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CETP damages perivascular fat function in male mice through oxidative stress and inflammation, but preserves it in females (Function (Oxf) 2024)

Original title: Sex-Specific Effects of Cholesteryl Ester Transfer Protein (CETP) on the Perivascular Adipose Tissue

Function (Oxf) · · 6

Lazaro CM, Freitas IN, Nunes VS, Guizoni DM, Victorio JA, Oliveira HCF, Davel AP

A study in transgenic mice expressing human or simian CETP, and their non-transgenic counterparts, examined sex differences in how CETP affects perivascular adipose tissue (PVAT), which normally exerts an anticontractile effect on blood vessels. This anticontractile effect held in non-transgenic males and females and in CETP-expressing females, but was lost in CETP-expressing males. Male CETP-expressing PVAT showed reduced nitric oxide and eNOS activity, oxidative stress with increased NOX1 and NOX2 and decreased SOD2 and SOD3, more inflammatory markers, increased lipid content, higher leptin and reduced Prdm16 (a brown adipocyte marker), consistent with PVAT whitening. NOX inhibition, the antioxidant tempol, and ex vivo oestrogen treatment all restored PVAT function in CETP-expressing males. In females, CETP expression instead increased nitric oxide and eNOS activity and induced an anti-inflammatory phenotype, with increased PVAT cholesterol but decreased lipid content, and the anticontractile function was preserved. A detailed mechanistic finding of sex-specific vascular dysfunction mediated by CETP.

Read the paper (DOI)PubMed

Original abstract

Cholesteryl ester transfer protein (CETP) increases the atherosclerosis risk by lowering HDL-cholesterol levels. It also exhibits tissue-specific effects independent of HDL. However, sexual dimorphism of CETP effects remains largely unexplored. Here, we hypothesized that CETP impacts the perivascular adipose tissue (PVAT) phenotype and function in a sex-specific manner. PVAT function, gene and protein expression, and morphology were examined in male and female transgenic mice expressing human or simian CETP and their non-transgenic counterparts (NTg). PVAT exerted its anticontractile effect in aortas from NTg males, NTg females, and CETP females, but not in CETP males. CETP male PVAT had reduced NO levels, decreased eNOS and phospho-eNOS levels, oxidative stress, increased NOX1 and 2, and decreased SOD2 and 3 expressions. In contrast, CETP-expressing female PVAT displayed increased NO and phospho-eNOS levels with unchanged NOX expression. NOX inhibition and the antioxidant tempol restored PVAT anticontractile function in CETP males. Ex vivo estrogen treatment also restored PVAT function in CETP males. Moreover, CETP males, but not female PVAT, show increased inflammatory markers. PVAT lipid content increased in CETP males but decreased in CETP females, while PVAT cholesterol content increased in CETP females. CETP male PVAT exhibited elevated leptin and reduced Prdm16 (brown adipocyte marker) expression. These findings highlight CETP sex-specific impact on PVAT. In males, CETP impaired PVAT anticontractile function, accompanied by oxidative stress, inflammation, and whitening. Conversely, in females, CETP expression increased NO levels, induced an anti-inflammatory phenotype, and preserved the anticontractile function. This study reveals sex-specific vascular dysfunction mediated by CETP.

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Summary written by cetpinhibition.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.