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Biology subjects

Situ, A.

Publications and source records attributed to Situ, A..

2 recordsLinked to original sources

Metabolic Reprogramming of the Neovascular Niche Promotes Regenerative Angiogenesis in Proliferative Retinopathy

Healthy blood vessels supply neurons to preserve metabolic function. In blinding ischemic proliferative retinopathies (PRs), pathological neovascular tufts often emerge in lieu of needed physiological neuroretina revascularization. We show that metabolic shifts in the neurovascular niche define this angiogenic dichotomy between healthy and diseased blood vessel growth. Fatty acid oxidation (FAO) metabolites accumulated in human and murine retinopathy samples. Neovascular tufts with a distinct single-cell transcriptional signature highly expressed FAO enzymes. The deletion of Sirt3, an FAO regulator, shifted the neurovascular niche metabolism from FAO to glycolysis and suppressed tuft formation. This metabolic transition increased Vegf expression in astrocytes and reprogrammed pathological EC to a physiological phenotype, hastening vascular regeneration of the ischemic retina. Our findings identify SIRT3 as a metabolic switch in the neurovascular niche, offering a new therapeutic target for optimizing ischemic tissue revascularization. HighlightsO_LIPathological EC favor FAO over glycolysis. C_LIO_LIUnique signature for pathological EC found in proliferative retinopathy model. C_LIO_LISirt3 deletion shifts astrocytes and EC metabolism from FAO to glycolysis. C_LIO_LIMetabolic reprogramming of the vascular niche enhances physiological revascularization. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=83 SRC="FIGDIR/small/566898v1_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@70020eorg.highwire.dtl.DTLVardef@19719acorg.highwire.dtl.DTLVardef@1168ddeorg.highwire.dtl.DTLVardef@1bc25e0_HPS_FORMAT_FIGEXP M_FIG C_FIG

cell biology↗

Emergence of disease specific endothelial and stromal cell populations involved in arterial remodeling during development of pulmonary arterial hypertension

AbstractPulmonary arterial hypertension (PAH) is a severe and lethal pulmonary vascular disease characterized by arteriolar pruning and occlusive vascular remodeling leading to increased pulmonary vascular resistance and eventually right heart failure. While endothelial cell (EC) injury and apoptosis are known triggers for this disease, the mechanisms by which they lead to complex arterial remodeling remain obscure. We employed multiplexed single-cell RNA sequencing (scRNA-seq) at multiple timepoints during the onset and progression of disease in a model of severe PAH to identify mechanisms involved in the development of occlusive arterial lesions. There was significant loss of arterial volume as early as 1-week by microCT, preceding any evidence of occlusive arteriopathy, consistent with early arteriolar dropout. Maximal arterial pruning was seen by 5 to 8 weeks, with signs of progressive occlusive remodeling. Analysis of the scRNA-seq data resolved 44 lung cell populations, with widespread early transcriptomic changes at 1 week affecting endothelial, stromal and immune cell populations. Notably, this included emergence of a relatively dedifferentiated (dD) EC population that was enriched for Cd74 expression compared to general capillary (gCap) ECs which were primed to undergo endothelial-mesenchymal transition, as evidenced by RNA velocity analysis. However, at late timepoints (5 and 8 weeks), activated arterial ECs (aAECs) were the only cell population exhibiting persistent differential gene expression. This was characterized by a growth regulated state, including high expression of Tm4sf1, a gene implicated in cancer cell growth, which was also expressed by a smooth muscle (SM)-like pericyte cluster. Both these populations were localized to regions of arterial remodeling in the rat model and PAH patients, with aAECs contributing to intimal occlusive lesions and SM-like pericytes forming bands of medial muscularization. Together these findings implicate disease-specific vascular cells in PAH progression and suggest that TM4SF1 may be a novel therapeutic target for arterial remodeling.

molecular biology↗