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DESCRIPTION (provided by applicant): Many diseases (including heart disease, diabetes, cancer, and neurological disorders such as Parkinson's disease) cannot be understood in terms of single-cause/single-effect relationships. This is because although there exist both a depth of knowledge of basic physiology and a host of physiological and genomic data from animal models of disease, we lack an understanding of how multiple genes and environmental factors interact to determine phenotype. We propose to revolutionize our understanding of complex phenotypes and diseases based on systematic multi-scale measurement, simulation, and analysis of physiological function in the rat. Specifically, we propose to initiate The Virtual Physiological Rat Project to develop computational tools to capture the underlying systems physiology as well as the pathophysiological perturbations associated with disease. These tools will be developed and validated based on experimental characterization of physiological function across a number of organ systems in rat strains engineered to show relevant disease phenotypes. Computer simulation will be used to integrate disparate data (genomic, anatomic, physiological, etc.) to explain and predict function, and to translate the findings from animal models to yield new information on specific interrelated complex diseases in humans, including hypertension, kidney disease, heart failure, and metabolic syndrome. The developed multi-scale physiological models will be linked to genotype- phenotype parametric maps to construct a Virtual Physiological Rat resource, which will be used to predict the influence of genetic variability and environmental factors on phenotypes and to predict phenotypes of new strains that will be experimentally derived and characterized. By systematically and iteratively using multi-scale computational models to analyze data, generate hypotheses, design experiments, and predict phenotypes in novel strains of rat, we will attain the capability to predict and understand the emergence of complex traits. In addition to the direct impact of the proposed scientific studies, the VPR Center will be a resource to the broader community by delivering unique software and associated data for cardiovascular systems research. In addition, we will develop courses, workshops, and related educational material, train and recruit scientists from underserved communities, and hold annual scientific meetings for affiliated and nonaffiliated investigators. RELEVANCE: Despite a depth of knowledge of basic cardiovascular physiology, we lack even a rudimentary understanding of how multiple genes and environmental factors interact to determine cardiovascular phenotype. This proposal targets the grand challenge of understanding complex multi-faceted disease phenotypes through experiments and simulations that capture the complex genotype-environment-phenotype relationship.
期刊论文(67)
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DOI: 10.3389/fbioe.2014.00079
发表时间: 2014
期刊: Frontiers in bioengineering and biotechnology
影响因子: 5.7
作者: [Nickerson DP, Ladd D, Hussan JR, Safaei S, Suresh V, Hunter PJ, Bradley CP]
通讯作者: Bradley CP
DOI: 10.1007/s10237-014-0563-y
发表时间: 2014-10
期刊: BIOMECHANICS AND MODELING IN MECHANOBIOLOGY
影响因子: 3.5
作者: [Qureshi, M. Umar, Vaughan, Gareth D. A., Sainsbury, Christopher, Johnson, Martin, Peskin, Charles S., Olufsen, Mette S., Hill, N. A.]
通讯作者: Hill, N. A.
Structural correlation method for model reduction and practical estimation of patient specific parameters illustrated on heart rate regulation.
用于模型简化和实际估计患者特定参数(以心率调节为例)的结构相关方法。
DOI: 10.1016/j.mbs.2014.07.003
发表时间: 2014
期刊: Mathematical biosciences
影响因子: 4.3
作者: [Ottesen,JohnnyT, Mehlsen,Jesper, Olufsen,MetteS]
通讯作者: Olufsen,MetteS
Towards causally cohesive genotype-phenotype modelling for characterization of the soft-tissue mechanics of the heart in normal and pathological geometries.
建立因果内聚的基因型-表型模型,用于表征正常和病理几何形状中心脏的软组织力学。
DOI: 10.1098/rsif.2014.1166
发表时间: 2015
期刊: Journal of the Royal Society, Interface
影响因子: --
作者: [Nordbø,Øyvind, Gjuvsland,ArneB, Nermoen,Anders, Land,Sander, Niederer,Steven, Lamata,Pablo, Lee,Jack, Smith,NicolasP, Omholt,StigW, Vik,JonOlav]
通讯作者: Vik,JonOlav
44
    Systems and Integrative Biology Training Program
    Disentangling the Mechanisms of Coronary Blood Flow Regulation through Multi-scale Modeling
    Computational systems analysis of cardiac mechanical-energetic coupling in heart disease
    Computational systems analysis of cardiac mechanical-energetic coupling in heart disease
    海外基金