In situ tissue engineering that uses resorbable synthetic heart valve scaffolds is an affordable and practical approach for heart valve replacement; therefore, it is attractive for clinical use. This study showed no consistent collagen organization in the predefined direction of electrospun scaffolds made from a resorbable supramolecular elastomer with random or circumferentially aligned fibers, after 12 months of implantation in sheep. These unexpected findings and the observed intervalvular variability highlight the need for a mechanistic understanding of the long-term in situ remodeling processes in large animal models to improve predictability of outcome toward robust and safe clinical application
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...
Creating autologous tissues with on-demand and native-like biomechanical properties is the ultimate ...
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...
In situ tissue engineering that uses resorbable synthetic heart valve scaffolds is an affordable and...
The creation of a living heart valve is a much-wanted alternative for current valve prostheses that ...
Introduction:In situ tissue engineering (TE) of heart valves uses readily available acellular synthe...
Background: Decellularized tissue-engineered heart valves (TEHVs) are under investigation as alterna...
Pliable microfibrous, bioresorbable elastomeric heart valve prostheses are investigated in search of...
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...
Creating autologous tissues with on-demand and native-like biomechanical properties is the ultimate ...
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...
In situ tissue engineering that uses resorbable synthetic heart valve scaffolds is an affordable and...
The creation of a living heart valve is a much-wanted alternative for current valve prostheses that ...
Introduction:In situ tissue engineering (TE) of heart valves uses readily available acellular synthe...
Background: Decellularized tissue-engineered heart valves (TEHVs) are under investigation as alterna...
Pliable microfibrous, bioresorbable elastomeric heart valve prostheses are investigated in search of...
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...
Creating autologous tissues with on-demand and native-like biomechanical properties is the ultimate ...
Objectives This study sought to evaluate long-term in vivo functionality, host cell repopulation, an...