Heart valve tissue engineering based on decellularized xenogenic or allogenic starter matrices has shown promising first clinical results. However, the availability of healthy homologous donor valves is limited and xenogenic materials are associated with infectious and immunologic risks. To address such limitations, biodegradable synthetic materials have been successfully used for the creation of living autologous tissue-engineered heart valves (TEHVs) in vitro. Since these classical tissue engineering technologies necessitate substantial infrastructure and logistics, we recently introduced decellularized TEHVs (dTEHVs), based on biodegradable synthetic materials and vascular-derived cells, and successfully created a potential off-the-shelf...
Background: Heart valve tissue engineering represents a concept for improving the current methods of...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...
Heart valve tissue engineering based on decellularized xenogenic or allogenic starter matrices has s...
Decellularized xenogenic or allogenic heart valves have been used as starter matrix for tissue-engin...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
The quest for the ideal heart valve replacement is ongoing as current substitutes, such as mechanica...
The creation of a living heart valve is a much-wanted alternative for current valve prostheses that ...
A tissue engineered heart valve (TEHV) could serve as a living, implantable valve replacement that w...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
Current research on valvular heart repair has focused on tissue-engineered heart valves (TEHV) becau...
Background: Heart valve tissue engineering represents a concept for improving the current methods of...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...
Heart valve tissue engineering based on decellularized xenogenic or allogenic starter matrices has s...
Decellularized xenogenic or allogenic heart valves have been used as starter matrix for tissue-engin...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
The quest for the ideal heart valve replacement is ongoing as current substitutes, such as mechanica...
The creation of a living heart valve is a much-wanted alternative for current valve prostheses that ...
A tissue engineered heart valve (TEHV) could serve as a living, implantable valve replacement that w...
Tissue-engineered heart valves are proposed as novel viable replacements granting longer durability ...
Current research on valvular heart repair has focused on tissue-engineered heart valves (TEHV) becau...
Background: Heart valve tissue engineering represents a concept for improving the current methods of...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...
In situ heart valve tissue engineering using cell-free synthetic, biodegradable scaffolds is under d...