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Updated: Aug 27, 2025

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
KMT2B-dependent RFK transcription activates the TNF-α/NOX2 pathway and enhances ferroptosis caused by myocardial
Yuanyuan Cao1, Fei Luo1, Jia Peng1
1Department of Cardiovascular Medicine, The Second Xiangya Hospital, Central South University, Changsha, Hunan 410011, PR China; Research Institute of Blood Lipid and Atherosclerosis, Central South University, Changsha, Hunan 410011, PR China; Modern Cardiovascular Disease Clinical Technology Research Center of Hunan Province, Changsha, Hunan 410011, PR China; Cardiovascular Disease Research Center of Hunan Province, Changsha, Hunan 410011, PR China.
Abstract:
Epigenetic regulation such as histone modification is implicated in the pathogenesis of myocardial ischemia/reperfusion injury (MIRI). Lysine-specific methyltransferase 2B (KMT2B) is a histone H3 lysine 4 (H3K4) methyltransferase. This study aims at exploring the role of KMT2B-mediated histone modification in MIRI. Peripheral blood samples were collected from 30 patients with acute myocardial infarction (AMI) and 30 healthy volunteers for analyses of the expression levels of KMT2B, riboflavin kinase (RFK), tumor necrosis factor (TNF)-α, and NADPH oxidase 2 (NOX2). H9C2 cardiomyocytes and Sprague-Dawley rats were utilized for developing in vitro and in vivo models. To evaluate the effects of the aforementioned molecules on cellular damage and MIRI, short hairpin RNAs or overexpression plasmids were introduced into cardiomyocytes for gene silencing or overexpression and also, they were packaged into adenovirus vectors for in vivo interventions. Immunoprecipitation assays were conducted to assess the interactions between KMT2B and RFK and among RFK, NOX2 sub-unit p22phox, and TNF receptor 1-associated death domain protein. KMT2B, RFK, TNF-α, and NOX2 were notably upregulated in AMI patients. KMT2B knockdown resulted in considerably attenuated cell apoptosis and reduced myocardial infarct area. Additionally, the release of pro-inflammatory proteins and ferroptosis were suppressed. Furthermore, KMT2B could promote RFK gene transcription by upregulating H3 methylation levels and consequently activate the TNF-α/NOX2 axis, which was the possible mechanism underlying the role of KMT2B in MIRI. KMT2B motivates MIRI-induced cellular injury and ferroptosis by inducing RFK transcription and mediating the TNF-α/NOX2 axis.
Insights
Lysine-specific methyltransferase 2B (KMT2B) drives myocardial ischemia/reperfusion injury (MIRI) by increasing riboflavin kinase (RFK) and activating the TNF-α/NOX2 pathway. Reducing KMT2B alleviates MIRI-induced cell damage and ferroptosis.
Area of Science:
- Cardiovascular Biology
- Epigenetics
- Molecular Medicine
Background:
- Myocardial ischemia/reperfusion injury (MIRI) involves complex epigenetic mechanisms.
- Histone modification plays a role in MIRI pathogenesis.
- Lysine-specific methyltransferase 2B (KMT2B) is a key histone methyltransferase.
Purpose of the Study:
- To investigate the role of KMT2B-mediated histone modification in MIRI.
- To explore the molecular mechanisms linking KMT2B to MIRI.
- To assess KMT2B's impact on cellular damage and ferroptosis in MIRI.
Main Methods:
- Analysis of KMT2B, RFK, TNF-α, and NOX2 expression in AMI patients and controls.
- In vitro (H9C2 cells) and in vivo (rat) MIRI models.
- Gene silencing/overexpression via shRNA/plasmids and adenovirus vectors.
- Immunoprecipitation assays to determine molecular interactions.
Main Results:
- KMT2B, RFK, TNF-α, and NOX2 were upregulated in acute myocardial infarction (AMI) patients.
- KMT2B knockdown attenuated cardiomyocyte apoptosis, reduced infarct size, and suppressed inflammation and ferroptosis.
- KMT2B promotes RFK transcription via H3 methylation, activating the TNF-α/NOX2 axis.
Conclusions:
- KMT2B is a key driver of MIRI-induced cellular injury and ferroptosis.
- KMT2B mediates MIRI by inducing RFK transcription and activating the TNF-α/NOX2 signaling pathway.
- Targeting KMT2B may offer a therapeutic strategy for MIRI.
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