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Traver, D.

Publications and source records attributed to Traver, D..

2 recordsLinked to original sources

EGFR confers exquisite specificity of Wnt9a-Fzd9b signaling in hematopoietic stem cell development

The mechanisms of Wnt-Frizzled (Fzd) signaling selectivity and their biological implications remain unclear. We demonstrate for the first time that the epidermal growth factor receptor (EGFR) is required as a co-factor for Wnt signaling. Using genetic studies in zebrafish, paired with in vitro cell biology and biochemistry, we have determined that Fzd9b signals specifically with Wnt9a in vivo and in vitro to elicit {beta}-catenin dependent Wnt signals that regulate hematopoietic stem and progenitor cell (HSPC) development in the dorsal aorta. This requirement is conserved in the derivation of HSPCs from human embryonic stem cells. Wnt9a-Fzd9b specificity requires two intracellular domains in Fzd9b, which interact with EGFR as a required co-factor to promote signal transduction. EGFR phosphorylates one tyrosine residue on Fzd9b, a requirement for the Wnt signal. These findings indicate that Wnt signaling interactions can be exquisitely specific and inform protocols for derivation of HSPCs in vitro.\n\nHighlightsO_LIAn in vitro signaling screen identifies Fzd9b as a Wnt9a-specific receptor.\nC_LIO_LIFzd9b and Wnt9a regulate hematopoietic stem cell development as a cognate pair.\nC_LIO_LIWNT9A and FZD9 are required for HSPC derivation from human pluripotent cells in vitro.\nC_LIO_LIEGFR confers specificity to Wnt9a-Fzd9b signaling in zebrafish and human cells.\nC_LI

developmental biology

Blood flow directs arterial-venous remodeling through Notch activation and endothelial cell migration

Arteries and veins are formed independently by different types of endothelial cells (ECs). In vascular remodeling, arteries and veins become connected and some arteries become veins. It is unclear how ECs in transforming vessels change their type and how fates of individual vessels are determined. In embryonic trunk, vascular remodeling transforms arterial intersegmental vessels (ISVs) into a functional network of arteries and veins. We found that, once an ISV is connected to venous circulation, venous blood flow promotes upstream migration of ECs that results in displacement of arterial ECs by venous ECs, completing the transformation of this ISV into a vein without trans-differentiation of ECs. Arterial blood flow initiated in two neighboring ISVs prevents their transformation into veins by activating Notch signaling in ECs. Together, different responses of ECs to arterial and venous blood flow lead to the formation of a balanced network with equal numbers of arteries and veins.

developmental biology