Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression

揭示分层收缩环的动态结构如何引起沟槽侵入

基本信息

项目摘要

Project description: 30 lines Cytokinesis, the separation of a mother cell into two daughter cells, is one of life's most fundamental processes; it is central to the making of multicellular organisms and the transmission of genetic material across generations. The core machinery of cytokinesis is a contractile ring of actin, myosin motors and other proteins and is conserved from fungi to human. The contractile ring is connected to the inside of the cell cortex and its constriction leads the ingression of the plasma membrane into a furrow between the two cytoplasmic compartments that will become individual cells after the completion of cell division. Furrow ingression requires the cooperation between two main mechanisms: 1) constriction of actin filaments by the action of myosin motors and 2) the transmission of this contractile force to the plasma membrane via anchor proteins that connect the actomyosin bundle to the plasma membrane. We found that the proteins of the contractile ring occupy distinct layers with plasma membrane-interacting proteins in the outer layer adjacent to the cortex and the force- producing myosin motors in the inner layer. The next frontier in understanding the mechanism of cytokinesis is to determine how these proteins are organized into complex structures, how these structures move within the contractile ring and are removed from the ring during constriction, and how this dynamic architecture governs the force-generation function of the contractile rings. The objective of this application is to determine the anchoring role of the outer ring and the tension-force producing role of the inner ring by uncovering their dynamic architecture and effects on mechanics of constriction. Our hypothesis is that furrow ingression results from contractile forces produced in the inner layer of the contractile ring, conveyed to the plasma membrane via anchoring achieved by proteins in the outer layer. We plan to test our central hypothesis with the following Specific Aims: 1) determine how cytokinetic node proteins anchor the contractile ring and transmit contractile forces to the plasma membrane during furrow ingression and 2) determine how the molecular architecture of the inner ring governs the constriction of the contractile ring during furrow ingression. The proposed research in this application is innovative because we will use a unique combination of high-speed Fluorescence Photoactivation Localization Microscopy (hsFPALM) in live cells to determine protein organization and its dynamics with laser microsurgery to probe the mechanics of this tension-force producing machine in live cells. The proposed research in this application is significant as it will result in the identification of previously unknown parameters for new molecular and functional models of the contractile ring. As the proteins of the contractile ring are conserved from yeast to human, we expect that the core mechanism of cytokinesis elucidated in fission yeast will act as a template for understanding the mechanism of cytokinesis and even perhaps other non-musclecontractile cellular machines in other species.
项目描述:30条线 细胞分裂,即母细胞分裂成两个子细胞,是生命最基本的过程之一。 它对于多细胞生物的形成和遗传物质的代际传递至关重要。 胞质分裂的核心机制是肌动蛋白、肌球蛋白马达和其他蛋白质的收缩环, 从真菌到人类都是保守的。收缩环连接到细胞皮层的内部及其 收缩导致质膜进入两个细胞质之间的沟中 细胞分裂完成后将成为单个细胞的隔室。犁沟进入需要 两种主要机制之间的合作:1)肌球蛋白马达的作用使肌动蛋白丝收缩 2)通过连接细胞的锚定蛋白将收缩力传递到质膜 肌动球蛋白束至质膜。我们发现收缩环的蛋白质占据不同的位置 与皮质相邻的外层具有质膜相互作用蛋白的层和力- 在内层产生肌球蛋白马达。了解胞质分裂机制的下一个前沿是 确定这些蛋白质如何组织成复杂的结构,这些结构如何在 收缩环并在收缩期间从环中移除,以及这种动态架构如何控制 收缩环的力产生功能。该应用程序的目的是确定 通过揭示外环的锚定作用和内环的拉力产生作用,揭示它们的动态 结构和对收缩力学的影响。我们的假设是犁沟侵入是由于 收缩环内层产生的收缩力,通过传递到质膜 通过外层蛋白质实现锚定。我们计划用以下内容来检验我们的中心假设 具体目标:1) 确定细胞因子节点蛋白如何锚定收缩环并传递收缩力 犁沟侵入过程中对质膜的作用力,2) 决定了犁沟的分子结构如何 内环在沟进入期间控制收缩环的收缩。本项拟议的研究 该应用程序具有创新性,因为我们将使用高速荧光光活化的独特组合 活细胞中的定位显微镜 (hsFPALM) 通过激光确定蛋白质组织及其动态 显微外科手术来探索活细胞中这种产生张力的机器的机制。拟议的 该应用的研究意义重大,因为它将导致识别以前未知的参数 收缩环的新分子和功能模型。由于收缩环的蛋白质是保守的 从酵母到人类,我们期望在裂殖酵母中阐明的胞质分裂的核心机制将充当 用于理解胞质分裂甚至其他非肌肉收缩细胞机制的模板 其他物种的机器。

项目成果

期刊论文数量(0)
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Caroline Laplante其他文献

Caroline Laplante的其他文献

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{{ truncateString('Caroline Laplante', 18)}}的其他基金

Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10674838
  • 财政年份:
    2019
  • 资助金额:
    $ 30.58万
  • 项目类别:
Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10224713
  • 财政年份:
    2019
  • 资助金额:
    $ 30.58万
  • 项目类别:
Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10004677
  • 财政年份:
    2019
  • 资助金额:
    $ 30.58万
  • 项目类别:

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Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10674838
  • 财政年份:
    2019
  • 资助金额:
    $ 30.58万
  • 项目类别:
Defining Defects in Myosin Structure and Function That Cause Dominant Spondylocarpotarsal Synostosis
定义导致显性腕跗骨骨联结的肌球蛋白结构和功能缺陷
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Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10224713
  • 财政年份:
    2019
  • 资助金额:
    $ 30.58万
  • 项目类别:
Uncovering how the dynamic architecture of a layered contractile ring induces furrow ingression
揭示分层收缩环的动态结构如何引起沟槽侵入
  • 批准号:
    10004677
  • 财政年份:
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