Role of dysregulated ferroptosis‑related genes in cardiomyocyte ischemia‑reperfusion injury: Experimental verification and bioinformatics analysis.

Experimental and therapeutic medicine Pub Date : 2023-09-28 eCollection Date: 2023-11-01 DOI:10.3892/etm.2023.12233
Tie Hu, Wen-Peng Yu, Hua-Xi Zou, Zhi-Hao Chai, Shu-Yu Le, Fa-Jia Hu, Yi-Cheng Wang, Huang Huang, Song-Qing Lai, Ji-Chun Liu
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引用次数: 0

Abstract

Acute myocardial infarction is a life-threatening condition with high mortality and complication rates. Although myocardial reperfusion can preserve ischemic myocardial tissue, it frequently exacerbates tissue injury, a phenomenon known as ischemia-reperfusion injury (IRI). However, the underlying pathological mechanisms of IRI remain to be completely understood. Ferroptosis is a novel type of regulated cell death that is associated with various pathological conditions, including angiocardiopathy. The purpose of this article was to elucidate the possible mechanistic role of ferroptosis in IRI through bioinformatics analysis and experimental validation. Healthy and IRI heart samples were screened for differentially expressed ferroptosis-related genes and functional enrichment analysis was performed to determine the potential crosstalk and pathways involved. A protein-protein interaction network was established for IRI, and 10 hub genes that regulate ferroptosis, including HIF1A, EGFR, HMOX1, and ATF3 were identified. In vitro, an anoxia/reoxygenation (A/R) injury model was established using H9c2 cardiomyoblasts to validate the bioinformatics analysis results, and extensive ferroptosis was detected. A total of 4 key hub genes and 3 key miRNAs were also validated. It was found that IRI was related to the aberrant infiltration of immune cells and the small-molecule drugs that may protect against IRI by preventing ferroptosis were identified. These results provide novel insights into the role of ferroptosis in IRI, which can help identify novel therapeutic targets.

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失调的脱铁相关基因在心肌细胞缺血再灌注损伤中的作用:实验验证和生物信息学分析。
急性心肌梗死是一种危及生命的疾病,死亡率和并发症发生率很高。尽管心肌再灌注可以保护缺血的心肌组织,但它经常会加剧组织损伤,这种现象被称为缺血再灌注损伤(IRI)。然而,IRI的潜在病理机制仍有待完全理解。脱铁症是一种新型的调节性细胞死亡,与各种病理条件有关,包括心血管疾病。本文的目的是通过生物信息学分析和实验验证,阐明脱铁性贫血在IRI中可能的机制作用。筛选健康和IRI心脏样本中差异表达的脱铁相关基因,并进行功能富集分析,以确定潜在的串扰和相关途径。建立了IRI的蛋白质-蛋白质相互作用网络,并鉴定了10个调节脱铁性贫血的枢纽基因,包括HIF1A、EGFR、HMOX1和ATF3。在体外,使用H9c2心肌成肌细胞建立缺氧/复氧(A/R)损伤模型以验证生物信息学分析结果,并检测到广泛的脱铁性贫血。还验证了总共4个关键枢纽基因和3个关键miRNA。研究发现IRI与免疫细胞的异常浸润有关,并确定了可以通过预防脱铁性贫血来预防IRI的小分子药物。这些结果为ferroptosis在IRI中的作用提供了新的见解,有助于确定新的治疗靶点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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