Related Experiment Video
Updated: Sep 27, 2025

Cholesterol Efflux Assay
Published on: March 6, 2012
Cholesterol and HIF-1α: Dangerous Liaisons in Atherosclerosis
Charles Thomas1,2,3, Damien Leleu1,2,3,4, David Masson1,2,3,4
1Univ. Bourgogne Franche-Comté, LNC UMR1231, Dijon, France.
Insights
Hypoxia-inducible factor 1-alpha (HIF-1α) has a dual role in atherosclerosis. Its stabilization by lipids in macrophages promotes inflammation and cholesterol buildup, contributing to disease progression.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Atherosclerosis Research
Background:
- HIF-1α plays complex roles in atherosclerosis, influenced by cell type and microenvironment.
- Atheromatous plaques feature hypoxic conditions and lipid accumulation, promoting HIF-1α stabilization.
- Macrophage exposure to oxidized LDLs (oxLDLs) and oxysterols triggers HIF-1α-dependent pathways.
Purpose of the Study:
- To elucidate the intricate mechanisms of HIF-1α activation in atherosclerosis.
- To investigate the impact of HIF-1α on macrophage lipid metabolism and inflammatory responses.
- To explore the therapeutic potential of targeting HIF-1α pathways in atherosclerosis.
Main Methods:
- Investigated oxLDL and oxysterol-induced stabilization of HIF-1α in macrophages.
- Examined the role of toll-like receptor and NADPH oxidase signaling in HIF-1α activation.
- Assessed the effect of liver X receptor activation on HIF-1α transcriptional activity.
- Analyzed HIF-1α's influence on cholesterol and triglyceride homeostasis in macrophages.
Main Results:
- OxLDLs and oxysterols stabilize HIF-1α in macrophages via TLR and NADPH oxidase pathways.
- HIF-1α activation increases macrophage uptake and synthesis of lipids, impairing cholesterol efflux.
- HIF-1α signaling reciprocally enhances oxysterol-mediated inflammatory responses.
Conclusions:
- HIF-1α's role in macrophage cholesterol homeostasis and oxysterol-induced inflammation is detrimental in atherosclerosis.
- Targeting HIF-1α activation mechanisms within plaques offers a promising therapeutic avenue.
- Further research into HIF-1α regulation in atheroma is crucial for novel treatment development.
Abstract:
HIF-1α exerts both detrimental and beneficial actions in atherosclerosis. While there is evidence that HIF-1α could be pro-atherogenic within the atheromatous plaque, experimental models of atherosclerosis suggest a more complex role that depends on the cell type expressing HIF-1α. In atheroma plaques, HIF-1α is stabilized by local hypoxic conditions and by the lipid microenvironment. Macrophage exposure to oxidized LDLs (oxLDLs) or to necrotic plaque debris enriched with oxysterols induces HIF-1α -dependent pathways. Moreover, HIF-1α is involved in many oxLDL-induced effects in macrophages including inflammatory response, angiogenesis and metabolic reprogramming. OxLDLs activate toll-like receptor signaling pathways to promote HIF-1α stabilization. OxLDLs and oxysterols also induce NADPH oxidases and reactive oxygen species production, which subsequently leads to HIF-1α stabilization. Finally, recent investigations revealed that the activation of liver X receptor, an oxysterol nuclear receptor, results in an increase in HIF-1α transcriptional activity. Reciprocally, HIF-1α signaling promotes triglycerides and cholesterol accumulation in macrophages. Hypoxia and HIF-1α increase the uptake of oxLDLs, promote cholesterol and triglyceride synthesis and decrease cholesterol efflux. In conclusion, the impact of HIF-1α on cholesterol homeostasis within macrophages and the feedback activation of the inflammatory response by oxysterols via HIF-1α could play a deleterious role in atherosclerosis. In this context, studies aimed at understanding the specific mechanisms leading to HIF-1α activation within the plaque represents a promising field for research investigations and a path toward development of novel therapies.
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