Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and consequently do not meet in vivo mechanical demands. To optimize tissue architecture and hence improve mechanical properties, various in vitro mechanical conditioning protocols have been proposed, of which intermittent straining is most promising in terms of tissue properties. We hypothesize that this is due to an improved collagen matrix synthesis, maturation, and organization, triggered by periodic straining of cells. To test this hypothesis, we studied the effect of intermittent versus constrained conditioning with time (2–4 weeks), using a novel model system of human heart valve tissue. Temporal variations in collagen production, cross-link d...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Clinically available heart valve replacements consist of non-living materials, lacking the ability t...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Clinically available heart valve replacements consist of non-living materials, lacking the ability t...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Tissue-engineered heart valves lack sufficient amounts of functionally organized structures and cons...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Mechanical conditioning is often used to enhance collagen synthesis, remodeling and maturation and, ...
Clinically available heart valve replacements consist of non-living materials, lacking the ability t...
Similar to native cardiovascular tissues, the mechanical properties of engineered cardiovascular con...