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Zarkada, G.

Publications and source records attributed to Zarkada, G..

3 recordsLinked to original sources

Endothelial beta-arrestins Regulate Mechanotransduction by the Type II Bone Morphogenetic Protein Receptor in Primary Cilia

RationaleModulation of endothelial cell behavior and phenotype by hemodynamic forces involves many signaling components, including cell surface receptors, intracellular signaling intermediaries, transcription factors, and epigenetic elements. Many of the signaling mechanisms that underlie mechanotransduction by endothelial cells are inadequately defined. ObjectiveWe sought to better understand how {beta}-arrestins, intracellular proteins that regulate agonist-mediated desensitization and integration of signaling by transmembrane receptors, may be involved in the endothelial cell response to shear stress. Methods and ResultsIn vitro studies with primary endothelial cells subjected to {beta}-arrestin knockdown, and in vivo studies using mice with endothelial specific deletion of {beta}-arrestin 1 and {beta}-arrestin 2 were conducted. We found that {beta}-arrestins are localized to primary cilia in endothelial cells, which are present in subpopulations of endothelial cells in relatively low shear states. Recruitment of {beta}-arrestins to cilia involved its interaction with IFT81, a component of the flagellar transport protein complex in the cilia. {beta}-arrestin knockdown led to marked reduction in shear stress response, including induction of NOS3 expression. Within the cilia, {beta}-arrestins were found to associate with the type II bone morphogenetic protein receptor (BMPR-II), whose disruption similarly led to an impaired endothelial shear response. {beta}-arrestins also regulated Smad transcription factor phosphorylation by BMPR-II. Mice with endothelial specific deletion of {beta}-arrestin 1 and {beta}-arrestin 2 were found to have impaired retinal angiogenesis. ConclusionWe have identified a novel role for endothelial {beta}-arrestins as key transducers of ciliary mechanotransduction that play a central role in shear signaling by BMPR-II and contribute to vascular development. NOVELTY AND SIGNIFICANCE What Is Known?O_LIEndothelial cells respond to flow-induced shear stress with biochemical changes, such as phosphorylation of endothelial nitric oxide synthase, that promote morphological changes, such as cell alignment. C_LIO_LIThe endothelial response to shear stress can involve primary cilia, microtubule-based sensory organelles that detect extracellular stimuli and generates intracellular signals. C_LIO_LIThe specific ciliary signaling pathways that regulate endothelial mechanotransduction have not been fully elucidated. C_LI What New Information Does This Article Contribute?O_LI{beta}-arrestins directly interact with the ciliary protein intraflagellar transport protein 81 (IFT81), which is present in the primary cilia of endothelial cells, and are required for the morphological response to flow-induced shear stress. C_LIO_LI{beta}-arrestins regulates type II bone morphogenetic protein receptor signaling, which is required for the endothelial response to shear stress, and is required for the phosphorylation of Smad transcription factors. C_LIO_LI{beta}-arrestins are required for endothelial nitric oxide synthase-mediated flow-induced shear stress response in endothelial cells. C_LIO_LIEndothelial cell-specific knockout of {beta}-arrestins results in abnormal vascular development, with a loss of vessel length and branchpoints. C_LI

molecular biology↗

Competition for endothelial cell polarity drives vascular morphogenesis

Blood vessel formation generates unique vascular patterns in each individual. The principles governing the apparent stochasticity of this process remain to be elucidated. Using mathematical methods, we find that the transition between two fundamental vascular morphogenetic programs - sprouting angiogenesis and vascular remodeling - is established by a shift on collective front-rear polarity of endothelial cells. We demonstrate that the competition between biochemical (VEGFA) and mechanical (blood flow-induced shear stress) cues controls this collective polarity shift. Shear stress increases tension at focal adhesions overriding VEGFA-driven collective polarization, which relies on tension at adherens junctions. We propose that vascular morphogenetic cues compete to regulate individual cell polarity and migration through tension shifts that translates into tissue-level emergent behaviors, ultimately leading to uniquely organized vascular patterns.

developmental biology↗

Activation of Smad 2/3 signaling by low shear stress mediates artery inward remodeling

RationaleBlood vessel remodeling in response to changes in tissue demand is an important aspect of fitness and is often compromised in vascular disease. Endothelial cell (EC) sensing of fluid shear stress (FSS) governs vessel remodeling to maintain FSS at a specific magnitude or set point in healthy vessels.\n\nObjectiveThe purpose of this study was to understand how shear stress-regulated Smad 2/3 contributes to artery remodeling.\n\nMethods and ResultsWe found that shear stress induces Smad 2/3 phosphorylation, nuclear translocation, and gene expression in ECs. Nuclear translocation and gene expression are maximal at low and decrease at high FSS. Reducing flow in the mouse carotid by ligation of branch vessels induces Smad2 nuclear localization in vivo. Activation of Smad 2/3 by FSS requires the Type I TGF{beta} family receptor Alk5 and the transmembrane protein Neuropilin-1. Flow activation of Smad 2/3 is mediated by increased sensitivity to BMP9 but not BMP10 or TGF{beta}. By contrast, flow activation of Smad 1/5 is maximal at physiological FSS and requires BMP9 or 10 binding to Alk1 and Endoglin. EC-specific deletion of Alk5 in mice blocks low flow-induced inward remodeling after carotid ligation.\n\nConclusionsTogether, these data elucidate a novel pathway that mediates low flow-induced inward artery remodeling. These results may be relevant to inward remodeling in diseased vessels where Smad 2/3 is activated by pathological stimuli.

cell biology↗