Homozygous nonsense mutations in TWIST2 cause Setleis syndrome

Turgut Tukel1, Drazen Šošić, Lihadh I Al-Gazali

  • 1Department of Genetics and Genomic Sciences, Mount Sinai School of Medicine of New York University, New York, NY 10029, USA.

Insights

Genetic defects causing Setleis syndrome, a rare inherited facial disorder, were identified. Researchers found that mutations in the TWIST2 gene lead to this condition, impacting facial development in affected individuals.

Area of Science:

  • Genetics
  • Developmental Biology
  • Dermatology

Background:

  • Focal facial dermal dysplasias (FFDDs) are inherited disorders characterized by bitemporal scar-like lesions.
  • The genetic causes of FFDDs, including Setleis syndrome (type III FFDD), remain largely unknown.
  • Previous studies have not identified the specific gene defects underlying these ectodermal dysplasias.

Purpose of the Study:

  • To identify the gene responsible for autosomal-recessive Setleis syndrome.
  • To elucidate the genetic basis of focal facial dermal dysplasias.
  • To understand the role of TWIST2 in human facial development.

Main Methods:

  • Homozygosity mapping was performed using genomic DNA from affected individuals and family members.
  • Microsatellite and haplotype analyses were used to narrow down the disease locus.
  • Candidate gene sequencing, specifically targeting TWIST2, followed by protein characterization using electrophoretic mobility shift assays and immunoblot analyses.

Main Results:

  • The disease locus for Setleis syndrome was mapped to chromosome 2q37.3.
  • Homozygous nonsense mutations (c.324C>T and c.486C>T) in the TWIST2 gene were identified in affected families.
  • Mutant TWIST2 proteins were found to be truncated and unstable, leading to similar facial features as observed in Twist2 knockout mice.

Conclusions:

  • Recessive mutations in the TWIST2 gene cause Setleis syndrome (type III FFDD).
  • TWIST2 plays a crucial, conserved role in mammalian facial development.
  • TWIST2 and TWIST1 function independently in distinct developmental pathways, despite their homology.

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