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Nitzsche, A.

Publications and source records attributed to Nitzsche, A..

2 recordsLinked to original sources

Paladin is a PI(4,5)P2 phosphoinositide phosphatase that regulates endosomal signaling and angiogenesis

Cell signaling governs cellular behavior and is therefore subject to tight spatiotemporal regulation. Signaling output is regulated by specialized cell membranes and vesicles which contain unique combinations of lipids and proteins. The phospholipid phosphatidylinositol 4,5-bisphosphate, (PI(4,5)P2), an important component of the plasma membrane as well as other subcellular membranes, is involved in multiple processes, including signaling. However, which enzymes drive the formation and degradation of non-plasma membrane PI(4,5)P2, and their impact on cell signaling and function at the organismal level are unknown. Here we show in a mouse model that Paladin is a vascular PI(4,5)P2 phosphatase that regulates endosomal signaling and angiogenesis. Paladin was localized to the endosomal and Golgi compartments, and interacted with vascular endothelial growth factor receptor 2 (VEGFR2) in vitro and in vivo. Loss of Paladin resulted in increased internalization of the receptor, over-activation of extracellular regulated kinase, and hypersprouting of endothelial cells in the developing retina of mice. These findings suggest that inhibition of Paladin, or other endosomal PI(4,5)P2 phosphatases, could be exploited to modulate VEGFR2 signaling and angiogenesis, when direct and full inhibition of the receptor is not desirable.

cell biology

Sphingosine 1-phosphate-regulated transcriptomes in heterogenous arterial and lymphatic endothelium of the aorta

Despite the medical importance of G protein-coupled receptors (GPCRs), in vivo cellular heterogeneity of GPCR signaling and downstream transcriptional responses are not understood. We report the comprehensive characterization of transcriptomes (bulk and single-cell) and chromatin domains regulated by sphingosine 1-phosphate receptor-1 (S1PR1) in adult mouse aortic endothelial cells. First, S1PR1 regulates NFkB and nuclear glucocorticoid receptor pathways to suppress inflammation-related mRNAs. Second, spatially distinct S1PR1 signaling in the aorta is associated with heterogenous endothelial cell (EC) subtypes. For example, a transcriptomically distinct arterial EC population at vascular branch points (aEC1) exhibits ligand- independent S1PR1/{beta}-arrestin coupling. In contrast, circulatory S1P-dependent S1PR1/{beta}-arrestin coupling was observed in non-branch point aEC2 cells that exhibit an inflammatory signature. Moreover, an adventitial lymphatic EC (LEC) population shows suppression of lymphangiogenic and inflammation-related transcripts in a S1P/S1PR1-dependent manner. These insights add resolution to existing concepts of GPCR signaling and S1P biology.

molecular biology