De novo MECP2 duplication derived from paternal germ line result in dysmorphism and developmental delay

Dar-Shong Lin1, Tzu-Po Chuang, Ming-Fu Chiang

  • 1Department of Pediatrics, Mackay Memorial Hospital, Taipei, Taiwan; Department of Medical Research, Mackay Memorial Hospital, Taipei, Taiwan; Department of Chemical Engineering and Biotechnology, National Taipei University of Technology, Taipei, Taiwan; Mackay Junior College of Medicine, Nursing, and Management, Taipei, Taiwan.

Gene
|October 17, 2013
PubMed

Insights

MECP2 duplication syndrome in males, typically inherited from mothers, can rarely arise from paternal translocations. This case highlights advanced genetic testing for identifying such rare causes of developmental delay.

Area of Science:

  • Genetics
  • Molecular Biology
  • Developmental Biology

Background:

  • Xq28 duplications of the MECP2 gene in males cause a severe phenotype.
  • Most MECP2 duplications are maternally inherited, with few cases of paternal origin reported.
  • Identifying the origin of MECP2 duplications is crucial for genetic counseling and understanding disease mechanisms.

Purpose of the Study:

  • To report a rare case of MECP2 duplication syndrome in a male with a de novo paternal X/Y translocation.
  • To characterize the genetic aberration and its origin using advanced cytogenetic techniques.
  • To compare the patient's phenotype with previously reported cases and assess the impact of parental origin.

Main Methods:

  • Genome-wide SNP genotyping to detect copy number variations.
  • Fluorescence in situ hybridization (FISH) to confirm the chromosomal translocation.
  • Clinical evaluation and comparison with existing literature.

Main Results:

  • A de novo 2.26-Mb duplication at Xq28 was identified in a karyotypically normal male.
  • The duplication originated from a paternal Xq:Yp translocation (der(Y)t(Y;X)(p11.32;q28)) occurring during spermatogenesis.
  • The patient's phenotype was consistent with MECP2 duplication syndrome, with no specific features attributable to the paternal origin.

Conclusions:

  • This case expands the known spectrum of MECP2 duplication syndrome origins, emphasizing paternal translocations.
  • High-resolution cytogenetic methods like SNP array and FISH are essential for diagnosing submicroscopic rearrangements and determining parental origin.
  • Understanding the origin of MECP2 duplications aids in evaluating children with unexplained developmental delay and intellectual disability.

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