Splicing mutation in TAZ gene leading to exon skipping and Barth syndrome

Larysa Sivitskaya1, Nina Danilenko1, Iryna Motuk2

  • 1Institute of Genetics and Cytology, National Academy of Sciences, Minsk, Belarus.

Insights

Barth syndrome, a genetic disorder affecting young boys, is caused by TAZ gene mutations. A new TAZ variant, c.239-1_239delinsTT, was identified, leading to pathogenic splicing alterations and disease symptoms.

Area of Science:

  • Genetics and Molecular Biology
  • Pediatric Cardiology
  • Rare Genetic Disorders

Background:

  • Barth syndrome is an X-linked disorder caused by tafazzin (TAZ) gene mutations, leading to cardiolipin deficiency and symptoms like cardiomyopathy and neutropenia.
  • Understanding TAZ gene function is crucial for diagnosing and potentially treating Barth syndrome.

Observation:

  • A 3-year-old boy presented with dilated cardiomyopathy, neutropenia, and growth retardation, indicative of Barth syndrome.
  • Genetic analysis revealed a novel TAZ gene variant, c.239-1_239delinsTT, at the intron 2-exon 3 junction.

Findings:

  • Functional studies demonstrated that the c.239-1_239delinsTT variant causes aberrant splicing, excising exon 3 and leading to a frameshift in the tafazzin protein.
  • This splicing defect results in a non-functional tafazzin protein, consistent with the pathogenic mechanisms of Barth syndrome.

Implications:

  • The identified TAZ variant c.239-1_239delinsTT is classified as pathogenic, expanding the known mutation spectrum for Barth syndrome.
  • This finding aids in the genetic diagnosis of Barth syndrome and highlights the importance of investigating splicing defects in TAZ gene-related disorders.

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