Myocyte Shape in Myofibril Patterning and Contraction
Myocyte Shape in Myofibril Patterning and Contraction
批准号:
7775059
负责人:
KEVIN KIT PARKER
金额:
$36.0万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2007
资助国家:
美国
项目状态:
已结题
起止时间:
2007-03-15 至 2012-02-28
关键词:
AddressAdrenergic AgentsAffectArchitectureAreaBundlingCardiacCardiac MyocytesCell ShapeCellsChemicalsCuesCytoskeletonElectric StimulationEmbryonic HeartEngineeringEnvironmentExtracellular MatrixExtracellular Matrix ProteinsFrequenciesGenetic ProgrammingGrowthGrowth FactorHeartHeart failureIslandLengthLightMechanicsMicrofabricationModelingMolecularMorphogenesisMuscle CellsMyofibrillogenesisMyofibrilsNatureOrganogenesisPathogenesisPatientsPatternPerformanceProcessRegulationRelaxationReportingResearchRoleSarcomeresSeriesShapesSignal PathwaySignal TransductionSpatial DistributionStarling (law)StructureSturnus vulgarisTechniquesTechnologyTestingTherapeuticTissuesWorkadrenergicheart functionnovel therapeuticsresearch studyresponserhorho GTP-Binding Proteinsself assembly
中文摘要
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英文摘要
DESCRIPTION (provided by applicant): Developing new therapeutic strategies for treating heart failure is dependent upon identifying molecular signaling pathways within the cardiac myocyte that are vulnerable to therapeutic exploitation. To date, our understanding of the regulators of myocyte contractility has been limited to the Frank-Starling law, the Bowditch effect, and intracellular signaling pathways. Myocyte shape, however, may serve as a distinct signal, capable of activating signaling pathways, genetic programs, and myofibrillar patterning. This proposal will address the role of myocyte shape in myofibrillogenesis and contractility. We propose that changes in myocyte shape can potentiate cytoskeletal architectures and myofibrillar patterning that can regulate contractile performance. To test this hypothesis, we will probe how myocytes respond to changes in myocyte shape and structure as controlled by the geometry of micropatterned islands of extracellular matrix proteins. Preliminary results suggest that the degree of myocyte spreading and the myocyte geometry can regulate the spatial distribution of sarcomeres and their serial and parallel bundling. In Specific Aim 1, using multiple series of geometric islands to specifically vary projected myocyte area, perimeter, aspect ratio, and angular cues we will identify geometric parameters controlling this assembly. We will determine how the cytoskeleton self assembles and how myofibrils pattern in response to these signals and how their rates of assembly and patterning are affected. In Specific Aim 2, we will look at how myocyte shape affects contractile strength, rate, and relaxation. Specific Aim 3 will examine the role of myocyte shape, cytoskeletal architecture, and myofibrillar patterning in the Bowditch effect. Specific Aim 4 examines the role of the small Rho GTPases Rac and Rho on myofibrillogenesis. These experiments will shed light on the role of the cardiac tissue microenvironment on cardiac morphogenesis and pathogenesis.
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DOI:
10.1016/j.biomaterials.2010.03.028
发表时间:
2010-07
期刊:
Biomaterials
影响因子:
14
作者:
[Bray MA, Adams WJ, Geisse NA, Feinberg AW, Sheehy SP, Parker KK]
通讯作者:
Parker KK
The contribution of cellular mechanotransduction to cardiomyocyte form and function.
细胞力转导对心肌细胞形式和功能的贡献。
DOI:
10.1007/s10237-012-0419-2
发表时间:
2012-11
期刊:
BIOMECHANICS AND MODELING IN MECHANOBIOLOGY
影响因子:
3.5
作者:
[Sheehy, Sean P., Grosberg, Anna, Parker, Kevin Kit]
通讯作者:
Parker, Kevin Kit
DOI:
10.1371/journal.pcbi.1004190
发表时间:
2015-04
期刊:
PLoS computational biology
影响因子:
4.3
作者:
[Drew NK, Eagleson MA, Baldo DB Jr, Parker KK, Grosberg A]
通讯作者:
Grosberg A
DOI:
10.1021/nl101355x
发表时间:
2010-06-09
期刊:
Nano letters
影响因子:
10.8
作者:
[Badrossamay MR, McIlwee HA, Goss JA, Parker KK]
通讯作者:
Parker KK
DOI:
10.1177/1535370215583799
发表时间:
2015-11
期刊:
Experimental biology and medicine (Maywood, N.J.)
影响因子:
--
作者:
[Lee H, Adams WJ, Alford PW, McCain ML, Feinberg AW, Sheehy SP, Goss JA, Parker KK]
通讯作者:
Parker KK
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