This subproject is one of many research subprojects utilizing the resources provided by a Center grant funded by NIH/NCRR. The subproject and investigator (PI) may have received primary funding from another NIH source, and thus could be represented in other CRISP entries. The institution listed is for the Center, which is not necessarily the institution for the investigator. The heart is a complex three-dimensional structure in which the biophysics of the cardiac action potential and the mechanics of muscle cell contraction interact to produce efficiently coordinated ventricular pumping.
The aim of this research is to develop and experimentally validate an accurate three-dimensional model of regional cardiac mechanics and electrophysiology and their mutual interactions. Three-dimensional finite element (FE) models of the heart are being developed that include accurate descriptions of ventricular anatomy and myofiber architecture, the resting and contractile mechanical properties of myocardium, and the cellular dynamics of action potential propagation. To analyze the biological basis of electromechanical interactions in the intact heart, theoretical models of cardiac excitation-contraction coupling and mechanoelectric feedback will be incorporated into the continuum framework. The coupled models involve large-scale computations and are being implemented on the parallel supercomputers using novel algorithms that by exploiting the structural parallelism of the underlying physical problem. These models will be used to investigate basic questions such as how stretch-activated ion channels affect conduction patterns in the intact heart, and how altered pacing sequences affect ventricular pumping efficiency. In summary, the goals of this project are: * To implement a parallel continuum model of coupled cardiac mechanics and electrophysiology * To develop computational framework to integrate cellular properties to the tissue and organ levels * To investigate ventricular mechanoelectric feedback in anatomically accurate simulations and in an experimental model

Agency
National Institute of Health (NIH)
Institute
National Center for Research Resources (NCRR)
Type
Biotechnology Resource Grants (P41)
Project #
5P41RR008605-13
Application #
7358655
Study Section
Special Emphasis Panel (ZRG1-SSS-9 (40))
Project Start
2006-05-01
Project End
2007-04-30
Budget Start
2006-05-01
Budget End
2007-04-30
Support Year
13
Fiscal Year
2006
Total Cost
$117,912
Indirect Cost
Name
University of California San Diego
Department
Anatomy/Cell Biology
Type
Schools of Arts and Sciences
DUNS #
804355790
City
La Jolla
State
CA
Country
United States
Zip Code
92093
Pantoja, Joe Luis; Morgan, Ashley E; Grossi, Eugene A et al. (2017) Undersized Mitral Annuloplasty Increases Strain in the Proximal Lateral Left Ventricular Wall. Ann Thorac Surg 103:820-827
Morgan, Ashley E; Wozniak, Curtis J; Gulati, Sarthak et al. (2017) Association of Uneven MitraClip Application and Leaflet Stress in a Finite Element Model. JAMA Surg 152:111-114
Morgan, Ashley E; Pantoja, Joe L; Grossi, Eugene A et al. (2016) Neochord placement versus triangular resection in mitral valve repair: A finite element model. J Surg Res 206:98-105
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Ebeida, Mohamed S; Rushdi, Ahmad A; Awad, Muhammad A et al. (2016) Disk Density Tuning of a Maximal Random Packing. Comput Graph Forum 35:259-269
Yang, Pei-Chi; Boras, Britton W; Jeng, Mao-Tsuen et al. (2016) A Computational Modeling and Simulation Approach to Investigate Mechanisms of Subcellular cAMP Compartmentation. PLoS Comput Biol 12:e1005005
Watson, Shana R; Liu, Piaomu; Peña, Edsel A et al. (2016) Comparison of Aortic Collagen Fiber Angle Distribution in Mouse Models of Atherosclerosis Using Second-Harmonic Generation (SHG) Microscopy. Microsc Microanal 22:55-62
Ge, Liang; Wu, Yife; Soleimani, Mehrdad et al. (2016) Moderate Ischemic Mitral Regurgitation After Posterolateral Myocardial Infarction in Sheep Alters Left Ventricular Shear but Not Normal Strain in the Infarct and Infarct Borderzone. Ann Thorac Surg 101:1691-9
Morgan, Ashley E; Pantoja, Joe Luis; Weinsaft, Jonathan et al. (2016) Finite Element Modeling of Mitral Valve Repair. J Biomech Eng 138:021009

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