Elucidating the Role of Mechanosensitive Signaling in Mediating Cell-Biomaterial Interactions
Elucidating the Role of Mechanosensitive Signaling in Mediating Cell-Biomaterial Interactions
批准号:
9338238
负责人:
Brenton D Hoffman
金额:
$18.6万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2016
资助国家:
美国
项目状态:
已结题
起止时间:
2016-09-01 至 2018-06-30
关键词:
ActinsActomyosinAlpha CellAreaBehaviorBiochemicalBiocompatible MaterialsBiomaterials ResearchBiosensorCell Differentiation processCell ShapeCell SizeCell physiologyCellsComplexCuesCytoskeletonDefectDetectionDevelopmentDiseaseEngineeringEnvironmentExtracellular MatrixExtracellular Matrix ProteinsExtracellular ProteinFibrosisFocal AdhesionsFoundationsGoalsInstructionKnowledgeLeadLinkMalignant NeoplasmsMeasuresMechanicsMediatingMethodsMissionMolecularNatureOutputPatternProcessPropertyProteinsReportingResearchRoleSignal PathwaySignal TransductionStem cellsStimulusStructureSurfaceSystemSystems BiologySystems DevelopmentTestingTissuesTranslatingUnited States National Institutes of HealthVariantVinculinWorkbasebiomaterial interfacecell behaviorclinical applicationdesignexperienceextracellularfunctional outcomesimprovedin vivomechanical forcemechanical loadmechanical propertiesmechanotransductionnovelresponsescaffoldstem
中文摘要
从根本上讲,生物材料研究的进步是由诱导所需细胞的能力推动的
通过开发具有指导性的生物材料表面的行为。新型生物材料的合理设计
要成功地操纵细胞针对特定功能的行为,需要识别
指导性线索和对这些线索如何改变细胞功能的机械理解。然而,
确定特定的线索组合,以诱导一组精确的细胞行为,从而导致
可预测的功能结果仍然具有挑战性。这一挑战源于对
细胞用来检测和响应环境线索的机制,特别是物理线索,如
限制细胞形状或细胞外环境的僵硬。通过以下方式检测物理线索
机械转导,一种鲜为人知的过程,细胞通过它将物理刺激转化为
生物化学检测到的信号。机械转导研究的最新进展已经分离出一个关键
粘着斑蛋白vinculin的作用,它是机械连接中的一个重要环节
细胞外环境和产生力量的肌动蛋白细胞骨架。这项提案旨在评估
细胞通过感知细胞-生物材料界面物理性质的不同变化的假说
纽蛋白的不同机械负荷,导致细胞信号通路的激活。具体来说,我们将
研究细胞形状、细胞大小和细胞外蛋白对力敏感信号激活的影响。这个
拟议的工作与NIH的使命相关,因为它将增加对细胞如何
感知并对周围环境的物质方面做出反应。这将为以下方面的进展奠定基础
生物材料设计以及帮助了解与物理缺陷相关的疾病状态的努力
细胞环境的性质,如癌症和过度的组织纤维化。
英文摘要
At a fundamental level, advances in biomaterials research are driven by the ability to elicit desired cell
behaviors through the development of instructive biomaterial surfaces. Rational design of novel biomaterials
that can successfully manipulate cell behavior toward a specific function requires both identification of
instructive cues and a mechanistic understanding of how these cues alter cellular function. However,
determining the specific combination of cues to induce a precise set of cellular behaviors leading to a
predictable functional outcome remains challenging. The challenge stems from an incomplete understanding of
the mechanisms used by cells to detect and respond to environmental cues, particularly physical cues such as
confinement of cell shape or stiffness of the extracellular environment. Physical cues are detected through
mechanotransduction, a poorly understood process through which cells convert physical stimuli into
biochemically detectable signals. Recent advances in the study of mechanotransduction have isolated a key
role for the focal adhesion protein vinculin, an important linkage in the mechanical connections between the
extracellular environment and the force-generating actin cytoskeleton. This proposal seeks to evaluate the
hypothesis that cells sense diverse changes in the physical nature of the cell-biomaterial interface through
distinct mechanical loading of vinculin, leading to the activation of cell signaling pathways. Specifically, we will
study the effects of cell shape, cell size, and extracellular proteins on force-sensitive signal activation. The
proposed work is relevant to the mission of NIH as it will increase the fundamental understanding of how cells
sense and respond to the physical aspects of their surroundings. This will lay the foundation for advances in
biomaterials design as well as aid efforts to understand disease states associated with defects in the physical
nature of the cellular environment, such as cancer and excessive tissue fibrosis.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
2020-2022 Biomedical Engineering Society (BMES) Cellular and Molecular (CMBE) Conference
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批准号:9912654
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项目类别:
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资助金额:$1.8万
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财政年份:2019
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负责人:Brenton D Hoffman
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依托单位:
Mechanotransduction in Multicellular Systems
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批准号:10320429
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项目类别:
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资助金额:$30.36万
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财政年份:2018
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负责人:Brenton D Hoffman
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依托单位:
国内基金
海外基金
由actomyosin介导的集体性细胞迁移对唇腭裂发生的影响的研究
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批准号:82360313
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项目类别:地区科学基金项目
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资助金额:32万元
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批准年份:2023
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负责人:滕藤
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依托单位: