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January 23, 2026International Journal of Molecular Sciences3 citationsOpen Access

Mitochondrial Targeting by Elamipretide Improves Myocardial Bioenergetics Without Translating into Functional Benefits in HFpEF

ASAntje SchauerDJDaniela JahnBVBeatrice Vahle

Key Result

Elamipretide improved mitochondrial respiration but did not lead to functional benefits in heart failure with preserved ejection fraction, with declines in LV ejection fraction.

Key Points

  • The aim is to investigate the effects of Elamipretide on cardiac mitochondrial function and performance in HFpEF models.
  • Used female obese ZSF1 rats for 12 weeks with vehicle or Elamipretide treatment.
  • Conducted echocardiography and pressure-volume analysis for cardiac function assessment.
  • Measured mitochondrial respiration in cardiac fibers and evaluated ultrastructure with electron microscopy.
  • Performed molecular profiling of hypertrophic, fibrotic, and inflammatory markers.
  • Elamipretide modestly improved mitochondrial respiration metrics (complex I and II).
  • No functional improvements in cardiac performance were observed, with a slight decline in LV ejection fraction.
  • Diastolic dysfunction persisted with unchanged ventricular stiffness factors and titin phosphorylation.
  • Cardiac remodeling remained unaltered, and vascular stiffness slightly increased.

Structured PICO

Does Elamipretide improve cardiac mitochondrial function, structure, and cardiovascular performance in a rodent HFpEF model?

P
Population
Female obese ZSF1 rats (rodent HFpEF model)
I
Intervention
Elamipretide (Ela) for 12 weeks
C
Comparator
Vehicle (with age-matched lean rats as controls)
O
Outcome
Cardiac mitochondrial function, structure, and cardiovascular performance (assessed by echocardiography and pressure-volume analysis)surrogate

Elamipretide improves mitochondrial respiration but fails to provide functional or structural benefits in an established rodent model of HFpEF.

Abstract

Mitochondrial dysfunction contributes to impaired myocardial energetics and performance in heart failure with preserved ejection fraction (HFpEF). Elamipretide (Ela) enhances mitochondrial bioenergetics in preclinical models, yet its relevance in HFpEF remains unclear. This study examined the effects of Ela on cardiac mitochondrial function, structure, and cardiovascular performance in a rodent HFpEF model. Female obese ZSF1 rats received vehicle or Ela for 12 weeks, with age-matched lean rats as controls. Cardiac function and hemodynamics were assessed by echocardiography and pressure–volume analysis. Mitochondrial respiration was measured in permeabilized fibers and ultrastructure evaluated by transmission electron microscopy. Molecular and histological analyses included cardiolipin lipidomics and mRNA/protein profiling of hypertrophic, fibrotic, and inflammatory markers. Ela modestly improved complex I and II respiration, whereas mitochondrial ultrastructure, cardiolipin composition, and tafazzin expression were unchanged. Diastolic dysfunction persisted, reflected by unchanged E/é, ventricular stiffness factor β, and titin phosphorylation. Compared to untreated HFpEF, systolic performance showed a mild decline, with small reductions in LV ejection fraction and end-systolic elastance. Accordingly, cardiac remodeling, including hypertrophy, fibrosis, and inflammatory activation, remained unaltered. Vascular stiffness slightly increased, while carotid reactivity and morphology were preserved. In conclusion, despite enhanced mitochondrial respiration following Ela treatment, no functional or structural benefits were observed in experimental HFpEF, suggesting limited therapeutic efficacy once HFpEF is established.

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Cite This Study

Schauer et al. (2026) studied this question. Elamipretide improved mitochondrial respiration but did not lead to functional benefits in heart failure with preserved ejection fraction, with declines in LV ejection fraction.

synapsesocial.com/papers/69730f59c8125b09b0d1f26ahttps://doi.org/10.3390/ijms27021060
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