks composed of filaments bundled by different cross-linking proteins, such as filopodia (fascin), lamellipodia (fimbrin), and stress fibers (α-actinin). Previously, we found that Ena takes approximately threefold longer processive runs on trailing barbed ends of fascin-bundled F-actin. Here, we used single-molecule TIRFM (total internal reflection fluorescence microscopy) and developed a kinetic model to further dissect Ena/VASP’s processive mechanism on bundled filaments. We discovered that Ena’s enhanced processivity on trailing barbed ends is specific to fascin bundles, with no enhancement on fimbrin or α-actinin bundles. Notably, Ena/VASP’s processive run length increases with the number of both fascin-bundled filaments and Ena “arms,” revealing avidity facilitates enhanced processivity. Consistently, Ena tetramers form more filopodia than mutant dimer and trimers in Drosophila culture cells. Moreover, enhanced processivity on trailing barbed ends of fascin-bundled filaments is an evolutionarily conserved property of Ena/VASP homologues, including human VASP and Caenorhabditis elegans UNC-34. These results demonstrate that Ena tetramers are tailored for enhanced processivity on fascin bundles and that avidity of multiple arms associating with multiple filaments is critical for this process. Furthermore, we discovered a novel regulatory process whereby bundle size and bundling protein specificity control activities of a processive assembly factor.
机译:Ena / VASP四聚体是一种持续性肌动蛋白延伸因子,位于多种F-肌动蛋白网络中,F-肌动蛋白网络由由不同交联蛋白(如丝状足(fascin),lamellipodia(纤维蛋白)和应力纤维(α-肌动蛋白))捆绑而成的细丝组成。以前,我们发现Ena在束缚成束的F-肌动蛋白的带刺带刺尾端进行大约三倍的较长运行。在这里,我们使用了单分子TIRFM(全内反射荧光显微镜)并建立了动力学模型,以进一步剖析Ena / VASP对束状细丝的加工机理。我们发现,Ena在带刺铁丝网的尾端增强的合成能力特定于束线束,而对纤维蛋白或α-肌动蛋白束没有增强。值得注意的是,Ena / VASP的过程运行长度会随着束着束束缚的fascin的细丝和Ena的“臂”的数量而增加,这表明亲和力有助于增强工作能力。一致地,在果蝇培养细胞中,Ena四聚体比突变体二聚体和三聚体形成更多的丝状伪足。此外,在束线束的长丝的倒刺末端上增强的生产力是Ena / VASP同源物(包括人VASP和秀丽隐杆线虫UNC-34)的进化保守特性。这些结果表明,Ena四聚体是为增强在fascin束上的合成能力而定制的,并且与多根细丝相关的多臂的亲和力对该过程至关重要。此外,我们发现了一种新颖的调节过程,通过该过程,束的大小和束蛋白的特异性可控制过程性装配因子的活性。

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