Exome Sequencing and the Identification of New Genes and Shared Mechanisms in Polymicrogyria

Shyam K Akula1,2,3, Allen Y Chen1,4, Jennifer E Neil1,2

  • 1Division of Genetics and Genomics, Department of Pediatrics, Boston Children's Hospital, and Allen Discovery Center for Human Brain Evolution, Boston, Massachusetts.

JAMA Neurology
|July 24, 2023
PubMed

Insights

Genetic sequencing identified causes for 32.7% of polymicrogyria cases, revealing new gene associations and highlighting the importance of exome sequencing for diagnosing this common brain malformation.

Area of Science:

  • Neuroscience
  • Genetics
  • Developmental Biology

Background:

  • Polymicrogyria is a common cortical malformation linked to neurodevelopmental issues like epilepsy and cognitive deficits.
  • It often co-occurs with other brain abnormalities or syndromic conditions.
  • Previous studies have identified some genetic and non-genetic causes, but many cases remain unexplained.

Purpose of the Study:

  • To investigate the germline genetic causes of polymicrogyria in a large patient cohort.
  • To identify novel gene associations for polymicrogyria.

Main Methods:

  • A retrospective genetic association study analyzed DNA samples from 275 families with polymicrogyria.
  • Panel and whole-exome sequencing were performed on probands and available family members.
  • Data spanned over 20 years (1994-2020).

Main Results:

  • Molecular diagnoses explaining polymicrogyria were found in 32.7% (90/275) of families.
  • Frequently implicated known genes included PIK3R2, TUBB2B, COL4A1, and SCN3A.
  • Six novel candidate genes (PANX1, QRICH1, SCN2A, TMEM161B, KIF26A, MAN2C1) were identified, with consistent genotype-phenotype correlations.

Conclusions:

  • This study identified a higher rate of genetic causes for polymicrogyria than previously recognized.
  • Channelopathies appear to be a significant genetic cause.
  • Exome sequencing is a valuable tool for diagnosing polymicrogyria in affected families.
Abstract

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