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Tuning the elasticity of biopolymer gels for optimal wound healing
Penelope C. Georges
, Margaret McCormick
, Lisa A. Flanagan
, Yo El Ju
, Evelyn Sawyer
, Paul A. Janmey
Research output
:
Chapter in Book/Report/Conference proceeding
›
Conference contribution
4
Link opens in a new tab
Scopus citations
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Dive into the research topics of 'Tuning the elasticity of biopolymer gels for optimal wound healing'. Together they form a unique fingerprint.
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Keyphrases
Wound Healing
100%
Stiffness
100%
Biopolymer Gels
100%
Fibrin
60%
Astrocytes
40%
Platelets
40%
Cell Function
20%
Soft Polymer
20%
Rigid Substrate
20%
Morphological Changes
20%
Rat Brain
20%
Endothelial Cells
20%
Brain Cells
20%
Protein Expression
20%
Adhesion Complex
20%
Fibroblasts
20%
Protein Phosphorylation
20%
Fibroblast Cells
20%
Mechanical Characteristics
20%
Neutrophils
20%
Phosphorylation State
20%
Glial Cell Type
20%
Melanoma Cells
20%
Neural Tissue
20%
Integrin
20%
Polyacrylamide Gel
20%
Protein Assembly
20%
Cytoskeletal Proteins
20%
Animal Cells
20%
Cellular Structure
20%
Substrate Stiffness
20%
Natural Biopolymer
20%
Stiffness Increase
20%
Mesh Size
20%
Polymer Network
20%
Nonlinear Rheology
20%
Linear Elasticity
20%
Cell Patterning
20%
Cell Switching
20%
Neuronal Cell Survival
20%
Large Mesh
20%
Rigid Surface
20%
Semiflexible Biopolymer
20%
Strain Stiffening
20%
Stiffness Sensing
20%
Engineering
Biopolymer
100%
Platelet
66%
Rheology
33%
Natural Biopolymers
33%
Mesh Size
33%
Network Polymer
33%
Morphologic
33%
Linear Elasticity
33%
Neutrophil
33%
Larger Mesh
33%
Rigid Surface
33%
Adhesion Complex
33%
Dependent Stiffness
33%
Material Science
Elasticity
100%
Biopolymer
100%
Surface (Surface Science)
50%
Fibroblast
50%
Platelet
50%
Morphology
25%
Rheology
25%
Polymer Network
25%
Integrin
25%
Protein Phosphorylation
25%