Natural glucocorticoid receptor mutants causing generalized glucocorticoid resistance: molecular genotype, genetic

Evangelia Charmandari1, Tomoshige Kino, Emmanuil Souvatzoglou

  • 1Pediatric and Reproductive Endocrinology Branch, National Institute of Child Health and Human Development, National Institutes of Health, Bethesda, Maryland 20892, USA.

Insights

Glucocorticoid resistance, caused by human glucocorticoid receptor-alpha (hGRalpha) gene mutations, leads to varied symptoms. Different mutations cause distinct signaling defects, explaining genetic transmission and clinical variability.

Area of Science:

  • Endocrinology
  • Molecular Biology
  • Genetics

Background:

  • Glucocorticoid resistance is a rare condition of end-organ insensitivity to glucocorticoids.
  • It can manifest with symptoms ranging from asymptomatic to severe hyperandrogenism or fatigue.
  • Mutations in the human glucocorticoid receptor-alpha (hGRalpha) gene are a known cause of this resistance.

Purpose of the Study:

  • To investigate the molecular mechanisms of five hGRalpha mutants (I559N, V571A, D641V, V729I, I747M).
  • To determine how these mutations affect hGRalpha function and signal transduction.
  • To correlate these functional defects with the genetic transmission patterns and clinical phenotypes observed in glucocorticoid resistance.

Main Methods:

  • Systematic investigation of five natural hGRalpha ligand-binding domain mutants.
  • Assessing intrinsic transcriptional activity and ligand-binding affinity (dexamethasone binding assay).
  • Evaluating DNA binding, nuclear translocation, and interaction with coactivators (glucocorticoid receptor-interacting protein-1).

Main Results:

  • All five mutants exhibited decreased intrinsic transcriptional activity.
  • Mutants hGRalphaV571A, D641V, and V729I did not show a dominant negative effect, unlike hGRalphaI559N and I747M.
  • All mutants showed reduced ligand affinity, but retained DNA binding. Non-dominant mutants had delayed nuclear translocation. Four mutants showed abnormal coactivator interaction.

Conclusions:

  • Each hGRalpha mutation studied imparts distinct functional defects in the glucocorticoid signal transduction pathway.
  • These differential defects help explain the autosomal recessive or dominant inheritance patterns of glucocorticoid resistance.
  • The findings suggest that mutation-specific functional deficits may partially account for the variable clinical presentations of the disorder.

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