首页> 外文学位 >The dynamic F-actin crosslinker alpha-actinin is tailored for contractile ring assembly during cytokinesis in Schizosaccharomyces pombe.
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The dynamic F-actin crosslinker alpha-actinin is tailored for contractile ring assembly during cytokinesis in Schizosaccharomyces pombe.

机译:动态F-肌动蛋白交联剂α-肌动蛋白是为粟酒裂殖酵母胞质分裂过程中的收缩环组装量身定制的。

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摘要

Actin builds the basic units of many cellular processes in eukaryotes. Various actin structures are built and maintained by distinct sets of actin-binding proteins. An important cell process that highly relies on the actin network is cytokinesis, the last step in cell division. During cytokinesis, the assembly and constriction of the contractile ring are mediated by the coordinated action of diverse actin-binding proteins, which nucleate, bundle, sever, and travel along actin filaments. My two projects investigated the functions and regulations of actin crosslinkers and nucleators, using two model organisms.;In the first project, I examined the crosslinker alpha-actinin SpAin1, the primary actin bundling protein for cytokinesis in fission yeast Schizosaccharomyces pombe. SpAin1 has a similar domain organization as animal isoforms, with an actin-binding domain followed by spectrin repeats that facilitate dimerization. My goal was to elucidate the actin binding and bundling properties of SpAin1, and determine whether the specific properties are physiologically important for contractile ring function. Using bulk sedimentation assays and single filament TIRF microscopy observation, I determined that SpAin1 binds and bundles actin filaments of mixed polarity. However, compared to human alpha-actinins, SpAin1 bundles actin filaments with a significantly lower efficiency. The basis for a lower bundling efficiency is that SpAin1 is significantly more dynamic than human alpha-actinin HsACTN 4 on filaments, with shorter resident times on both single and bundled filaments. I predict that SpAin1's inefficient, versatile, and dynamic filament bundling properties are suitable for contractile ring dynamics in fission yeast, because other studies have shown that excessive actin filament bundling might reduce the overall actin dynamics during ring formation, resulting in defects in the assembly of the contractile ring. I tested this prediction by determining the effect on contractile ring assembly and constriction with a mutant version of SpAin1(R216E) that bundles F-actin more efficiently than the wild type SpAin1. I found that increasing the overall bundling efficiency by this mutant causes severe cytokinesis defects, during both ring assembly and ring constriction.;Cytokinesis in animal cells also requires contractile rings, but it remains unclear how they are assembled and maintained. The actin nucleator/elongator formin CYK-1 is essential for contractile ring assembly in the nematode worm Caenorhabditis elegans early embryo, and is hypothesized to be regulated by the small GTPase RhoA. CYK-1 contains actin assembly formin-homology domains 1 and 2 FH1FH2, which are flanked by putative N-terminal Diaphanous