Blocking RIPK2 Function Alleviates Myocardial Ischemia/Reperfusion Injury by Regulating the AKT and NF-κB Pathways

Zhen Xia1, Guofang Sun2

  • 1Department of Cardiology, The Second Affiliated Hospital of Nanchang University, Nanchang, Jiangxi, P.R. china.

Abstract

Insights

Targeting receptor interacting serine/threonine kinase 2 (RIPK2) reduces inflammation and oxidative stress in myocardial ischemia-reperfusion (MI/R) injury. Silencing RIPK2 protects cardiomyocytes and alleviates MI/R damage by activating AKT and suppressing NF-κB signaling.

Area of Science:

  • Cardiovascular Research
  • Molecular Biology
  • Cellular Pathology

Background:

  • Myocardial ischemia-reperfusion (MI/R) injury causes significant cardiomyocyte damage through inflammation and oxidative stress.
  • Receptor interacting serine/threonine kinase 2 (RIPK2) is implicated in pathways contributing to oxidative stress and inflammation.

Purpose of the Study:

  • To investigate the role of RIPK2 in the pathogenesis of MI/R injury.
  • To evaluate RIPK2 as a potential therapeutic target for MI/R injury.

Main Methods:

  • Established in vivo (MI/R rats) and in vitro (OGD/R cardiomyocytes) models.
  • Assessed RIPK2 expression via qRT-PCR and Western blot.
  • Quantified cell proliferation, apoptosis, inflammatory cytokines, oxidative stress markers (MDA, ROS), and cardiac injury indicators (CK-MB, Mb, cTnI, LDH).
  • Analyzed downstream signaling pathways (AKT, NF-κB).

Main Results:

  • RIPK2 expression was upregulated in both MI/R and OGD/R models.
  • RIPK2 inhibition promoted cardiomyocyte proliferation and reduced apoptosis.
  • Silencing RIPK2 decreased oxidative stress markers and inflammatory cytokine levels.
  • RIPK2 inhibition attenuated cardiac injury markers and alleviated MI/R damage in vivo.
  • RIPK2 suppression activated AKT signaling and inhibited NF-κB activation.

Conclusions:

  • RIPK2 plays a critical role in promoting apoptosis, inflammation, and oxidative stress during MI/R injury.
  • Targeting RIPK2 offers a promising therapeutic strategy for MI/R injury by modulating AKT and NF-κB pathways.

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