Rare missense TUBGCP5 gene variant in a patient with primary microcephaly

Aleš Maver1, Goran Čuturilo2, Anja Kovanda1

  • 1Clinical Institute of Medical Genetics, Šlajmerjeva 4, University Medical Centre Ljubljana, Ljubljana, Slovenia.

Insights

A novel gene variant, TUBGCP5, is linked to primary microcephaly (MCPH) and mild developmental delay. This finding expands the genetic causes of MCPH and may explain microcephaly in 15q11.2 deletion carriers.

Area of Science:

  • Genetics
  • Neurodevelopmental Disorders
  • Molecular Biology

Background:

  • Primary microcephalies (MCPH) are a group of rare genetic disorders characterized by reduced head circumference at birth without other malformations.
  • Centrosome dysfunction is implicated in several MCPH cases, highlighting its critical role in brain development.
  • The TUBGCP5 gene, involved in centrosome formation, is located within a microdeletion region (15q11.2 BP1-BP2) associated with neurodevelopmental issues.

Observation:

  • Whole exome sequencing identified a novel missense variant (TUBGCP5:c.2180T>G, p.Phe727Cys) in a patient with primary microcephaly and mild developmental delay.
  • This variant was found in a compound heterozygous state with a 15q11.2 BP1-BP2 microdeletion.
  • The identified TUBGCP5 variant is rare, highly conserved across species, and its paralogs are known MCPH-associated genes.

Findings:

  • The novel TUBGCP5 missense variant is proposed as a potential cause of primary microcephaly with mild developmental delay.
  • This variant may contribute to the microcephaly observed in individuals carrying the 15q11.2 BP1-BP2 microdeletion.
  • The findings implicate TUBGCP5 in human brain size regulation and centrosome function.

Implications:

  • This discovery expands the genetic landscape of primary microcephaly, offering new diagnostic avenues.
  • Understanding TUBGCP5's role could lead to better insights into the etiology of microcephaly in 15q11.2 deletion syndrome.
  • Further research is needed to confirm the causality and penetrance of TUBGCP5 variants in MCPH.

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