Environmental stiffness is a crucial determinant of cell function. There is a long-standing quest for reproducible and (human matrix) bio-mimicking biomaterials with controllable mechanical properties to unravel the relationship between stiffness and cell behavior. Here, we evaluate methacrylated human recombinant collagen peptide (RCPhC1-MA) hydrogels as a matrix to control 3D microenvironmental stiffness and monitor cardiac cell response. We show that RCPhC1-MA can form hydrogels with reproducible stiffness in the range of human developmental and adult myocardium. Cardiomyocytes (hPSC-CMs) and cardiac fibroblasts (cFBs) remain viable for up to 14 days inside RCPhC1-MA hydrogels while the effect of hydrogel stiffness on extracellular matri...
Human pluripotent stem cell (hPSC-) derived cardiomyocytes have potential applications in drug disco...
Cellular microenvironment has played a critical role in cell behavior regulation, natural tissue for...
Biomaterials to be used as cell delivery systems for cardiac tissue engineering should be able to co...
Environmental stiffness is a crucial determinant of cell function. There is a long-standing quest fo...
Tissue-specific elastic modulus (E), or 'stiffness,' arises from developmental changes in the extrac...
In vitro maturation of cardiomyocytes in 3D is essential for the development of viable cardiac model...
Biomaterials to be used as cell delivery systems for cardiac tissue engineering should be able to co...
Human mesenchymal stem cells (hMSCs) hold great promise in cardiac fibrosis therapy, due to their po...
Strain stiffening of extracellular matrices is increasingly recognized as a mechanical mechanism to ...
Pathophysiological conditions, such as myocardial infarction and mechanical overload affect the mamm...
Cardiomyocyte and stroma cell cross-talk is essential for the formation of collagen-based engineered...
Cardiovascular disease is often associated with cardiac remodeling, including cardiac fibrosis, whic...
Cell-cell interactions between cardiomyocytes (CMs) are crucial to the structure and function of hea...
Cell behavior is controlled not only by chemical signals but also by mechanical cues from their envi...
Extracellular matrix (ECM) structure, composition, and stiffness have profound effects on tissue dev...
Human pluripotent stem cell (hPSC-) derived cardiomyocytes have potential applications in drug disco...
Cellular microenvironment has played a critical role in cell behavior regulation, natural tissue for...
Biomaterials to be used as cell delivery systems for cardiac tissue engineering should be able to co...
Environmental stiffness is a crucial determinant of cell function. There is a long-standing quest fo...
Tissue-specific elastic modulus (E), or 'stiffness,' arises from developmental changes in the extrac...
In vitro maturation of cardiomyocytes in 3D is essential for the development of viable cardiac model...
Biomaterials to be used as cell delivery systems for cardiac tissue engineering should be able to co...
Human mesenchymal stem cells (hMSCs) hold great promise in cardiac fibrosis therapy, due to their po...
Strain stiffening of extracellular matrices is increasingly recognized as a mechanical mechanism to ...
Pathophysiological conditions, such as myocardial infarction and mechanical overload affect the mamm...
Cardiomyocyte and stroma cell cross-talk is essential for the formation of collagen-based engineered...
Cardiovascular disease is often associated with cardiac remodeling, including cardiac fibrosis, whic...
Cell-cell interactions between cardiomyocytes (CMs) are crucial to the structure and function of hea...
Cell behavior is controlled not only by chemical signals but also by mechanical cues from their envi...
Extracellular matrix (ECM) structure, composition, and stiffness have profound effects on tissue dev...
Human pluripotent stem cell (hPSC-) derived cardiomyocytes have potential applications in drug disco...
Cellular microenvironment has played a critical role in cell behavior regulation, natural tissue for...
Biomaterials to be used as cell delivery systems for cardiac tissue engineering should be able to co...