We study the micromechanics of collagen-I gel with the goal of bridging the gap between theory and experiment in the study of biopolymer networks. Three-dimensional images of fluorescently labeled collagen are obtained by confocal microscopy, and the network geometry is extracted using a 3D network skeletonization algorithm. Each fiber is modeled as an elastic beam that resists stretching and bending, and each crosslink is modeled as torsional spring. The stress–strain curves of networks at three different densities are compared with rheology measurements. The model shows good agreement with experiment, confirming that strain stiffening of collagen can be explained entirely by geometric realignment of the network, as opposed to entropic sti...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
We study the micromechanics of collagen-I gel with the goal of bridging the gap between theory and e...
We study the micromechanics of collagen-I gel with the goal of bridging the gap between theory and e...
The collagen-I gel is extensively used as a scaffold material in tissue engineering due to its abili...
The geometric structure of a biopolymer network impacts its mechanical and biological properties. In...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
AbstractWe investigate the system size-dependent rheological response of branched type I collagen ge...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
Collagen hydrogels are widely used for in-vitro experiments and tissue engineering applications. The...
Collagen forms fibrous networks that reinforce tissues and provide an extracellular matrix for cells...
The mechanical properties of type I collagen gel vary due to different polymerization parameters. In...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
We study the micromechanics of collagen-I gel with the goal of bridging the gap between theory and e...
We study the micromechanics of collagen-I gel with the goal of bridging the gap between theory and e...
The collagen-I gel is extensively used as a scaffold material in tissue engineering due to its abili...
The geometric structure of a biopolymer network impacts its mechanical and biological properties. In...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
AbstractWe investigate the system size-dependent rheological response of branched type I collagen ge...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
Extracellular matrix (ECM) strongly influences cellular behaviors, including cell proliferation, adh...
Collagen hydrogels are widely used for in-vitro experiments and tissue engineering applications. The...
Collagen forms fibrous networks that reinforce tissues and provide an extracellular matrix for cells...
The mechanical properties of type I collagen gel vary due to different polymerization parameters. In...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...
Collagen networks, the main structural/mechanical elements in biological tissues, increasingly serve...