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Updated: Oct 4, 2025

Author Spotlight: Unveiling Mitochondrial Function and Cellular Metabolic Adaptation in Metabolic Diseases
Published on: October 4, 2024
IRAK-M deletion aggravates acute inflammatory response and mitochondrial respiratory dysfunction following myocardial
Fuwei Jia1, Lianfeng Chen1, Ligang Fang1
1Department of Cardiology, Peking Union Medical College Hospital, Peking Union Medical College and Chinese Academy of Medical Sciences, No 1. Shuaifuyuan, Dongcheng District, Beijing 100730, China.
Abstract:
Myocardial infarction (MI) is a major cause of morbidity and mortality worldwide. Interleukin-1 receptor associated kinase (IRAK)-M is a regulator of Toll-like receptor mediated inflammatory responses and plays an important role in the pathophysiologic processes of acute MI. We aimed to explore the effect of IRAK-M on regulating biological function and molecular interactions post-MI through bioinformatics analysis. Datasets from the Gene Expression Omnibus database were used to identify characteristics of IRAK-M expression in MI patients. The expression of IRAK-M was upregulated in MI patients and altered in a time-dependent manner during MI progression. Enrichment analysis showed that biological processes related to inflammatory response and leukocyte activation were markedly activated in MI patients with upregulated IRAK-M. Furthermore, we constructed MI model using wildtype and IRAK-M-/- mice and performed proteomics analysis of infarcted hearts. Functional enrichment of proteomics data indicated that IRAK-M deletion aggravated a series of pathophysiologic functions, such as acute inflammatory response, macrophage activation and mitochondrial dysfunction. S100A8/A9 acted as the central molecule in the above functions based on the protein-protein interaction network and was significantly elevated in IRAK-M-/- infarcted hearts at both the protein and mRNA levels. In conclusion, IRAK-M functioned as an essential regulator in pathophysiologic processes post-MI, exerting effects not only on controlling acute inflammatory responses but also on mediating mitochondrial respiratory function based on integrated bioinformatics analysis. SIGNIFICANCE: In this study, we combined microarray datasets and a proteomics approach to explore the effect of IRAK-M on mediating biological processes and systemic molecular interactions following MI. Our data firstly showed that IRAK-M is involved in ATP synthesis and mitochondrial respiratory chain complex during MI progression. S100A8/A9 acted as the central molecule in above regulatory network and displayed a tight connection with IRAK-M. The findings provide novel evidence and clues for understanding the complex roles and molecular mechanisms of IRAK-M in the development of MI.
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