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Published on: October 17, 2017
Macrophage NFATc3 prevents foam cell formation and atherosclerosis: evidence and mechanisms
Xiu Liu1,2, Jia-Wei Guo2,3, Xiao-Chun Lin2
1Program of Kidney and Cardiovascular Diseases, the Fifth Affiliated Hospital, Zhongshan School of Medicine, Sun Yat-Sen University, 74 Zhongshan 2 Rd, Guangzhou 510080, China.
Aims:
Our previous study demonstrated that Ca2+ influx through the Orai1 store-operated Ca2+ channel in macrophages contributes to foam cell formation and atherosclerosis via the calcineurin-ASK1 pathway, not the classical calcineurin-nuclear factor of activated T-cell (NFAT) pathway. Moreover, up-regulation of NFATc3 in macrophages inhibits foam cell formation, suggesting that macrophage NFATc3 is a negative regulator of atherogenesis. Hence, this study investigated the precise role of macrophage NFATc3 in atherogenesis.
Methods And Results:
Macrophage-specific NFATc3 knockout mice were generated to determine the effect of NFATc3 on atherosclerosis in a mouse model of adeno-associated virus-mutant PCSK9-induced atherosclerosis. NFATc3 expression was decreased in macrophages within human and mouse atherosclerotic lesions. Moreover, NFATc3 levels in peripheral blood mononuclear cells from atherosclerotic patients were negatively associated with plaque instability. Furthermore, macrophage-specific ablation of NFATc3 in mice led to the atherosclerotic plaque formation, whereas macrophage-specific NFATc3 transgenic mice exhibited the opposite phenotype. NFATc3 deficiency in macrophages promoted foam cell formation by potentiating SR-A- and CD36-meditated lipid uptake. NFATc3 directly targeted and transcriptionally up-regulated miR-204 levels. Mature miR-204-5p suppressed SR-A expression via canonical regulation. Unexpectedly, miR-204-3p localized in the nucleus and inhibited CD36 transcription. Restoration of miR-204 abolished the proatherogenic phenotype observed in the macrophage-specific NFATc3 knockout mice, and blockade of miR-204 function reversed the beneficial effects of NFATc3 in macrophages.
Conclusion:
Macrophage NFATc3 up-regulates miR-204 to reduce SR-A and CD36 levels, thereby preventing foam cell formation and atherosclerosis, indicating that the NFATc3/miR-204 axis may be a potential therapeutic target against atherosclerosis.
Insights
Macrophage nuclear factor of activated T-cells c3 (NFATc3) prevents atherosclerosis by upregulating miR-204, which reduces lipid uptake and foam cell formation. This NFATc3/miR-204 pathway offers a potential therapeutic target for atherosclerosis.
Area of Science:
- Immunology
- Cardiovascular Biology
- Molecular Biology
Background:
- Previous studies linked calcium influx via Orai1 channels in macrophages to atherosclerosis.
- Nuclear factor of activated T-cells c3 (NFATc3) in macrophages was found to inhibit foam cell formation, suggesting a protective role in atherogenesis.
Purpose of the Study:
- To investigate the precise role of macrophage NFATc3 in the development of atherosclerosis.
- To elucidate the molecular mechanisms by which NFATc3 influences atherogenesis.
Main Methods:
- Generated macrophage-specific NFATc3 knockout mice for atherosclerosis studies.
- Utilized a mouse model of adeno-associated virus-mutant PCSK9-induced atherosclerosis.
- Analyzed NFATc3 expression in human and mouse atherosclerotic lesions and patient blood samples.
- Investigated the effects of NFATc3 on lipid uptake, foam cell formation, and microRNA (miR-204) regulation in macrophages.
Main Results:
- NFATc3 expression was reduced in macrophages within atherosclerotic lesions and negatively correlated with plaque instability in patients.
- Macrophage-specific NFATc3 knockout accelerated atherosclerosis, while NFATc3 overexpression conferred protection.
- NFATc3 deficiency enhanced foam cell formation by increasing scavenger receptor A (SR-A) and CD36-mediated lipid uptake.
- NFATc3 directly upregulated miR-204, which suppressed SR-A and inhibited CD36 transcription, thereby reducing lipid accumulation.
Conclusions:
- Macrophage NFATc3 plays a critical protective role against atherosclerosis.
- The NFATc3/miR-204 axis regulates lipid metabolism in macrophages by controlling SR-A and CD36 expression.
- Targeting the NFATc3/miR-204 pathway presents a potential therapeutic strategy for atherosclerosis.
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