
Simulated Microgravity Impairs Cardiac Autonomic Neurogenesis from Neural Crest…
Microgravity-induced alterations in the autonomic nervous system (ANS) contribute to derangements in both the mechanical and electrophysiological function of the cardiovascular system, leading to severe symptoms in humans following space travel. Because the ANS forms embryonically from neural crest (NC) progenitors, we hypothesized that microgravity can impair NC-derived cardiac structures. Read more “Simulated Microgravity Impairs Cardiac Autonomic Neurogenesis from Neural Crest Cells”