Obesogenic diet disrupts tissue-specific mitochondrial gene signatures in the artery and capillary endothelium

脂肪组织 生物 内分泌学 内科学 PRDM16 脂肪组织巨噬细胞 内皮 白色脂肪组织 医学
作者
Luke S. Dunaway,Melissa A. Luse,Shruthi Nyshadham,Gamze B. Bulut,Gabriel F. Alencar,Nicholas W. Chavkin,Miriam M. Cortese‐Krott,Karen K. Hirschi,Brant E. Isakson
出处
期刊:Physiological Genomics [American Physical Society]
卷期号:56 (2): 113-127 被引量:2
标识
DOI:10.1152/physiolgenomics.00109.2023
摘要

Endothelial cells (ECs) adapt to the unique needs of their resident tissue and metabolic perturbations, such as obesity. We sought to understand how obesity affects EC metabolic phenotypes, specifically mitochondrial gene expression. We investigated the mesenteric and adipose endothelium because these vascular beds have distinct roles in lipid homeostasis. Initially, we performed bulk RNA sequencing on ECs from mouse adipose and mesenteric vasculatures after a normal chow (NC) diet or high-fat diet (HFD) and found higher mitochondrial gene expression in adipose ECs compared with mesenteric ECs in both NC and HFD mice. Next, we performed single-cell RNA sequencing and categorized ECs as arterial, capillary, venous, or lymphatic. We found mitochondrial genes to be enriched in adipose compared with mesentery under NC conditions in artery and capillary ECs. After HFD, these genes were decreased in adipose ECs, becoming like mesenteric ECs. Transcription factor analysis revealed that peroxisome proliferator-activated receptor-γ (PPAR-γ) had high specificity in NC adipose artery and capillary ECs. These findings were recapitulated in single-nuclei RNA-sequencing data from human visceral adipose. The sum of these findings suggests that mesenteric and adipose arterial ECs metabolize lipids differently, and the transcriptional phenotype of the vascular beds converges in obesity due to downregulation of PPAR-γ in adipose artery and capillary ECs.

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