Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac repair. We have recently discovered the ability of carbon nanotube scaffolds to promote cell division and maturation in cardiomyocytes. Here, we test the hypothesis that carbon nanotube scaffolds promote cardiomyocyte growth and maturation by altering the gene expression program, implementing the cell electrophysiological properties and improving networking and maturation of functional syncytia. In our study, we combine microscopy, biological and electrophysiological methodologies, and calcium imaging, to verify whether neonatal rat ventricular myocytes cultured on substrates of multiwall carbon nanotubes acquire a physiologically more mature...
Myocardial microenvironment plays a decisive role in guiding the function and fate of cardiomyocytes...
Recently, carbon nanotubes together with other types of conductive materials have been used to enhan...
Hongyu Sun,1,* Yongchao Mou,2,* Yi Li,3,* Xia Li,4,* Zi Chen,2 Kayla Duval,2 Zhu Huang,1 Ruiwu Dai,1...
Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac ...
Heart failure is a disease of epidemic proportion and a leading cause of mortality in the world. Bec...
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Heart failure is a disease of epidemic proportion, and is a leading cause of mortality in the world....
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Myocardial infarction (cardiac tissue death) is among the most prevalent causes of death among the c...
6siDue to the unique electrical, mechanical and thermal features of carbon nanotubes (CNTs), several...
The application of nanotechnology to the cardiovascular system has increasingly caught scientists\u2...
Cardiovascular disease (CVD) is the number one global cause of death, accounting for approximately 3...
Carbon nanotubes (CNTs) have appeared in recent years as innovative components for the development o...
Cardiovascular disease is currently the top global cause of death, however, research into new therap...
Myocardial microenvironment plays a decisive role in guiding the function and fate of cardiomyocytes...
Recently, carbon nanotubes together with other types of conductive materials have been used to enhan...
Hongyu Sun,1,* Yongchao Mou,2,* Yi Li,3,* Xia Li,4,* Zi Chen,2 Kayla Duval,2 Zhu Huang,1 Ruiwu Dai,1...
Myocardial tissue engineering currently represents one of the most realistic strategies for cardiac ...
Heart failure is a disease of epidemic proportion and a leading cause of mortality in the world. Bec...
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Heart failure is a disease of epidemic proportion, and is a leading cause of mortality in the world....
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Nanoscale manipulations of the extracellular microenvironment are increasingly attracting attention ...
Myocardial infarction (cardiac tissue death) is among the most prevalent causes of death among the c...
6siDue to the unique electrical, mechanical and thermal features of carbon nanotubes (CNTs), several...
The application of nanotechnology to the cardiovascular system has increasingly caught scientists\u2...
Cardiovascular disease (CVD) is the number one global cause of death, accounting for approximately 3...
Carbon nanotubes (CNTs) have appeared in recent years as innovative components for the development o...
Cardiovascular disease is currently the top global cause of death, however, research into new therap...
Myocardial microenvironment plays a decisive role in guiding the function and fate of cardiomyocytes...
Recently, carbon nanotubes together with other types of conductive materials have been used to enhan...
Hongyu Sun,1,* Yongchao Mou,2,* Yi Li,3,* Xia Li,4,* Zi Chen,2 Kayla Duval,2 Zhu Huang,1 Ruiwu Dai,1...