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June 25, 2026Journal of Molecular Medicine0 citationsOpen Access

Preclinical evaluation of cysteine protease-inhibitor aloxistatin (E64d) for heart failure therapy

MJMaria JordanASAngelika Stucki-KochMSMaximilian Schinke

Key Points

  • This study aims to assess the potential of aloxistatin to mitigate fibrosis in heart failure models.
  • Used preclinical models of heart failure to evaluate aloxistatin's effects.

Structured PICO

Does aloxistatin reduce pro-fibrotic and inflammatory signaling in preclinical models of heart failure?

P
Population
Human cardiac fibroblasts (HCFs) derived from patients with ischemic cardiomyopathy (ICM) or dilated cardiomyopathy (DCM), Wistar rat ex vivo myocardial slices, human embryonic kidney (HEK) 293 FT cells, and human induced pluripotent stem cell (iPSC)-derived macrophages.
I
Intervention
Aloxistatin (100 µM) applied in vitro and ex vivo.
C
Comparator
DMSO (vehicle) control.
O
Outcome
Migratory and proliferative capacities of human cardiac fibroblasts, and pro-fibrotic/inflammatory signaling.surrogate

Aloxistatin demonstrates dual anti-fibrotic and anti-inflammatory effects in preclinical models, suggesting its potential as a repurposed drug to attenuate cardiac remodeling in heart failure.

Abstract

Abstract Heart failure (HF) affects over 64 million people worldwide causally linked to fibrotic scarring. None of the available cardiac drugs target fibrosis directly, underlining unmet clinical need for novel therapies. This study aimed to explore the therapeutic potential of the cysteine protease inhibitor aloxistatin as a repurposed drug candidate to combat fibrotic progression in predictive HF models. Aloxistatin reduced migratory and proliferative capacities of human cardiac fibroblasts (HCFs) derived from various HF backgrounds. Mechanistically, aloxistatin attenuated TGFβ1-induced pro-fibrotic signaling in cardiomyopathy-derived HCFs by inhibiting extracellular matrix organization-related gene expression and secretion of MMP2 und FN1, partially mediated through CAPN2 inhibition. Transcriptomic analysis of rat ex vivo myocardial slices revealed a pronounced suppression of inflammatory pathways. Anti-inflammatory effects of aloxistatin were further confirmed by reduced NFκB activity in reporter cells and inhibited HLA-DR expression in human iPSC-derived macrophages. Application of diverse preclinical cardiac HF models arguably underlined aloxistatin as a potential drug repurposing strategy by simultaneously counteracting myocardial inflammatory signaling and pro-fibrotic mechanisms. This preclinical study suggests aloxistatin therapy for translational use to attenuate cardiac remodeling and progression of heart failure.

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Cite This Study

Jordan et al. (2026) studied this question.

synapsesocial.com/papers/6a3d91bf408ebb922448b177https://doi.org/10.1007/s00109-026-02695-5
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