Collagen, a triple-helical, self-organizing protein, is the predominant structural protein in mammals. It is found in bone, ligament, tendon, cartilage, intervertebral disc, skin, blood vessel, and cornea. We have recently postulated that fibrillar collagens (and their complementary enzymes) comprise the basis of a smart structural system which appears to support the retention of molecules in fibrils which are under tensile mechanical strain. The theory suggests that the mechanisms which drive the preferential accumulation of collagen in loaded tissue operate at the molecular level and are not solely cell-driven. The concept reduces control of matrix morphology to an interaction between molecules and the most relevant, physical, and persist...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Collagen cleavage, facilitated by collagenases of the matrix metalloproteinase (MMP) family, is cruc...
Tendon is one of the most commonly injured musculoskeletal tissues. Developing methods for regenerat...
SummaryBackgroundCollagen, the most abundant human protein, is the principal component of the extrac...
\u3cp\u3eCollagen fibre remodelling is a strain dependent process which is stimulated by the degrada...
echanical strain plays a crucial role in bone remodeling during growth and development and healing o...
AbstractThis study investigates how the collagen fiber structure influences the enzymatic degradatio...
Collagenases are the principal enzymes responsible for the degradation of collagens during embryonic...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
AbstractCollagen, a molecule consisting of three braided protein helices, is the primary building bl...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Collagen cleavage, facilitated by collagenases of the matrix metalloproteinase (MMP) family, is cruc...
Tendon is one of the most commonly injured musculoskeletal tissues. Developing methods for regenerat...
SummaryBackgroundCollagen, the most abundant human protein, is the principal component of the extrac...
\u3cp\u3eCollagen fibre remodelling is a strain dependent process which is stimulated by the degrada...
echanical strain plays a crucial role in bone remodeling during growth and development and healing o...
AbstractThis study investigates how the collagen fiber structure influences the enzymatic degradatio...
Collagenases are the principal enzymes responsible for the degradation of collagens during embryonic...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
AbstractCollagen, a molecule consisting of three braided protein helices, is the primary building bl...
Full understanding of strain-induced collagen organization in complex tissue geometries to create ti...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...