Mutations in WDR19 encoding the intraflagellar transport component IFT144 cause a broad spectrum of ciliopathies

Henry Fehrenbach1, Christian Decker, Tobias Eisenberger

  • 1Department of Pediatrics, Children's Hospital Memmingen, Memmingen, Germany.

Insights

A novel WDR19 mutation was identified in a child with unclassified ciliopathies, highlighting the effectiveness of next-generation sequencing panels for diagnosing complex genetic disorders.

Area of Science:

  • Genetics
  • Molecular Biology
  • Pediatrics

Background:

  • Ciliopathies are a group of heterogeneous diseases linked to primary cilia dysfunction.
  • An 8-year-old girl presented with a complex, unclassified phenotype.

Purpose of the Study:

  • To identify the genetic cause of the patient's complex phenotype.
  • To evaluate the utility of next-generation sequencing (NGS) in diagnosing unclassified ciliopathies.

Main Methods:

  • Array-comparative genomic hybridization (CGH) excluded chromosomal abnormalities.
  • Next-generation sequencing (NGS) was performed using a 131-gene ciliopathy panel.
  • Bioinformatic analysis predicted the pathogenicity of the identified mutation.

Main Results:

  • A novel homozygous WDR19 mutation (c.1483G>C, p.Gly495Arg) in the IFT144 gene was identified.
  • This mutation affects a conserved residue and is predicted to be pathogenic.
  • The patient exhibited hypotonia, facial dysmorphism, short stature, renal failure, and other features.

Conclusions:

  • WDR19 mutations are associated with a spectrum of ciliopathies, including skeletal ciliopathies and nephronophthisis.
  • NGS panels are efficient for diagnosing patients with unclassified ciliopathies.
  • This case expands the known clinical spectrum of WDR19-associated ciliopathies.
Abstract

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