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Mutagenesis and Analysis of Genetic Mutations in the GC-rich KISS1 Receptor Sequence Identified in Humans with Reproductive Disorders
Published on: September 4, 2011
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.
Abstract:
Glucocorticoid resistance is a rare, familial, or sporadic condition characterized by partial end-organ insensitivity to glucocorticoids. The clinical spectrum of the condition ranges from completely asymptomatic to severe hyperandrogenism, fatigue, and/or mineralocorticoid excess. The molecular basis of glucocorticoid resistance in several families and sporadic cases has been ascribed to mutations in the human glucocorticoid receptor-alpha (hGRalpha) gene, which impair the ability of the receptor to transduce the glucocorticoid signal. We systematically investigated the molecular mechanisms through which natural, ligand-binding domain hGRalpha mutants, including hGRalphaI559N, hGRalphaV571A, hGRalphaD641V, hGRalphaV729I, and hGRalphaI747M, produce a defective signal and determined whether their differential effects on hGRalpha function might account for the type of genetic transmission of the disorder and the variable clinical phenotype of the affected subjects. Our findings suggest that all five mutant receptors studied have ligand-binding domains with decreased intrinsic transcriptional activity. Unlike hGRalphaI559N and I747M previously shown to exert a dominant negative effect upon the transcriptional activity of hGRalpha, hGRalphaV571A, D641V, and V729I do not have such an effect. All five mutants studied demonstrate varying degrees of decreased affinity for the ligand in a standard dexamethasone binding assay, but preserve their ability to bind DNA. The nondominant negative mutants, hGRalphaV571A, D641V, and V729I, show delayed translocation into the nucleus after exposure to ligand. Finally, hGRalphaI559N, V571A, D641V, and V729I display an abnormal interaction with the glucocorticoid receptor-interacting protein-1 coactivator in vitro, as this was previously shown also for hGRalphaI747M. We conclude that each of the above hGRalpha mutations imparts different functional defects upon the glucocorticoid signal transduction pathway, which explains the autosomal recessive or dominant transmission of the disorder, but might only explain in part its variable clinical phenotype.
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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