A Validated Micro-Structural Mechanical Model of Coronary Arteries
A Validated Micro-Structural Mechanical Model of Coronary Arteries
批准号:
7528467
负责人:
GHASSAN S KASSAB
金额:
$41.26万
依托单位国家:
美国
项目类别:
财政年份:
2008
资助国家:
美国
项目状态:
已结题
起止时间:
2008-09-01 至 2011-06-30
关键词:
3-DimensionalAccountingAddressAlgorithmsAreaArteriesBehaviorBiological ProcessBiologyBiomechanicsBiomedical EngineeringBlood VesselsCardiovascular systemCellsCellular biologyCollagenCollagen FiberComplexComputational ScienceComputersConditionCoronaryCoronary ArteriosclerosisCoronary arteryDataDiseaseElastinElastin FiberElementsEnvironmentEquationExtracellular MatrixFamily suidaeFiberFibroblastsGoalsHealthHypertensionImaging TechniquesIn SituMeasuresMechanical StressMechanicsMethodsMicroscopicMicroscopyModelingMorbidity - disease rateNIH Program AnnouncementsNon-linear ModelsNumbersPathologyPatientsPersonal SatisfactionPhysiologicalPhysiologyPlayProceduresProcessPropertyPublic HealthPurposeRadialResearchRoleSimulateStressStretchingStructureTechniquesTechnologyTestingTissuesTunica AdventitiaUncertaintyValidationbasecellular imagingcomputer frameworkdata acquisitiondirect applicationfiber cellimage processinginnovationintima mediamortalitymulti-photonmulti-scale modelingresponsesimulation
中文摘要
描述(由申请人提供):机械应力和应变在血管细胞生物学和病理学中的重要性是公认的。血管生理学和病理生理学中的大量问题取决于血管壁的细胞和细胞外基质中的应力和应变。可以测量应变,但不能测量应力。应力的确定需要对组织的机械特性的精确理解;即,我们必须知道血管壁不同层的本构方程。本提案的目的是开发和实验验证猪冠状动脉外膜的微观结构模型。该提案涉及多光子显微镜(MPM),使弹性蛋白和胶原纤维的冠状动脉外膜的机械负荷下,和数值方法,利用现代计算能力来处理复杂的微观结构的几何形状和边界条件的识别。具体目标是:1)在同时加载条件下使用MPM定量冠状动脉外膜中胶原和弹性蛋白纤维的三维微观结构:2)基于目标1中的微观结构数据建立本构模型,并使用直接有限元(FE)模拟进行力学测试;实验验证Aim 2的本构模型,在双轴条件下测量正常和高血压外膜中的纤维和细胞的载荷-变形关系。该方案的主要贡献有三个方面:首先,计算框架将提供冠状动脉结构-功能关系的数学描述,并导致对血管机械响应的新水平的理解。其次,健康和高血压的微观结构及其变形的大量实验数据将丰富对纤维和成纤维细胞力学环境的理解。第三,所提出的计算框架的直接应用将澄清心血管研究中的几个重要假设,如高血压冠状动脉硬度增加的微观结构基础。公共卫生相关性:冠状动脉疾病仍然是美国和世界各地发病率和死亡率的主要原因,特别是在高血压患者中。毫无疑问,机械应力和应变在血管健康和疾病中起着重要作用。该方案的主要贡献是提供了健康和高血压患者冠状动脉结构-功能关系的数学描述,并导致对血管机械响应的新水平的理解。
英文摘要
DESCRIPTION (provided by applicant): The significance of mechanical stresses and strains in vascular cell biology and pathology are well recognized. A large number of problems in vascular physiology and patho- physiology depend on the stresses and strains in the cellular and extracellular matrix of the vessel wall. It is possible to measure the strains but not the stresses. The determination of the stresses requires a precise understanding of the mechanical properties of the tissue; i.e., we must know the constitutive equations for the different layers of the vessel wall. The objective of this proposal is to develop and experimentally validate a microstructural model of the adventitia of swine coronary arteries. The proposal involves Multi-Photon Microscopy (MPM) that enables the identification of elastin and collagen fibers of the coronary arterial adventitia under mechanical loading, and numerical methods that take advantage of modern computational capability to deal with the complex microstructural geometry and boundary conditions. The Specific Aims are: 1) To quantify the 3-D microstructure of collagen and elastin fibers in coronary arterial adventitia using MPM under simultaneous loading conditions; 2) To develop a constitutive model based on the microstructural data in Aim 1 and to perform mechanical test with direct finite element (FE) simulations; and 3) To experimentally validate the constitutive model of Aim 2 with load-deformation relation under biaxial conditions for fibers and cells measured in normal and hypertensive adventitia. The major contributions of this proposal are three fold: First, the computational framework will provide a mathematical description of the structure-function relation of coronary arteries, and result in a new level of understanding of the mechanical response of the blood vessel. Second, the extensive experimental data of the microstructures in health and hypertension and their deformation will enrich the understanding of the mechanical environment of the fibers and fibroblasts. Third, the direct application of the proposed computational framework will clarify several important hypotheses in cardiovascular research, such as the microstructural basis of the increased stiffness of coronary arteries in hypertension. PUBLIC HEALTH RELEVANCE: Coronary artery disease remains a major cause of morbidity and mortality in the U.S. and around the world especially in patients with hypertension. There is no doubt that mechanical stresses and strains play an important role in vessel health and disease. The major contributions of this proposal is to provide a mathematical description of the structure-function relation of coronary arteries in health and hypertension, and result in a new level of understanding of the mechanical response of the blood vessel.
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