Aldosterone synthase inhibitors across the translational spectrum: Mechanistic foundations and emerging clinical

Matteo Merlo1, Francesca Zoccatelli1, Gabriele Costa1

  • 1Department of Medicine, Unit of Internal Medicine B, University of Verona School of Medicine, Azienda Ospedaliera Universitaria Integrata Verona, Policlinico "G.B. Rossi", Verona, Italy.

PubMed

Insights

Aldosterone synthase inhibitors (ASIs) offer a novel approach to treat cardiovascular and kidney diseases by directly suppressing excess aldosterone production. Early trials show these drugs effectively lower blood pressure and reduce kidney damage markers.

Area of Science:

  • Endocrinology and Pharmacology
  • Cardiovascular and Renal Medicine

Background:

  • Excess aldosterone drives cardiovascular, renal, and metabolic injury, including hypertension and chronic kidney disease (CKD).
  • Current therapies like RAAS inhibitors do not fully suppress aldosterone biosynthesis, leaving residual activity that causes ongoing tissue damage.
  • The direct inhibition of aldosterone synthesis remains incompletely understood regarding long-term efficacy, selectivity, and broad clinical application.

Purpose of the Study:

  • To synthesize preclinical and clinical evidence on aldosterone synthase inhibitors (ASIs).
  • To examine the pharmacologic specificity, hormonal effects, and therapeutic potential of ASIs in primary aldosteronism (PA), resistant hypertension, and CKD.
  • To evaluate the role of ASIs in addressing residual aldosterone activity beyond conventional RAAS blockade.

Main Methods:

  • Comprehensive review of preclinical and clinical studies on ASIs.
  • Focus on next-generation ASIs (baxdrostat, lorundrostat, dexfadrostat phosphate, vicadrostat) and their selectivity for CYP11B2 over CYP11B1.
  • Analysis of data from early-phase trials assessing hormonal effects, blood pressure, albuminuria, and safety profiles.

Main Results:

  • Next-generation ASIs show high selectivity (>100-fold) for aldosterone synthase (CYP11B2) while preserving cortisol production (CYP11B1).
  • These agents consistently reduce aldosterone levels, lower blood pressure, decrease albuminuria, and normalize potassium in PA patients.
  • Early trials indicate a favorable safety profile with minimal hypothalamic-pituitary-adrenal axis disturbance.

Conclusions:

  • ASIs represent a mechanistically targeted strategy to address aldosterone excess, offering potential benefits beyond current RAAS inhibitors.
  • These agents demonstrate promise in managing PA, resistant hypertension, and CKD by directly inhibiting aldosterone synthesis.
  • Ongoing phase III trials are crucial to confirm if ASIs provide durable cardiovascular and renal protection, potentially transforming treatment paradigms.

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