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Nandadasa, S.

Publications and source records attributed to Nandadasa, S..

2 recordsLinked to original sources

Vascular dimorphism ensured by regulated proteoglycan dynamics favors rapid umbilical artery closure at birth

The umbilical artery lumen occludes rapidly at birth, preventing blood loss, whereas the umbilical vein remains patent, providing the newborn with a placental infusion. Here, we identify differential arterial-venous proteoglycan dynamics as a determinant of these contrasting vascular responses. We show that the umbilical artery, unlike the vein, has an inner layer enriched in the hydrated proteoglycan aggrecan, external to which lie contraction-primed smooth muscle cells (SMC). At birth, SMC contraction drives inner layer buckling and centripetal displacement to occlude the arterial lumen, a mechanism elicited by biomechanical and computational analysis. Vascular dimorphism arises from spatially regulated proteoglycan expression and breakdown in umbilical vessels. Mice lacking aggrecan or the metalloprotease ADAMTS1, which degrades proteoglycans, demonstrated their opposing roles in umbilical cord arterial-venous dimorphism and contrasting effects on SMC differentiation. Umbilical vessel dimorphism is conserved in mammals, suggesting that their differential proteoglycan dynamics were a positive selection step in mammalian evolution.Competing Interest StatementThe authors have declared no competing interest.View Full Text

developmental biology↗

The versican-hyaluronan complex provides an essential extracellular matrix niche for Flk1+ precursors in vasculogenesis and primitive hematopoiesis

Little is known about extracellular matrix (ECM) contributions to formation of the earliest cell lineages in the embryo. Here, we show that the proteoglycan versican and glycosaminoglycan hyaluronan are associated with emerging Flk1+ hematoendothelial progenitors at gastrulation. The mouse versican mutant Vcanhdf lacks yolk sac vasculature, with attenuated yolk sac hematopoiesis. CRISPR/Cas9-mediated Vcan inactivation in mouse embryonic stem cells reduced vascular endothelial and hematopoietic differentiation in embryoid bodies, which generated fewer blood colonies, and had an impaired angiogenic response to VEGF165. HA was severely depleted in Vcanhdf embryos, with corresponding increase in the HA-depolymerase TMEM2. Conversely, HA-deficient mouse embryos also had vasculogenic suppression but with increased versican proteolysis. VEGF165 and Indian hedgehog, crucial vasculogenic factors, utilized the versican-HA matrix, specifically versican chondroitin sulfate chains, for binding. Versican-HA ECM is an obligate requirement for vasculogenesis and primitive hematopoiesis, acts as an vasculogenic factor-enriching microniche for Flk1+ progenitors from their origin at gastrulation.

developmental biology↗