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.
Background:
In humans, Mammalian Target of Rapamycin (MTOR) encodes a 300 kDa serine/ threonine protein kinase that is ubiquitously expressed, particularly at high levels in brain. MTOR functions as an integrator of multiple cellular processes, and in so doing either directly or indirectly regulates the phosphorylation of at least 800 proteins. While somatic MTOR mutations have been recognized in tumors for many years, and more recently in hemimegalencephaly, germline MTOR mutations have rarely been described.
Case Presentation:
We report the successful application of family-trio Diagnostic Exome Sequencing (DES) to identify the underlying molecular etiology in two brothers with multiple neurological and developmental lesions, and for whom previous testing was non-diagnostic. The affected brothers, who were 6 and 23 years of age at the time of DES, presented symptoms including but not limited to mild Autism Spectrum Disorder (ASD), megalencephaly, gross motor skill delay, cryptorchidism and bilateral iris coloboma. Importantly, we determined that each affected brother harbored the MTOR missense alteration p.E1799K (c.5395G>A). This exact variant has been previously identified in multiple independent human somatic cancer samples and has been shown to result in increased MTOR activation. Further, recent independent reports describe two unrelated families in whom p.E1799K co-segregated with megalencephaly and intellectual disability (ID); in both cases, p.E1799K was shown to have originated due to germline mosaicism. In the case of the family reported herein, the absence of p.E1799K in genomic DNA extracted from the blood of either parent suggests that this alteration most likely arose due to gonadal mosaicism. Further, the p.E1799K variant exerts its effect by a gain-of-function (GOF), autosomal dominant mechanism.
Conclusion:
Herein, we describe the use of DES to uncover an activating MTOR missense alteration of gonadal mosaic origin that is likely to be the causative mutation in two brothers who present multiple neurological and developmental abnormalities. Our report brings the total number of families who harbor MTOR p.E1799K in association with megalencephaly and ID to three. In each case, evidence suggests that p.E1799K arose in the affected individuals due to gonadal mosaicism. Thus, MTOR p.E1799K can now be classified as a pathogenic GOF mutation that causes megalencephaly and cognitive impairment in humans.
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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