Literature DB >> 35642564

Endothelial Cells Induced Progenitors Into Brown Fat to Reduce Atherosclerosis.

Kyoungmin Park1,2, Qian Li1,2, Matthew D Lynes2, Hisashi Yokomizo1,2, Ernesto Maddaloni1, Takanori Shinjo1,2, Ronald St-Louis1,2, Qin Li1,2, Sayaka Katagiri1, Jialin Fu1,2, Allen Clermont2, Hyunseok Park1,2, I-Hsien Wu1,2, Marc Gregory Yu1,2, Hetal Shah1,2, Yu-Hua Tseng2, George L King1,2.   

Abstract

BACKGROUND: Insulin resistance (IR) can increase atherosclerotic and cardiovascular risk by inducing endothelial dysfunction, decreasing nitric oxide (NO) production, and accelerating arterial inflammation. The aim is to determine the mechanism by which insulin action and NO production in endothelial cells can improve systemic bioenergetics and decrease atherosclerosis via differentiation of perivascular progenitor cells (PPCs) into brown adipocytes (BAT).
METHODS: Studies used various endothelial transgenic and deletion mutant ApoE-/- mice of insulin receptors, eNOS (endothelial NO synthase) and ETBR (endothelin receptor type B) receptors for assessments of atherosclerosis. Cells were isolated from perivascular fat and micro-vessels for studies on differentiation and signaling mechanisms in responses to NO, insulin, and lipokines from BAT.
RESULTS: Enhancing insulin's actions on endothelial cells and NO production in ECIRS1 transgenic mice reduced body weight and increased systemic energy expenditure and BAT mass and activity by inducing differentiation of PPCs into beige/BAT even with high-fat diet. However, positive changes in bioenergetics, BAT differentiation from PPCs and weight loss were inhibited by N(gamma)-nitro-L-arginine methyl ester (L-NAME), an inhibitor of eNOS, in ECIRS1 mice and eNOSKO mice. The mechanism mediating NO's action on PPC differentiation into BAT was identified as the activation of solubilized guanylate cyclase/PKGIα (cGMP protein-dependent kinase Iα)/GSK3β (glycogen synthase kinase 3β) pathways. Plasma lipidomics from ECIRS1 mice with NO-induced increased BAT mass revealed elevated 12,13-diHOME production. Infusion of 12,13-diHOME improved endothelial dysfunction and decreased atherosclerosis, whereas its reduction had opposite effects in ApoE-/-mice.
CONCLUSIONS: Activation of eNOS and endothelial cells by insulin enhanced the differentiation of PPC to BAT and its lipokines and improved systemic bioenergetics and atherosclerosis, suggesting that endothelial dysfunction is a major contributor of energy disequilibrium in obesity.

Entities:  

Keywords:  adipose tissue, brown; atherosclerosis; diabetes mellitus, type 2; insulin resistance; obesity; vascular endothelial cells

Mesh:

Substances:

Year:  2022        PMID: 35642564      PMCID: PMC9308716          DOI: 10.1161/CIRCRESAHA.121.319582

Source DB:  PubMed          Journal:  Circ Res        ISSN: 0009-7330            Impact factor:   23.213


  44 in total

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Review 9.  Selective Insulin Resistance and the Development of Cardiovascular Diseases in Diabetes: The 2015 Edwin Bierman Award Lecture.

Authors:  George L King; Kyoungmin Park; Qian Li
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10.  Inorganic nitrate promotes the browning of white adipose tissue through the nitrate-nitrite-nitric oxide pathway.

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