AMH and AMH receptor defects in persistent Müllerian duct syndrome

Nathalie Josso1, Corinne Belville, Nathalie di Clemente

  • 1Unité de Recherches sur l'Endocrinologie du Développement (INSERM), Université Paris XI Clamart, France. nathalie.josso@inserm.ipsc.u-psud.fr

Insights

Mutations in Anti-Müllerian hormone (AMH) or its receptor (AMHR-II) cause persistent Müllerian duct syndrome in males, leading to retained uterus and Fallopian tubes. These genetic defects are crucial for male sex differentiation.

Area of Science:

  • Reproductive Endocrinology
  • Human Genetics
  • Developmental Biology

Background:

  • Anti-Müllerian hormone (AMH) is vital for male sex differentiation, promoting Müllerian duct regression.
  • AMH signals via specific type II and shared type I transmembrane receptors.
  • Mutations in AMH or AMH receptor type II (AMHR-II) disrupt male development.

Purpose of the Study:

  • To investigate the genetic basis of persistent Müllerian duct syndrome (PMDS).
  • To understand the role of AMH and AMHR-II in male sexual development.
  • To differentiate the molecular mechanisms underlying AMH and AMHR-II mutations.

Main Methods:

  • Genetic analysis of patients with persistent Müllerian duct syndrome.
  • Phenotypic correlation with identified AMH and AMHR-II mutations.
  • Analysis of AMH levels in affected individuals.

Main Results:

  • Mutations in AMH or AMHR-II genes cause PMDS in 85% of cases, inherited autosomally recessively.
  • AMHR-II mutants have normal circulating AMH, while AMH mutants show low/undetectable levels.
  • Phenotype is consistent regardless of genetic background, with potential fertility if testes are repositioned.

Conclusions:

  • AMH and AMHR-II gene mutations are the primary cause of persistent Müllerian duct syndrome.
  • Circulating AMH levels can distinguish between AMH and AMHR-II defects.
  • The remaining 15% of PMDS cases may involve other urogenital malformations unrelated to AMH signaling.

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