Biologyarticle2026-09-03

Peroxiredoxin-6 protects against oxidative stress-mediated hypertrophic remodeling in JPH2-A399S knock-in mice

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Abstract

Background Most mutations causing hypertrophic cardiomyopathy (HCM) affect sarcomeric proteins. Mutations in junctophilin-2 (JPH2) are also implicated, but the underlying mechanisms remain unclear. An A405S variant in JPH2 was identified in a male adolescent patient with interventricular septal (IVS) hypertrophy. The corresponding mouse variant (A399S) produces comparable IVS hypertrophy, establishing causality. Prior data indicated that altered intracellular Ca 2+ handling is unlikely to be the primary driver. Methods We generated a CRISPR knock-in mouse model carrying the JPH2-A399S variant. Co-immunoprecipitation mass spectrometry and STED nanoscopy were used to identify JPH2 binding partners. Reactive oxygen species (ROS) were assessed with dihydroethidium in isolated myocytes. Adeno-associated virus serotype 9 (AAV9) was employed to overexpress peroxiredoxin 6 (PRDX6) in mutant hearts. Results PRDX6 was identified as a novel and abundant JPH2-interacting protein. PRDX6 expression was selectively downregulated in the IVS of JPH2-A399S mice and was also reduced in human failing hearts. JPH2-A399S mice exhibited increased ROS levels specifically in IVS myocytes. AAV9-mediated PRDX6 overexpression reversed the IVS hypertrophy phenotype. Conclusions These findings identify PRDX6 downregulation and consequent oxidative stress as a key mechanism driving JPH2-A399S-associated HCM. The results reveal a previously unrecognized role for JPH2 in cardiometabolic regulation and suggest that restoring PRDX6 levels may represent a therapeutic strategy for this form of HCM.

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View paper (DOI)Open access versionOpenAlexIJC Heart & VasculaturePublished 2026-09-03

Authors: Callum J Quinn, Satadru K. Lahiri, Ann P. Quick, Sören Brandenburg, Dennis Uhlenkamp, Antrix Jain, Lucia M. Moreira, Sun Y. Jung, Svetlana Reilly, Rana Sayeed, George Krasopoulos, Stephan E. Lehnart, Xander H.T. Wehrens

Institutions: University of Oxford, University of Göttingen, Baylor College of Medicine, John Radcliffe Hospital, British Heart Foundation, Advanced Technology Group (Czechia)