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Our objective is to identify the metabolites associated with stability of carotid atheromatous plaques compared to vulnerable plaques, through a metabolomic approach. Eighty consecutive patients with carotid artery stenosis (CAS) who underwent carotid endarterectomy (CEA) according to current guidel...
2025-06-06 | MTBLS12303 | MetaboLights

Arterial stiffening is a hallmark of early vascular aging (EVA) syndrome and an independent predictor of cardiovascular morbidity and mortality. In this case-control study we sought to identify plasma metabolites associated with EVA syndrome in the setting of hypertension. An untargeted metabolom...

2020-01-14 | MTBLS1359 | MetaboLights
Pericyte loss is an early and critical event in the pathogenesis of diabetic retinopathy (DR), yet the molecular mechanisms underlying pericyte dysfunction remain incompletely understood. Using single-cell RNA sequencing, we generated a retinal cellular overview comprising 37,982 cells from diabetic...
2026-03-30 | MTBLS14184 | MetaboLights

Pericyte loss is an early and critical event in the pathogenesis of diabetic retinopathy (DR), yet the molecular mechanisms underlying pericyte dysfunction remain incompletely understood. Using single-cell RNA sequencing, we generated a retinal cellular overview comprising 18,926 cells from...

2026-03-27 | MTBLS13544 | MetaboLights
The pathways involved in hierarchical differentiation of human embryonic stem cells (hESC) into abundant and durable endothelial cells (EC) are unknown. We employed an EC-specific VE-cadherin promoter driving GFP (hVPr-GFP) to screen for factors that augmented yields of vascular-committed ECs from h...
ORGANISM(S): Homo sapiens 
UFMylation maintains YAP stability to promote vascular endothelial cell senescence
siRNA-mediated knock-down followed by transcriptomic profiling revealed that silencing of TARBP2 resulted in a significant increase in the stability of sRSE-carrying transcripts. Two independent siRNAs were used to knock down TARBP2 in metastatic MDA-LM2 cells. The cells were then subjected to whole...
ORGANISM(S): Homo sapiens 
Hypercholesterolemia has long been implicated in endothelial cell (EC) dysfunction, but the mechanisms by which excess cholesterol causes vascular pathology are incompletely understood. Here we used a cholesterol-mimetic probe to map cholesterol-protein interactions in primary human ECs and discover...
ORGANISM(S): Homo Sapiens (ncbitaxon:9606) 
CASC15 dictates vascular smooth muscle cell growth fate and pathological vascular remodeling through post-transcription regulation of mitotic fidelity
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