In the last two decades lab-on-chip models, specifically heart-on-chip, have been developed as promising technologies for recapitulating physiological environments suitable for studies of drug and environmental effects on either human physiological or patho-physiological conditions. Most human heart-on-chip systems are based on integration and adaptation of terminally differentiated cells within microfluidic context. This process requires prolonged procedures, multiple steps, and is associated with an intrinsic variability of cardiac differentiation. In this view, we developed a method for cardiac differentiation-on-a-chip based on combining the stage-specific regulation of Wnt/β-catenin signaling with the forced expression of transcription...
International audienceThe evolution of micro and nanofabrication approaches significantly spurred th...
Cardiovascular disease (CVD) caused by anti-cancer drug-induced cardiotoxicity is now the second lea...
Microengineering human \u201corgans-on-chips\u201d remains an open challenge. Here, we describe a ro...
In the last two decades lab-on-chip models, specifically heart-on-chip, have been developed as promi...
In the past few years, microfluidic-based technology has developed microscale models recapitulating ...
The lack of a fully developed human cardiac model in vitro hampers the progress of many biomedical r...
Heart-on-chip is an unprecedented technology for recapitulating key biochemical and biophysical cues...
Cardiovascular disorders remain a critical health issue worldwide. While animals have been used exte...
Genome editing on human pluripotent stem cells (hPSCs) together with the development of protocols fo...
AbstractCardiomyocytes (CMs) derived from human pluripotent stem cells (hPSCs) offer immense value i...
Drug discovery and development to date has relied on animal models, which are useful, but fail to re...
To advance drug discovery for cardiovascular patients, new pre-clinical models and quantification me...
Access to robust and information-rich human cardiac tissue models would accelerate drug-based strate...
Access to robust and information-rich human cardiac tissue models would accelerate drug-based strate...
Generation of human cardiomyocytes (CMs), cardiac fibroblasts (CFs), and endothelial cells (ECs) fro...
International audienceThe evolution of micro and nanofabrication approaches significantly spurred th...
Cardiovascular disease (CVD) caused by anti-cancer drug-induced cardiotoxicity is now the second lea...
Microengineering human \u201corgans-on-chips\u201d remains an open challenge. Here, we describe a ro...
In the last two decades lab-on-chip models, specifically heart-on-chip, have been developed as promi...
In the past few years, microfluidic-based technology has developed microscale models recapitulating ...
The lack of a fully developed human cardiac model in vitro hampers the progress of many biomedical r...
Heart-on-chip is an unprecedented technology for recapitulating key biochemical and biophysical cues...
Cardiovascular disorders remain a critical health issue worldwide. While animals have been used exte...
Genome editing on human pluripotent stem cells (hPSCs) together with the development of protocols fo...
AbstractCardiomyocytes (CMs) derived from human pluripotent stem cells (hPSCs) offer immense value i...
Drug discovery and development to date has relied on animal models, which are useful, but fail to re...
To advance drug discovery for cardiovascular patients, new pre-clinical models and quantification me...
Access to robust and information-rich human cardiac tissue models would accelerate drug-based strate...
Access to robust and information-rich human cardiac tissue models would accelerate drug-based strate...
Generation of human cardiomyocytes (CMs), cardiac fibroblasts (CFs), and endothelial cells (ECs) fro...
International audienceThe evolution of micro and nanofabrication approaches significantly spurred th...
Cardiovascular disease (CVD) caused by anti-cancer drug-induced cardiotoxicity is now the second lea...
Microengineering human \u201corgans-on-chips\u201d remains an open challenge. Here, we describe a ro...