Germline activating MTOR mutation arising through gonadal mosaicism in two brothers with megalencephaly and

Cameron Mroske1, Kristen Rasmussen2, Deepali N Shinde3

  • 1Ambry Genetics Corporation, Aliso Viejo, CA, 92656, USA. cmroske@ambrygen.com.

BMC Medical Genetics
|November 7, 2015
PubMed
Abstract

Insights

Germline mutations in the Mammalian Target of Rapamycin (MTOR) gene are rare. This study identified a gain-of-function MTOR mutation (p.E1799K) in two brothers with neurological and developmental abnormalities, likely due to gonadal mosaicism.

Area of Science:

  • Genetics and Genomics
  • Molecular Biology
  • Developmental Biology

Background:

  • The Mammalian Target of Rapamycin (MTOR) gene encodes a critical protein kinase regulating numerous cellular processes.
  • While somatic MTOR mutations are known in cancer and hemimegalencephaly, germline mutations are seldom reported.
  • MTOR is highly expressed in the brain and influences the phosphorylation of over 800 proteins.

Observation:

  • Diagnostic Exome Sequencing (DES) was used to investigate two brothers with unexplained neurological and developmental issues.
  • The affected brothers presented with symptoms including Autism Spectrum Disorder (ASD), megalencephaly, motor skill delay, and iris coloboma.
  • Both brothers carried the MTOR missense variant p.E1799K (c.5395G>A), a known activating alteration.

Findings:

  • The MTOR p.E1799K variant, previously identified in somatic cancers, was found to be paternally inherited in two unrelated families with megalencephaly and intellectual disability (ID).
  • In this family, the variant was absent in parental blood DNA, suggesting gonadal mosaicism as the origin.
  • The p.E1799K variant acts via a gain-of-function (GOF) autosomal dominant mechanism.

Implications:

  • This study highlights the utility of DES in identifying rare genetic causes of complex developmental disorders.
  • The MTOR p.E1799K variant is confirmed as a pathogenic GOF mutation responsible for megalencephaly and cognitive impairment in humans.
  • This finding expands the spectrum of MTOR-related disorders and emphasizes the role of gonadal mosaicism in genetic disease.

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