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February 28, 2026Nature Communications0 citationsOpen Access

Activation of IRF3 in cardiomyocytes impairs mitochondrial oxidative function through PGC-1α inhibition and drives heart failure

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MKManju KumariIEIoannis EvangelakosADAnushka Deshpande

Key Result

Cardiomyocyte-specific IRF3 activation represses PGC-1α expression, driving mitochondrial dysfunction and heart failure, whereas restoring PGC-1α attenuates contractile dysfunction in male mice.

Key Points

  • The central aim is to explore how IRF3 activation in cardiomyocytes affects mitochondrial function and contributes to heart failure.
  • Investigated IRF3 phosphorylation in myocardium from ischemic cardiomyopathy patients and mice.
  • Used cardiomyocyte-specific IRF3 deficiency and a phosphomimetic IRF3 mutant to study functional outcomes.
  • Restored Ppargc1α expression to assess effects on contractile dysfunction and metabolic shifts.
  • Elevated IRF3 phosphorylation correlates with contractile dysfunction in ischemic cardiomyopathy.
  • IRF3 activation represses Ppargc1α, impairing mitochondrial oxidative phosphorylation.
  • Restoring Ppargc1α expression improves cardiac function by enhancing fatty acid oxidation and reducing inflammation.

Structured PICO

Does IRF3 activation in cardiomyocytes drive heart failure progression through mitochondrial metabolic dysfunction in ischemic cardiomyopathy?

P
Population
Myocardium of patients and male mice with ischemic cardiomyopathy
I
Intervention
Cardiomyocyte-specific IRF3 deficiency, IRF3 activation via phosphomimetic mutant, and restoration of cardiomyocyte-specific Ppargc1α expression
C
Comparator
Control/wild-type models (implied)
O
Outcome
Contractile dysfunction and mitochondrial oxidative phosphorylationsurrogate

IRF3 activation in cardiomyocytes acts as a transcriptional nexus between cardiac inflammation and metabolic fuel switch, contributing to heart failure progression in ischemic cardiomyopathy.

Abstract

Abstract Heightened sterile inflammation and mitochondrial metabolic dysfunction drives the pathophysiology of heart failure in ischemic cardiomyopathy. Yet, the transcriptional regulators within cardiomyocytes driving crosstalk between inflammation and energy metabolism remain ill-defined. Here we identify elevated Ser396/Ser398 phosphorylation of the type I interferon (IFN) response regulating transcription factor IRF3 in the myocardium of patients and male mice with ischemic cardiomyopathy. Cardiomyocyte-specific IRF3 deficiency attenuates ischemia induced contractile dysfunction. Conversely, IRF3 activation in cardiomyocytes through a phosphomimetic IRF3 mutant represses Ppargc1α expression leading to dysfunctional mitochondrial oxidative phosphorylation, altered metabolic flux in the pentose phosphate pathway/TCA cycle, impaired NAD metabolism and an excessive type I IFN activation, collectively detrimental for cardiac function. Restoring cardiomyocyte-specific Ppargc1α expression in IRF3-overexpressor male mice attenuates contractile dysfunction by augmenting a metabolic shift towards fatty acid oxidation and decreasing inflammatory fibrotic responses. These findings identify IRF3 activation in cardiomyocytes as a transcriptional nexus between cardiac inflammation and metabolic fuel switch contributing to heart failure progression.

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Cite This Study

Kumari et al. (2026) studied Ischemic cardiomyopathy and heart failure. Cardiomyocyte-specific IRF3 modulation and Ppargc1α restoration vs. Control was evaluated on Contractile dysfunction and mitochondrial oxidative function. Cardiomyocyte-specific IRF3 activation represses PGC-1α expression, driving mitochondrial dysfunction and heart failure, whereas restoring PGC-1α attenuates contractile dysfunction in male mice.

synapsesocial.com/papers/69a288170a974eb0d3c041a7https://doi.org/10.1038/s41467-026-69792-4
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