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Microtubule associated protein 4 (MAP4) phosphorylation reduces cardiac microvascular density through NLRP3-related
Yan-Hai Feng1,2, Ling-Fei Li3, Qiong Zhang1,2
1Laboratory Institute of Burn Research, Southwest Hospital, Third Military Medical University (Army Medical University), Chongqing, China.
Abstract:
Phosphorylation of MAP4 (p-MAP4) causes cardiac remodeling, with the cardiac microvascular endothelium being considered a vital mediator of this process. In the current study, we investigated the mechanism underlying p-MAP4 influences on cardiac microvascular density. We firstly confirmed elevated MAP4 phosphorylation in the myocardium of MAP4 knock-in (KI) mice. When compared with the corresponding control group, we detected the decreased expression of CD31, CD34, VEGFA, VEGFR2, ANG2, and TIE2 in the myocardium of MAP4 KI mice, accompanied by a reduced plasma concentration of VEGF. Moreover, we observed apoptosis and mitochondrial disruption in the cardiac microvascular endothelium of MAP4 KI animals. Consistently, we noted a decreased cardiac microvascular density, measured by CD31 and lectin staining, in MAP4 KI mice. To explore the underlying mechanism, we targeted the NLRP3-related pyroptosis and found increased expression of the corresponding proteins, including NLRP3, ASC, mature IL-1β, IL-18, and GSDMD-N in the myocardium of MAP4 KI mice. Furthermore, we utilized a MAP4 (Glu) adenovirus to mimic cellular p-MAP4. After incubating HUVECs with MAP4 (Glu) adenovirus, the angiogenic ability was inhibited, and NLRP3-related pyroptosis were significantly activated. Moreover, both cytotoxicity and PI signal were upregulated by the MAP4 (Glu) adenovirus. Finally, NLRP3 inflammasome blockage alleviated the inhibited angiogenic ability induced by MAP4 (Glu) adenovirus. These results demonstrated that p-MAP4 reduced cardiac microvascular density by activating NLRP3-related pyroptosis in both young and aged mice. We thus managed to provide clues explaining MAP4 phosphorylation-induced cardiac remodeling and enriched current knowledge regarding the role of MAP4.
Insights
Phosphorylated MAP4 (p-MAP4) reduces cardiac microvascular density by activating NLRP3 inflammasome-related pyroptosis. This finding explains p-MAP4
Area of Science:
- Cardiovascular Biology
- Cellular Mechanisms
- Molecular Biology
Background:
- Cardiac remodeling is influenced by phosphorylated MAP4 (p-MAP4).
- Cardiac microvascular endothelium plays a key role in this process.
- The precise mechanism linking p-MAP4 to microvascular density is not fully understood.
Purpose of the Study:
- To investigate the mechanism by which p-MAP4 influences cardiac microvascular density.
- To explore the role of NLRP3 inflammasome-related pyroptosis in this process.
Main Methods:
- Utilized MAP4 knock-in (KI) mice to confirm elevated p-MAP4 and assess microvascular markers (CD31, CD34, VEGFA, VEGFR2, ANG2, TIE2).
- Analyzed cardiac microvascular endothelium for apoptosis and mitochondrial integrity.
- Employed MAP4 (Glu) adenovirus in HUVECs to mimic cellular p-MAP4 and assessed angiogenic ability, pyroptosis markers (NLRP3, ASC, IL-1β, IL-18, GSDMD-N), cytotoxicity, and PI signal.
- Investigated the effect of NLRP3 inflammasome blockage on angiogenic ability.
Main Results:
- MAP4 KI mice exhibited decreased expression of key angiogenic factors and reduced cardiac microvascular density.
- Apoptosis and mitochondrial disruption were observed in the cardiac microvascular endothelium of MAP4 KI mice.
- p-MAP4 activation of NLRP3-related pyroptosis was confirmed in vitro, leading to inhibited angiogenic ability and increased cytotoxicity.
- NLRP3 inflammasome blockage ameliorated the p-MAP4-induced inhibition of angiogenic ability.
Conclusions:
- p-MAP4 reduces cardiac microvascular density by activating NLRP3-related pyroptosis.
- This mechanism contributes to cardiac remodeling.
- The findings provide insights into MAP4's role in cardiovascular health and disease.
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