课题基金 / 基金详情

Microtubule motors and generation of cell polarity

Microtubule motors and generation of cell polarity
微管马达和细胞极性的产生
批准号:
9546739
负责人:
Vladimir I Gelfand
金额:
$48.98万
依托单位国家:
美国
项目类别:
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-07-01 至 2020-03-31

项目摘要

项目成果

Vladimir I Gelfand的其他基金

相关文献

中文摘要
翻译
 描述(由申请人提供):细胞极性的产生是定义正常细胞生长和分化的多个方面的关键生物学过程。这个计划的主要目标是了解微管和微管马达如何促进细胞极性的产生和细胞骨架的组织。在之前的资助期间,我们的团队发现细胞中的微管在细胞质中被积极运输,一个微管作为轨道,另一个作为马达蛋白的货物。这种运动是由传统的驱动蛋白(驱动蛋白-1),一个主要的微管马达,以前只涉及细胞器沿着微管的运动。驱动蛋白的微管运动是神经元和非神经元细胞形成过程所必需的。在这里,我们建议研究微管运动的驱动蛋白和其他微管马达的细胞极性的产生,特别是在形成过程中的神经元和非神经元细胞的作用。我们最初将使用果蝇S2细胞来鉴定参与微管滑动和过程形成的分子组分,因为这些细胞对通过RNAi敲低蛋白质高度敏感,并且因为微管运动和过程形成可以容易地可视化,跟踪,定量和操纵。一旦确定了这些成分,我们将使用果蝇神经元来研究这些成分如何有助于培养中神经突的形成和体内神经发生。我们将使用果蝇遗传学的工具,结合活神经元的成像和显微操作来解决这些问题。在这个项目中要研究的三个重叠领域是:(i)电机驱动的微管滑动如何组织极化微管阵列?(ii)细胞中马达驱动的微管滑动是如何调节的?(iii)损伤后微管滑动在轴突再生中的作用是什么?我们认为,蛋白质驱动和调节微管滑动神经元可以作为优秀的新的治疗目标,药理学刺激神经突起生长所需的成功治疗神经元损伤和神经退行性疾病。
英文摘要
 DESCRIPTION (provided by applicant): Generation of cell polarity is a key biological process that defines multiple aspects of normal cell growth, and differentiation. The major goal of this proposal is to understand how microtubules and microtubule motors contribute to generation of cell polarity and organization of the cytoskeleton. During the previous funding period our group discovered that microtubules in the cell are actively transported in the cytoplasm, with one microtubule serving as a track and another as a cargo for a motor protein. This movement is powered by conventional kinesin (kinesin-1), a major microtubule motor that has previously only been implicated in movement of organelles along microtubules. Microtubule movement by kinesin is required for formation of processes by neurons and non-neuronal cells. Here we propose to study the role of microtubule movements by kinesin and other microtubule motors in generation of cell polarity and specifically in formation of processes by neuronal and non-neuronal cells. We will initially use Drosophila S2 cells for identification of molecular components involved in microtubule sliding and formation of processes because these cells are highly sensitive to protein knock-down by RNAi and because microtubule movement and process formation can easily be visualized, tracked, quantified and manipulated. Once the components are identified, we will use Drosophila neurons to study how these components contribute to formation of neurites in culture and neurogenesis in vivo. We will use tools of Drosophila genetics combined with imaging of live neurons and micromanipulation to address these questions. The three overlapping areas to be investigated in this project are: (i) How does motor-driven microtubule sliding organize polarized microtubule arrays? (ii) How is motor-driven microtubule sliding regulated in a cell? (iii) What is the role of microtubule sliding in axon regeneration after injury? We believe that proteins driving and regulating microtubule sliding in neurons could serve as excellent new therapeutic targets for pharmacological stimulation of neurite outgrowth required for successful treatment of neuronal injuries and neurodegenerative diseases.
期刊论文(20)
专著(0)
科研奖励(0)
会议论文
Breaking up isn't easy: myosin V and its cargoes need Dma1 ubiquitin ligase's help.
分解并不容易:肌球蛋白 V 及其货物需要 Dma1 泛素连接酶的帮助。
DOI: 10.1016/j.devcel.2014.02.016
发表时间: 2014
期刊: Developmental cell
影响因子: 11.8
作者: [Winding,Michael, Gelfand,VladimirI]
通讯作者: Gelfand,VladimirI
DOI: 10.1091/mbc.e14-10-1423
发表时间: 2015-04-01
期刊: Molecular biology of the cell
影响因子: 3.3
作者: [Lu W, Lakonishok M, Gelfand VI]
通讯作者: Gelfand VI
DOI: 10.1016/j.tcb.2017.02.005
发表时间: 2017-07
期刊: Trends in cell biology
影响因子: 19
作者: [Lu W, Gelfand VI]
通讯作者: Gelfand VI
Cytoplasmic microtubule sliding: An unconventional function of conventional kinesin.
细胞质微管滑动:传统驱动蛋白的非常规功能。
DOI: 10.4161/cib.3.6.13212
发表时间: 2010
期刊: Communicative & integrative biology
影响因子: --
作者: [Jolly,AmberL, Gelfand,VladimirI]
通讯作者: Gelfand,VladimirI
共 12 条
    Microtubule motors, cytoskeletal organization and cell polarity
    Microtubule motors, cytoskeletal organization and cell polarity
    Cytoskeletal mechanisms of oocyte polarity
    Intermediate Filaments: Motility, Motors and Cytoskeletal Interactions