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Multiphasic models of cell mechanics
Farshid Guilak
,
Lori A. Setton
, Tod A. Laursen
, Mansoor A. Haider
, Frank P.T. Baaijens
Department of Orthopedic Surgery
Center for the Investigation of Membrane Excitability Diseases
Roy and Diana Vagelos Division of Biology & Biomedical Sciences (DBBS)
Institute of Clinical and Translational Sciences (ICTS)
Bursky Center for Human Immunology & Immunotherapy Programs (CHiiPs)
Division of Basic Research
Center of Regenerative Medicine
Rheumatic Diseases Research Resource-Based Center
DBBS - Molecular Cell Biology
DBBS - Developmental, Regenerative and Stem Cell Biology
DBBS - Immunology
Department of Biomedical Engineering
McKelvey School of Engineering
Hope Center for Neurological Disorders
Research output
:
Chapter in Book/Report/Conference proceeding
›
Chapter
›
peer-review
10
Scopus citations
Overview
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Keyphrases
Mechanical Loading
100%
Cell Mechanics
100%
Mechanical Behavior
100%
Multiphasic Model
100%
Fluid-solid
100%
Relative Contribution
50%
Cell Phenotype
50%
Mechanical Properties
50%
Molecular Components
50%
Physiological Function
50%
Macromolecules
50%
Cell Volume
50%
Volume Change
50%
Living Cells
50%
Mechanical Factors
50%
Mechanical Microenvironment
50%
Human Body
50%
Chemical Injury
50%
Physical Mechanism
50%
Complex Structure
50%
Biomechanical Properties
50%
Osmotic Pressure
50%
Individual Cells
50%
Fluid Flow
50%
Spatially Variable
50%
Osmotic Loading
50%
Water Concentration
50%
Stress-strain
50%
Mechanical Events
50%
Solid-fluid
50%
Hydrated Tissue
50%
Constitutive Law
50%
Biomechanical Behavior
50%
Electrical Event
50%
Rheology
50%
Varying Stress
50%
Biophysical Factors
50%
Cell Viscoelasticity
50%
Two-phase Fluid
50%
Three-phase Fluid
50%
Engineering
Cellular Biomechanics
100%
Phase Fluid
100%
Mechanical Loading
50%
Mechanical Environment
50%
Critical Role
50%
Fluid Flow
50%
Living Cell
50%
Mechanical Factor
50%
Complex Structure
50%
Biomechanical Property
50%
Individual Cell
50%
Physiologic Function
50%
Biomechanical Behavior
50%
Rheology
50%
Viscoelasticity
50%
Material Science
Fluid Flow
100%
Rheology
100%
Viscoelasticity
100%