inhibitory domain DID and C-terminal Diaphanous autoregulatory domain DAD. Previously the Kovar laboratory found that CYK-1 stimulates the rapid assembly of actin monomers bound to profilin (Neidt et al., 2008). Here I report experiments that investigate whether CYK-1 is processive, and whether CYK-1 is auto-inhibited and activated by RhoA. First, by utilizing TIRF microscopy to directly observe the elongation of individual actin filaments associated with CYK-1 immobilized on the coverslip, I found that CYK-1 is processive in both the absence and presence of profilin. I observed buckling filaments as they processively elongate from immobilized CYK-1. Next, I tested whether CYK-1 is auto-inhibited by mixing its N- and C-terminal halves in actin assembly assays in vitro. Utilizing TIRF-microscopy and seeded assembly assays we found that CYK-1-mediated actin nucleation, but not CYK-1 mediated filament elongation, is auto-inhibited through direct association of its N- and C-terminal regulatory domains. Point mutations within the DID and DAD domains completely abolish auto-inhibition. Furthermore, CYK-1 can be partially activated by non-hydrolyzable GTP analog GMP-PNP bound RhoA, but not GDP RhoA or GMP-PNP Cdc42 and Rac. In summary, we determined that CYK-1 is a processive formin whose nucleation activity is regulated by autoinhibition, and is partially activated by RhoA. Other mechanisms must be in place to turn off CYK-1-mediated actin filament elongation.
机译:肌动蛋白构建了真核生物中许多细胞过程的基本单位。各种肌动蛋白结构由不同组的肌动蛋白结合蛋白构建和维持。高度依赖肌动蛋白网络的重要细胞过程是胞质分裂,这是细胞分裂的最后一步。在胞质分裂过程中,收缩环的组装和收缩由多种肌动蛋白结合蛋白的协同作用介导,所述肌动蛋白结合蛋白成核,成束,切断并沿着肌动蛋白丝移动。我的两个项目使用两个模型生物研究了肌动蛋白交联剂和成核剂的功能和调控。在第一个项目中,我研究了交联剂α-肌动蛋白SpAin1,这是裂殖酵母粟酒裂殖酵母细胞分裂的主要肌动蛋白捆绑蛋白。 SpAin1具有与动物同工型相似的结构域结构,其肌动蛋白结合结构域后是促进二聚化的血影蛋白重复。我的目标是阐明SpAin1的肌动蛋白结合和捆绑特性,并确定特定特性对于收缩环功能在生理上是否重要。使用本体沉淀测定法和单丝TIRF显微镜观察,我确定SpAin1结合并捆绑了混合极性的肌动蛋白丝。但是,与人的α-肌动蛋白相比,SpAin1束缚肌动蛋白丝的效率明显降低。较低的束缚效率的基础是,SpAin1在细丝上比人α-肌动蛋白HsACTN 4具有更大的动态性,在单丝和成束细丝上的停留时间更短。我预测SpAin1的低效率,通用性和动态长丝束捆扎特性适合于裂变酵母中的收缩环动力学,因为其他研究表明,过多的肌动蛋白丝束捆扎会降低成环过程中的总体肌动蛋白动力学,从而导致组装过程中出现缺陷。收缩环。我通过确定SpAin1(R216E)突变型对收缩环装配和收缩的影响来测试此预测,该突变型SpAin1比野生型SpAin1更有效地捆绑F-肌动蛋白。我发现,通过这种突变体提高整体捆扎效率,在环组装和环收缩过程中都会引起严重的胞质分裂缺陷。动物细胞的胞质分裂也需要收缩环,但目前尚不清楚它们如何组装和维持。肌动蛋白成核剂/伸长剂formin CYK-1对于线虫线虫秀丽隐杆线虫的早期胚胎中的收缩环组装是必不可少的,并假设受小GTPase RhoA的调节。 CYK-1包含肌动蛋白组装的同源性结构域1和2 FH1FH2,其侧翼是假定的N端透明抑制域DID和C端透明调节域DAD。先前,Kovar实验室发现CYK-1刺激结合于蛋白原的肌动蛋白单体的快速组装(Neidt等,2008)。在这里,我报告实验调查CYK-1是否是进行性的,以及CYK-1是否被RhoA自动抑制和激活。首先,通过利用TIRF显微镜直接观察与固定在盖玻片上的CYK-1相关的单个肌动蛋白丝的伸长,我发现CYK-1在不存在和存在profilin的情况下都是可进行的。我观察到屈曲的细丝从固定的CYK-1逐渐伸长。接下来,我在体外肌动蛋白组装实验中通过将CYK-1的N和C末端半部分混合来测试其是否被自动抑制。利用TIRF显微镜和种子组装检测,我们发现CYK-1介导的肌动蛋白成核,而不是CYK-1介导的细丝伸长,通过其N和C端调节域的直接结合而被自动抑制。 DID和DAD域内的点突变完全消除了自动抑制。此外,CYK-1可以被不可水解的GTP类似物GMP-PNP结合的RhoA部分激活,但不能被GDP RhoA或GMP-PNP Cdc42和Rac激活。总而言之,我们确定CYK-1是一种进行性的形式,其成核活性受自身抑制作用调节,并被RhoA部分激活。必须具备其他机制来关闭CYK-1介导的肌动蛋白丝伸长。

著录项

  • 作者

    Li, Yujie.;

  • 作者单位

    The University of Chicago.;

  • 授予单位 The University of Chicago.;
  • 学科 Biochemistry.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 137 p.
  • 总页数 137
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 宗教;
  • 关键词

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