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DESCRIPTION (provided by applicant): The flow of liquid on mucosal surfaces is ubiquitous in human physiology. The failure of cilia and airflow induced liquid flow in the lungs (mucus clearance), as in Cystic Fibrosis, primary cilia dyskinesis, and environmentally damaged lungs, leads to severe health problems as the lung tissue will be destroyed by infections that cannot be cleared. Significant progress has been made in recent years in identifying the key genetic mutation responsible for Cystic Fibrosis, studying the hydrodynamics and biochemistry of airway mucus and beginning to develop effective treatments. In parallel, theory and simulation have begun to tackle issues such as the basis for force production in biological molecules, the rheology of biological fluids and hydrodynamics of viscous, complex flows. We stand at a critical time when an understanding of biological systems assembled into a unified simulation is essential for making breakthroughs in the science of microbiological hydrodynamics. The approach of this project is to develop sophisticated physics-based models of polymer dynamics and viscoelastic hydrodynamics in close coordination with experiments in human bronchial epithelial cell cultures. Through a combination of established and advanced techniques, the project will develop an integrated view of the biophysics of the mucus clearance system from the molecular scale seen by signaling molecules and viruses, up to the millimeter scales that control flow. By combining a team of researchers from Applied Mathematics, Chemistry, Physics and Astronomy, Biochemistry and Biophysics, and the Cystic Fibrosis Center, the long term goal is to develop an integrated computational model that will be able to predict and evaluate truly effective therapeutic strategies. The challenge in developing this comprehensive approach is to proceed through a series of research goals that accomplish short range impact.
期刊论文(19)
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会议论文
DOI: 10.1137/070695186
发表时间: 2009
期刊: SIAM journal on applied mathematics
影响因子: 1.9
作者: [Fricks J, Yao L, Elston TC, Gregory Forest AM]
通讯作者: Gregory Forest AM
Spatial Stress and Strain Distributions of Viscoelastic Layers in Oscillatory Shear.
振荡剪切中粘弹性层的空间应力和应变分布。
DOI: 10.1016/j.matcom.2010.07.031
发表时间: 2012
期刊: Mathematics and computers in simulation
影响因子: 4.6
作者: [Lindley,BrandonS, Forest,MGregory, Smith,BreannanD, Mitran,SorinM, Hill,DavidB]
通讯作者: Hill,DavidB
Two-bead microrheology: modeling protocols.
二珠微流变学:建模协议。
DOI: 10.1103/physreve.78.031501
发表时间: 2008
期刊: Physical review. E, Statistical, nonlinear, and soft matter physics
影响因子: --
作者: [Hohenegger,Christel, Forest,MGregory]
通讯作者: Forest,MGregory
Continuum-kinetic-microscopic model of lung clearance due to core-annular fluid entrainment.
由于核心-环形液体夹带而产生的肺间隙的连续动力学微观模型。
DOI: 10.1016/j.jcp.2013.01.037
发表时间: 2013
期刊: Journal of computational physics
影响因子: 4.1
作者: [Mitran,Sorin]
通讯作者: Mitran,Sorin
14
    Microactuated Rheometer for Point of Care Coagulopathy Applications
    Microactuated Rheometer for Point of Care Coagulopathy Applications
    Array Microscope Assay for Cancer Cell Mechanics
    Array Microscope Assay for Cancer Cell Mechanics
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    海外基金
    Science China-Physics, Mechanics & Astronomy