cell-matrix interactions; differentiation; stiffness; tethering; polydimethyl siloxane; polyacrylamide Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Recently, it has been proposed that in addition to matrix stiffness and ligand type, the degree of coupling of fibrous protein to the surface of the underlying substrate, i.e. tethering and matrix porosity, also regulates stem cell differentiation. By modulating substrate porosity without altering stiffness in polyacrylamide gels, we show that varying substrate porosity did not significantly change protein tethering, substrate deformations, or the osteogenic and adipogenic differentiation of human adipose-derived stromal cells and marrow-derive...
Introduction: Fibrin-matrices of different stiffness can be used for tissue engineering. The differe...
Stem cell fate has been linked to the mechanical properties of their underlying substrate, affecting...
Biochemical and biomechanical extracellular matrix (ECM) cues have recently been shown to play a rol...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
The ability of cells to interact with their surrounding extracellular matrix plays an important role...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
Stem cells are capable of sensing and responding to the mechanical properties of extracellular matri...
The mechanical properties of the extracellular matrix (ECM) can exert significant influence in deter...
Introduction: Fibrin-matrices of different stiffness can be used for tissue engineering. The differe...
Introduction: Fibrin-matrices of different stiffness can be used for tissue engineering. The differe...
Stem cell fate has been linked to the mechanical properties of their underlying substrate, affecting...
Biochemical and biomechanical extracellular matrix (ECM) cues have recently been shown to play a rol...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
Stem cells regulate their fate by binding to, and contracting against, the extracellular matrix. Rec...
The ability of cells to interact with their surrounding extracellular matrix plays an important role...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
To investigate how substrate properties influence stem-cell fate, we cultured single human epidermal...
Stem cells are capable of sensing and responding to the mechanical properties of extracellular matri...
The mechanical properties of the extracellular matrix (ECM) can exert significant influence in deter...
Introduction: Fibrin-matrices of different stiffness can be used for tissue engineering. The differe...
Introduction: Fibrin-matrices of different stiffness can be used for tissue engineering. The differe...
Stem cell fate has been linked to the mechanical properties of their underlying substrate, affecting...
Biochemical and biomechanical extracellular matrix (ECM) cues have recently been shown to play a rol...