The major limitation of current engineered myocardial patches for the repair of heart defects is that insulating polymeric scaffold walls hinder the transfer of electrical signals between cardiomyocytes. This loss in signal transduction results in arrhythmias when the scaffolds are implanted. We report that small, subtoxic concentrations of single-walled carbon nanotubes, on the order of tens of parts per million, incorporated in a gelatin–chitosan hydrogel act as electrical nanobridges between cardiomyocytes, resulting in enhanced electrical coupling, synchronous beating, and cardiomyocyte function. These engineered tissues achieve excitation conduction velocities similar to native myocardial tissue (22 ± 9 cm/s) and could function as a fu...
WOS: 000339035000009PubMed ID: 24927679In the past few years, a considerable amount of effort has be...
Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac ...
Cardiovascular disease is currently the top global cause of death, however, research into new therap...
The major limitation of current engineered myocardial patches for the repair of heart defects is tha...
Recently, carbon nanotubes together with other types of conductive materials have been used to enhan...
We engineered functional cardiac patches by seeding neonatal rat cardiomyocytes onto carbon nanotube...
Myocardial infarction (cardiac tissue death) is among the most prevalent causes of death among the c...
In the past few years, a considerable amount of effort has been devoted toward the development of bi...
Carbon nanotubes (CNTs) have appeared in recent years as innovative components for the development o...
Fabrication of appropriate electro-conductive scaffold, application of small molecules (SMs), electr...
Scaffolds derived from decellularized cardiac tissue offer an enormous advantage for cardiac applica...
Cardiovascular disease (CVD) is the number one global cause of death, accounting for approximately 3...
Introduction Therapies for substrate-related arrhythmias include ablation or drugs targeted at alter...
Ischaemic heart diseases are the leading causes of morbidity around the world and pose serious socio...
6siDue to the unique electrical, mechanical and thermal features of carbon nanotubes (CNTs), several...
WOS: 000339035000009PubMed ID: 24927679In the past few years, a considerable amount of effort has be...
Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac ...
Cardiovascular disease is currently the top global cause of death, however, research into new therap...
The major limitation of current engineered myocardial patches for the repair of heart defects is tha...
Recently, carbon nanotubes together with other types of conductive materials have been used to enhan...
We engineered functional cardiac patches by seeding neonatal rat cardiomyocytes onto carbon nanotube...
Myocardial infarction (cardiac tissue death) is among the most prevalent causes of death among the c...
In the past few years, a considerable amount of effort has been devoted toward the development of bi...
Carbon nanotubes (CNTs) have appeared in recent years as innovative components for the development o...
Fabrication of appropriate electro-conductive scaffold, application of small molecules (SMs), electr...
Scaffolds derived from decellularized cardiac tissue offer an enormous advantage for cardiac applica...
Cardiovascular disease (CVD) is the number one global cause of death, accounting for approximately 3...
Introduction Therapies for substrate-related arrhythmias include ablation or drugs targeted at alter...
Ischaemic heart diseases are the leading causes of morbidity around the world and pose serious socio...
6siDue to the unique electrical, mechanical and thermal features of carbon nanotubes (CNTs), several...
WOS: 000339035000009PubMed ID: 24927679In the past few years, a considerable amount of effort has be...
Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac ...
Cardiovascular disease is currently the top global cause of death, however, research into new therap...