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ANXA4 Alleviates Cardiomyocyte Injury Associated With Ischemia-Reperfusion by Interfering With NFκB p50's
Zhihan Zhao1, Yonghui Zhao1, Xiaobiao Zang1
1Heart Center of Henan Provincial People's Hospital, Central China Fuwai Hospital, Central China Fuwai Hospital of Zhengzhou University, Zhengzhou, Henan, China.
Abstract:
Myocardial ischemia/reperfusion injury (MI/R) remains a major challenge in cardiac transplantation, leading to early graft dysfunction or primary nonfunction, and eventually death. This study explores the role of annexin A4 (ANXA4), a calcium-dependent phospholipid-binding protein, in MI/R pathogenesis and investigates its underlying mechanisms. In C57BL/6J mice, ANXA4 expression was moderately increased following MI/R (induced by 45-min occlusion/24 h reperfusion) (mRNA: sham vs. MI/R = 1.00 vs. 2.42, p < 0.01; protein: 1.00 vs. 2.39, p < 0.05). To assess its functional role, AAV9 particles (1 × 1011 viral genomes per mouse) carrying ANXA4 encoding fragments were intravenously injected into mice 4 weeks before the surgery. The forced elevation of ANXA4 reduced IR-induced myocardial infarction from 41.22% to 18.23%, lowered the ventricular arrhythmias score from 10.83 to 6.00, and creatinine kinase-myocardial band (CK-MB) activity from 450 to 268 U/L. ANXA4 overexpression also inhibited cardiomyocyte apoptosis, inflammation, and oxidative stress. In vitro, ANXA4 overexpression mediated by pcDNA3.1 vector protected HL-1 mouse cardiomyocytes against oxygen-glucose deprivation/reoxygenation (OGD/R)-induced cell damage. Further high-throughput transcriptomics illustrated that ANXA4 upregulation significantly suppressed the expression of the receptor for advanced glycosylation end products (RAGE; Log2 Fold change = -3.19, p < 0.05). Mechanistically, ANXA4 repressed the transcription of RAGE by dampening the nuclear translocation of NFκB p50. Collectively, this study demonstrates that ANXA4 is upregulated in the mouse myocardium post MI/R as a compensatory response, and its overexpression alleviates MI/R- and OGD/R-induced cardiomyocyte injury by preventing NFκB p50 from binding to and initiating transcription of RAGE.
Insights
Annexin A4 (ANXA4) overexpression mitigates myocardial ischemia/reperfusion injury by suppressing RAGE expression. This protective effect involves inhibiting NFκB p50 nuclear translocation, reducing cardiomyocyte damage and inflammation.
Area of Science:
- Cardiology
- Molecular Biology
- Immunology
Background:
- Myocardial ischemia/reperfusion (MI/R) injury is a critical issue in cardiac transplantation, often leading to graft dysfunction and patient mortality.
- Annexin A4 (ANXA4), a calcium-dependent phospholipid-binding protein, has a poorly understood role in MI/R pathogenesis.
Purpose of the Study:
- To investigate the role of ANXA4 in MI/R injury.
- To elucidate the underlying molecular mechanisms of ANXA4's action in the context of MI/R.
Main Methods:
- MI/R model in C57BL/6J mice with assessment of ANXA4 expression.
- Adeno-associated virus serotype 9 (AAV9) mediated ANXA4 overexpression in vivo.
- In vitro studies using HL-1 cardiomyocytes subjected to oxygen-glucose deprivation/reoxygenation (OGD/R).
- High-throughput transcriptomics to identify molecular targets.
Main Results:
- ANXA4 expression was upregulated post-MI/R in mice.
- ANXA4 overexpression significantly reduced myocardial infarction size, ventricular arrhythmias, and cardiac enzyme release.
- ANXA4 inhibited cardiomyocyte apoptosis, inflammation, and oxidative stress.
- ANXA4 overexpression protected cardiomyocytes against OGD/R-induced injury and suppressed Receptor for Advanced Glycosylation End Products (RAGE) expression.
- Mechanistically, ANXA4 repressed RAGE transcription by inhibiting NFκB p50 nuclear translocation.
Conclusions:
- ANXA4 is upregulated as a compensatory mechanism in response to MI/R.
- ANXA4 overexpression confers protection against MI/R and OGD/R-induced cardiac injury.
- The protective effects of ANXA4 are mediated through the suppression of the RAGE pathway via inhibition of NFκB signaling.
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