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Toward an integrative understanding of mammalian cell motility

Toward an integrative understanding of mammalian cell motility
对哺乳动物细胞运动的综合理解
批准号:
1309542
负责人:
Herbert Levine
金额:
$136.2万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-01 至 2017-08-31

项目摘要

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中文摘要
翻译
在过去的几年里,在理解哺乳动物细胞运动的许多详细的动力学机制方面取得了重大进展。 这些包括局灶性粘连的作用,肌动蛋白流的时空组织,肌动蛋白聚合的前沿膜的反应,相反,肌球蛋白微丝在后方产生收缩应力的作用。 现在正是将这些知识联合收割机组合成一个数学模型的好时机,这个模型可以处理整个细胞的形态动力学,并将运动与机械数据(如牵引力测量)和亚细胞信号信息(如特定分子的定位数据)相关联。 该建议旨在构建和验证这样的内皮细胞模型。 从数学方面,新的元素包括嵌入到一个移动的细胞的几何形状,使相场方法的所有上述过程;后者已显示出它的相关性,在许多领域的移动边界问题,从凝固到多相流体流动。 实验数据将通过利用最先进的微流体装置获得,以便提供受控的细胞环境,并将包括信号分子的空间模式(位置和激活)以及力的测量。模型预测将在许多不同的细胞系和细胞进行各种pharamacological treatment. Objective细胞运动的定量理解是许多重要的生物医学系统,从癌症转移到炎症反应病原体的测试。 生物物理学工具已经达到了这样的程度,人们可以获得关于运动机制各个部分的高质量数据;例如,我们可以测量细胞在其移动的基底上施加的力。 与此同时,计算建模的进展已经表明如何解决涉及流体流动和在移动区域内发生的化学反应的复杂问题。 我们的建议旨在结合这两种能力,实验生物物理学和计算建模,以创建一个定量的方法来运动的一种特定类型的哺乳动物细胞。 一旦成功,我们的方法可以扩展到其他细胞类型和在更复杂的空间中移动的细胞。 最终的回报将是增加基本的理解和增加影响细胞运动的能力,也许是为了防止原发性肿瘤细胞在靶组织中建立次级集落。该提案是为了响应DMS/NIGMS支持生物和数学科学接口研究的联合倡议而提交的。该补助金由数学科学部的数学生物学计划资助,并由NSF物理部的生命系统物理计划共同资助。
英文摘要
There has been significant progress over the last few years in understanding many of the detailed dynamical mechanisms underlying mammalian cell motility. These include the role of focal adhesions, the spatio-temporal organization of actin flow, the response of the leading-edge membrane to actin polymerization and conversely the role of myosin minifilaments in creating contractile stress at the rear. It is now an opportune time to combine this knowledge into a mathematical model which can treat the morphodynamics of the whole cell, and correlate motion with both mechanical data (such as traction-force measurements) and sub-cellular signaling information (such as localization data for specific molecular players.) This proposal aims at constructing and validating such a model for endothelial cells. From the mathematics side, the novel element includes embedding all of the aforementioned processes into a moving cell geometry, enabled by the phase-field approach; the latter has shown its relevance in many moving boundary problems in fields ranging from solidification to multiphase fluid flow. Experimental data will be obtained by utilizing state-of-the-art microfluidic devices so as to provide controlled cell environments and will include the measurement of spatial patterns of signaling molecules (location and activation) as well as forces. Model predictions will be tested in a number of different cell lines and in cells subject to a variety of pharamacological treatments.Obtaining a quantitative understanding of cell motility is of importance for many critical biomedical systems, ranging from cancer metastases to inflammatory response to pathogens. Biophysical tools have reached the point where one can obtain high-quality data about various parts of the motility mechanism; for example, we can measure the forces exerted by the cell on the substrate on which it moves. At the same time, advances in computational modeling have shown how to tackle complex problems involving fluid flow and chemical reactions taking place inside a moving domain. Our proposal aims at combining these two capabilities, experimental biophysics and computational modeling to create a quantitative approach to the motion of a specific type of mammalian cell. Once successful, our methodology could be extended to other cell types and to cells moving in more complicated spaces. The eventual payoff would be both an increased fundamental understanding and an increased capability of affecting cell motility, perhaps to prevent cells from a primary tumor from establishing secondary colonies in target tissues.The proposal was submitted in response to the Joint DMS/NIGMS Initiative to Support Research at the Interface of the Biological and Mathematical Sciences. The grant is funded by the Program of Mathematical Biology of the Division of Mathematical Sciences and co-funded by the Program Physics of Living Systems in the Physics Division of NSF.
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DMS/NIGMS 2: Regulation of Cellular Stemness during the Epithelial-Mesenchymal Transition (EMT)
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    2245957
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    Continuing Grant
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    $120.0万
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    1741669
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国内基金
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  • 批准号:
    81224004
  • 项目类别:
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  • 资助金额:
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    徐浩
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Journal of Integrative Plant Biology
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