The physiological and biochemical basis of potency thresholds modeled using human estrogen receptor alpha:

Christopher J Borgert1, Lyle D Burgoon2, John C Matthews3

  • 1Applied Pharmacology and Toxicology, Inc. and CEHT, Univ. FL College of Vet. Med., Gainesville, FL, USA. cjborgert@apt-pharmatox.com.

PubMed

Insights

The human-relevant potency threshold for estrogen receptor-alpha (ERα) ligands is determined by the body's natural metabolic substances. Ligands must be at least 10 times more potent than this threshold to disrupt estrogenic pathways.

Area of Science:

  • Endocrinology
  • Molecular Pharmacology
  • Toxicology

Background:

  • The endocrine system relies on ligand-receptor interactions, where ligand potency (affinity x efficacy) and concentration dictate physiological effects.
  • A previously established Human-Relevant Potency Threshold (HRPT) for estrogen receptor-alpha (ERα) agonists is 10-4 relative to 17β-estradiol (E2), below which clinically observable estrogenic effects are not produced.
  • The endogenous metabolic milieu, comprising hormone precursors and metabolites, may influence this HRPT.

Purpose of the Study:

  • To test the hypothesis that the ERα HRPT is established by receptor occupancy from the normal metabolic milieu of endogenous ERα ligands.
  • To determine if ERα ligands can compete with endogenous components for receptor binding at concentrations found in human blood.
  • To provide a mechanistic explanation for the ERα HRPT based on molecular kinetics.

Main Methods:

  • Calculated fractional receptor occupancies for ERα ligands with varying potencies.
  • Assessed competition for ERα occupancy against individual endogenous ligands and mixtures at physiological concentrations.
  • Utilized established laws of mass action and known properties of endogenous ERα ligands.

Main Results:

  • ERα ligands with potencies greater than tenfold the HRPT (10-3 relative to E2) could successfully compete for receptor occupancy against endogenous components.
  • Ligands with potencies less than tenfold the HRPT were unable to compete effectively for ERα binding.
  • The endogenous metabolic milieu is demonstrated to be responsible for the observed ERα agonist HRPT.

Conclusions:

  • The previously proposed ERα HRPT (10-4 relative to E2) is conservative, suggesting strong evidence against estrogenic pathway disruption by ligands below this threshold.
  • Chemicals with potencies of 10-3 relative to E2 require corroborative evidence to assess endocrine disruption potential.
  • The HRPT applies to both ERα agonists and antagonists, providing a mechanistic explanation grounded in molecular kinetics and endogenous metabolism.

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