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March 15, 2026Frontiers in Immunology2 citationsOpen Access

The immunometabolic axis of sepsis-related myocardial injury: macrophage reprogramming as a central mechanism and therapeutic target

YQYuyang QiuHBHongying BiWXWei Xie

Key Result

Macrophage metabolic reprogramming acts as a central conductor, orchestrating multiple pathological processes in sepsis-related myocardial injury.

Key Points

  • This review aims to clarify the role of macrophage metabolic reprogramming in sepsis-related myocardial injury and explore therapeutic options.
  • Reviewed literature on the pathogenesis of sepsis-related myocardial injury.
  • Evaluated the influence of macrophage metabolic shifts on inflammation and repair.
  • Discussed roles of metabolites and immunometabolic signaling among cell types.
  • Analyzed emerging therapeutic strategies targeting the immunometabolic axis.
  • Identified aerobic glycolysis as linked to pro-inflammatory responses in macrophages.
  • Found that oxidative phosphorylation supports restorative functions in myocardial injury.
  • Highlighted the importance of metabolites in signaling and epigenetic modifications.
  • Outlined novel therapies focusing on precision medicine for better patient outcomes.

PICO

P
Population
Sepsis-related myocardial injury (SRMI)

Abstract

Sepsis-related myocardial injury (SRMI) is a major cause of death in critically ill patients, with pathogenesis extending beyond inflammation to encompass dysregulated immunometabolic crosstalk. This review elucidates macrophage metabolic reprogramming as a central mechanism driving SRMI, detailing how a shift to aerobic glycolysis fuels pro-inflammatory responses, while oxidative phosphorylation supports reparative functions. We emphasize that metabolites like succinate, itaconate, and lactate act as potent signaling molecules, orchestrating epigenetic changes and inflammatory pathways. Furthermore, we deconstruct the critical immunometabolic dialogue mediated by extracellular vesicles (EVs) and signaling cascades among macrophages, cardiomyocytes, and endothelial cells. Translating these insights, we evaluate next-generation therapeutic strategies aimed at this immunometabolic axis, including precision small-molecule modulators, nucleic acid-based technologies, and biologics. These approaches represent a promising strategic shift from non-specific immunosuppression toward targeted immunometabolic modulation. This synthesis provides a foundational framework for understanding SRMI and charts a roadmap for developing novel precision medicine interventions to improve patient outcomes.

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Cite This Study

Qiu et al. (2026) studied Sepsis-related myocardial injury (SRMI). Macrophage metabolic reprogramming acts as a central conductor, orchestrating multiple pathological processes in sepsis-related myocardial injury.

synapsesocial.com/papers/69b64c33b42794e3e660d8achttps://doi.org/10.3389/fimmu.2026.1779575
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