Spironolactone metabolite concentrations in decompensated heart failure: insights from the ATHENA-HF trial

Simon de Denus1,2,3, Grégoire Leclair1, Marie-Pierre Dubé2,3,4

  • 1Faculty of Pharmacy, Montreal, Canada.

Insights

High-dose spironolactone did not improve heart failure outcomes in the ATHENA-HF trial. Lower-than-expected levels of spironolactone metabolites, canrenone and 7α-TMS, may explain these neutral results.

Area of Science:

  • Pharmacology
  • Cardiology
  • Clinical Trials

Background:

  • The ATHENA-HF trial investigated high-dose spironolactone for acute heart failure (HF).
  • High-dose spironolactone (100 mg daily) showed no efficacy benefit over usual care.
  • This study explored the role of spironolactone metabolites in the trial's outcomes.

Purpose of the Study:

  • To investigate the concentrations of spironolactone's active metabolites, canrenone and 7α-thiomethylspironolactone (7α-TMS).
  • To determine if lower-than-anticipated metabolite levels contributed to the lack of efficacy in the ATHENA-HF trial.

Main Methods:

  • Measured serum concentrations of canrenone and 7α-TMS in patients receiving high-dose and low-dose spironolactone.
  • Analyzed metabolite levels at 48 and 96 hours post-administration.
  • Compared metabolite concentrations between treatment groups and correlated them with efficacy endpoints.

Main Results:

  • In high-dose spironolactone groups, metabolite concentrations increased over time, indicating steady-state was not reached by 48 hours.
  • Metabolite concentrations were significantly higher in high-dose groups compared to the low-dose group at 48 hours.
  • Higher metabolite levels were observed in patients previously on low-dose spironolactone compared to treatment-naïve patients.

Conclusions:

  • Lower-than-anticipated concentrations of spironolactone active metabolites were present for at least 48 hours in the high-dose group.
  • These suboptimal metabolite levels may explain the observed lack of pharmacological effect and efficacy in the ATHENA-HF trial.
Abstract

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