The vascular system is one of the first to develop during embryogenesis and is essential for all organs and tissues in our body to develop and function. It has many essential roles including controlling the absorption, distribution and excretion of compounds and therefore determines the pharmacokinetics of drugs and therapeutics. Vascular homeostasis is under tight physiological control which is essential for maintaining tissues in a healthy state. Consequently, disruption of vascular homeostasis plays an integral role in many disease processes, making cells of the vessel wall attractive targets for therapeutic intervention. Experimental models of blood vessels can therefore contribute significantly to drug development and aid in predicting...
Microphysiological systems (MPS), or "organ-on-a-chip" platforms, aim to recapitulate in vivo physio...
Cardiovascular diseases (CVDs) are the number one cause of death worldwide. The majority of CVD-rela...
The success of therapeutic vascularization and tissue engineering (TE) will rely on our ability to c...
The vascular system is one of the first to develop during embryogenesis and is essential for all org...
Microphysiological systems (MPSs) (i.e., tissue or organ chips) exploit microfluidics and 3D cell cu...
Blood vessel models are increasingly recognized to have value in understanding disease and drug disc...
Organs-on-chips are microengineered in vitro tissue structures that can be used as platforms for phy...
Crosstalk between endothelial cells (ECs) and pericytes or vascular smooth muscle cells (VSMCs) is e...
Blood vessel models are increasingly recognized to have value in understanding disease and drug disc...
Current biomedical models fail to replicate the complexity of human biology. Consequently, almost 90...
The human body employs a tube-like system calledblood vessels for transporting molecules such as o...
Drug discovery and development to date has relied on animal models, which are useful, but fail to re...
Abstract Kidney organoids derived from human induced pluripotent stem cells (iPSCs) have proven to b...
© The Royal Society of Chemistry 2021. Human organoids, self-organized and differentiated from homog...
Recent advances in human pluripotent stem cell (hPSC) biology enable derivation of essentially any c...
Microphysiological systems (MPS), or "organ-on-a-chip" platforms, aim to recapitulate in vivo physio...
Cardiovascular diseases (CVDs) are the number one cause of death worldwide. The majority of CVD-rela...
The success of therapeutic vascularization and tissue engineering (TE) will rely on our ability to c...
The vascular system is one of the first to develop during embryogenesis and is essential for all org...
Microphysiological systems (MPSs) (i.e., tissue or organ chips) exploit microfluidics and 3D cell cu...
Blood vessel models are increasingly recognized to have value in understanding disease and drug disc...
Organs-on-chips are microengineered in vitro tissue structures that can be used as platforms for phy...
Crosstalk between endothelial cells (ECs) and pericytes or vascular smooth muscle cells (VSMCs) is e...
Blood vessel models are increasingly recognized to have value in understanding disease and drug disc...
Current biomedical models fail to replicate the complexity of human biology. Consequently, almost 90...
The human body employs a tube-like system calledblood vessels for transporting molecules such as o...
Drug discovery and development to date has relied on animal models, which are useful, but fail to re...
Abstract Kidney organoids derived from human induced pluripotent stem cells (iPSCs) have proven to b...
© The Royal Society of Chemistry 2021. Human organoids, self-organized and differentiated from homog...
Recent advances in human pluripotent stem cell (hPSC) biology enable derivation of essentially any c...
Microphysiological systems (MPS), or "organ-on-a-chip" platforms, aim to recapitulate in vivo physio...
Cardiovascular diseases (CVDs) are the number one cause of death worldwide. The majority of CVD-rela...
The success of therapeutic vascularization and tissue engineering (TE) will rely on our ability to c...