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Updated: Feb 17, 2026

Cholesterol Efflux Assay
Published on: March 6, 2012
3-Hydroxystearic acid promotes cholesterol efflux and attenuates atherosclerosis via the ALKBH5/PAX-8/ABCA1 pathway
Qin-Yi Zhou1, Wang Liu2, Zhen-Wang Zhao3
1Key Laboratory for Arteriosclerology of Hunan Province, Institute of Cardiovascular Disease, Department of Cardiology, The Affiliated Nanhua Hospital, Hengyang Medical School, University of South China, Hengyang, Hunan, China.
Insights
Gut microbiota metabolite 3-Hydroxystearic acid (C18-3OH) enhances cholesterol efflux in foam cells by regulating the ALKBH5/PAX-8/ABCA1 pathway. This finding offers new therapeutic strategies for atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Metabolomics
- Gut Microbiome Research
Background:
- Atherosclerosis pathogenesis involves macrophage lipid accumulation and foam cell formation.
- The role of gut microbiota metabolites like 3-Hydroxystearic acid (C18-3OH) in atherosclerosis is largely unknown.
- Understanding novel regulatory pathways is crucial for developing effective treatments.
Purpose of the Study:
- To investigate the role of 3-Hydroxystearic acid (C18-3OH) in regulating macrophage cholesterol efflux.
- To elucidate the involvement of the ALKBH5/PAX-8/ABCA1 pathway in C18-3OH-mediated effects on atherosclerosis.
- To explore novel mechanisms of ABCA1 regulation via m6A modification.
Main Methods:
- Gene and protein expression analyzed using RT-qPCR and Western blotting.
- ChIP-Seq and ChIP-qPCR identified PAX-8 target genes and binding to ABCA1.
- Metabolomic analysis and m6A modification assays (MeRIP-qPCR) were performed.
- Atherosclerotic mouse models were used to assess plaque development and lipid profiles.
Main Results:
- C18-3OH promoted cholesterol efflux and reduced lipid accumulation in foam cells by upregulating ABCA1.
- C18-3OH inhibited ALKBH5, increased PAX-8 mRNA m6A modification, leading to elevated PAX-8 and ABCA1 expression.
- Reduced C18-3OH levels were observed in atherosclerotic mice; C18-3OH administration improved lipid metabolism and reduced plaque area.
Conclusions:
- Gut microbiota-derived C18-3OH plays a protective role in atherosclerosis by enhancing cholesterol efflux via the ALKBH5/PAX-8/ABCA1 pathway.
- This study reveals a novel mechanism of ABCA1 regulation involving m6A modification of PAX-8.
- C18-3OH presents a potential therapeutic target for atherosclerosis prevention and treatment.
Introduction:
Atherosclerosis can trigger various cardiovascular and cerebrovascular diseases with complex pathogenesis. Macrophage proliferation, inflammatory responses, and lipid phagocytosis, which induce foam cell formation and accumulation, are critical in the development of early atherosclerotic lesions. The role of 3-Hydroxystearic acid (C18-3OH), a recently identified gut microbiota-derived metabolite, in atherosclerosis has not yet been clarified. This study aimed to investigate the role of the ALKBH5/PAX-8/ABCA1 pathway in C18-3OH-mediated regulation of macrophage cholesterol efflux and atherosclerosis and explore novel mechanisms of ABCA1 regulation from the perspective of m6A modification.
Methods:
RT-qPCR and Western blotting were used to detect gene and protein expression, respectively. ChIP-Seq was used to screen PAX-8 target genes, and ChIP-qPCR was used to validate PAX-8 binding to ABCA1. The SRAMP platform was used to predict m6A modification sites in PAX-8 mRNA sequences. Methylated RNA immunoprecipitation-qPCR (MeRIP-qPCR) was used to measure m6A modification levels of PAX-8 mRNA in foam cells. UHPLC-OEMS untargeted metabolomics were used to analyze differential fatty acid metabolites in an atherosclerotic mouse model. Specific kits were used to detect serum liver function markers (aspartate transaminase, AST; alanine aminotransferase, ALT), renal function markers (serum creatinine, Scr; blood urea nitrogen, BUN), and lipid profiles (HDL-C, TG, LDL-C, TC). Aortic sinus sections were prepared, and H&E, Oil Red O, and Masson staining were used to evaluate atherosclerotic plaques.
Results:
The results demonstrated that C18-3OH promoted cholesterol efflux in foam cells and alleviated lipid accumulation by upregulating ABCA1 expression. C18-3OH inhibited ALKBH5, increased PAX-8 mRNA m6A modification and PAX-8 expression, and upregulated ABCA1 to enhance cholesterol efflux. Serum metabolomics revealed reduced C18-3OH levels in high-fat diet-fed apoE-/- atherosclerotic mice. C18-3OH suppressed aortic ALKBH5 expression, elevated m6A modification of PAX-8 mRNA, and increased PAX-8 and ABCA1 expression. Furthermore, C18-3OH improved lipid metabolism and reduced the atherosclerotic plaque area in apoE-/- mice.
Discussion:
This study clarifies the impact and mechanisms of gut microbiota-derived C18-3OH on atherosclerosis progression, providing novel strategies for the precise prevention and treatment of atherosclerosis.
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