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Mechanisms of branched actin network formation through coordinate activation of Arp2/3 complex.

机译:通过协调激活Arp2 / 3复合物形成支链肌动蛋白网络的机制。

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摘要

Fundamental cellular processes such as motility and endocytosis rely on the actin cytoskeleton to translate biochemical protein interactions into mechanical forces. Cells utilize an extensive collection of actin binding proteins to comprehensively regulate actin networks during these dynamic cell operations. Branched actin networks, which are geometrically and functionally disparate from linear networks, are required for numerous cellular actions. Actin-related protein 2/3 complex (Arp2/3 complex) nucleates branched actin filaments upon activation by regulatory proteins known as nucleation promoting factors (NPFs). Often, several biochemically distinct NPFs are required for the same cellular structure, leading us to hypothesize that multiple NPFs can coordinately activate Arp2/3 complex to regulate the nucleation, architecture and assembly of branched networks. We identified and dissected the mechanisms of two sets of NPFs which coordinately activate Arp2/3 complex. Overall, these findings provide a better understanding of how Arp2/3 complex is activated and how cells control branched actin networks.;In chapters II and III, we investigated the mechanism of synergistic activation of Arp2/3 complex by the NPFs cortactin and WASP family proteins. We found that cortactin accelerates the release of WASP family proteins from a branching intermediate, a previously unknown rate limiting step. Further dissection of the mechanism revealed that cortactin is specifically suited to displace WASP family proteins through a unique Arp2/3 complex binding region and target stalled branching intermediates with high affinity. Three different WASP family members were tested for their capacity to synergize with cortactin in Arp2/3 complex activation, establishing a list of cellular structures where cortactin-mediated synergistic activation is likely occurring.;In chapter IV, we investigated the ability of Dip1 and Wsp1 to coordinately activate Arp2/3 complex during branched network formation. We established that Dip1 activation of Arp2/3 complex results in the formation of linear filaments which can template Wsp1 mediated branching. Subsequent kinetic data and modeling revealed that Dip1 and Wsp1 likely increase the rate of network formation by simultaneously binding to and co-activating Arp2/3 complex. These findings suggest that, together, Dip1 and Wsp1 regulate the initiation and rate of branched network assembly.;This dissertation includes previously published and unpublished co-authored material and videos files.
机译:基本的细胞过程(例如运动性和内吞作用)依靠肌动蛋白的细胞骨架将生化蛋白相互作用转化为机械力。在这些动态细胞操作过程中,细胞利用大量的肌动蛋白结合蛋白来全面调节肌动蛋白网络。在许多细胞作用中需要在几何和功能上与线性网络不同的支链肌动蛋白网络。肌动蛋白相关蛋白2/3复合物(Arp2 / 3复合物)在被称为成核促进因子(NPFs)的调节蛋白激活后使分支的肌动蛋白丝形成核。通常,同一细胞结构需要几个生化方面不同的NPF,这使我们假设多个NPF可以协同激活Arp2 / 3复合物,从而调节分支网络的成核,结构和组装。我们确定并解剖了两组NPFs的机制,这些NPFs协同激活Arp2 / 3复合物。总的来说,这些发现提供了对如何激活Arp2 / 3复合物以及细胞如何控制分支肌动蛋白网络的更好理解。在第二章和第三章中,我们研究了NPFs皮质激素和WASP家族协同激活Arp2 / 3复合物的机制。蛋白质。我们发现cortactin加速了WASP家族蛋白从分支中间体的释放,这是以前未知的限速步骤。对该机制的进一步剖析表明,cortactin特别适合于通过独特的Arp2 / 3复合物结合区和高亲和力靶向失速的分支中间体来取代WASP家族蛋白。测试了三个不同的WASP家族成员在Arp2 / 3复合物激活中与cortactin协同作用的能力,建立了可能发生cortactin介导的协同激活作用的细胞结构列表。在分支网络形成过程中协调激活Arp2 / 3复合物。我们确定Arp2 / 3复合物的Dip1激活导致线性细丝的形成,该细丝可以模板化Wsp1介导的分支。随后的动力学数据和建模表明,Dip1和Wsp1可能通过同时结合并共同激活Arp2 / 3复合物来增加网络形成的速率。这些发现表明,Dip1和Wsp1共同调节分支网络装配的启动和速率。本论文包括以前出版和未出版的合着材料和视频文件。

著录项

  • 作者

    Helgeson, Luke Andrew.;

  • 作者单位

    University of Oregon.;

  • 授予单位 University of Oregon.;
  • 学科 Biochemistry.;Biophysics.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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