ITPase deficiency causes a Martsolf-like syndrome with a lethal infantile dilated cardiomyopathy

Mark T Handley1,2, Kaalak Reddy1,3, Jimi Wills4

  • 1MRC Human Genetics Unit, Institute of Genomic and Molecular Medicine, University of Edinburgh, Edinburgh, United Kingdom.

Plos Genetics
|March 12, 2019
PubMed

Insights

New genetic analysis reveals homozygous null mutations in the ITPA gene cause a lethal Martsolf-like syndrome with infantile dilated cardiomyopathy, distinct from typical Martsolf syndrome.

Area of Science:

  • Genetics
  • Molecular Biology
  • Biochemistry

Background:

  • Martsolf syndrome is a rare genetic disorder typically caused by mutations in RAB3GAP1 or RAB3GAP2, presenting with congenital cataracts, microcephaly, and developmental delay.
  • Previous research has linked severe inosine triphosphate pyrophosphatase (ITPase) deficiency to infantile epileptic encephalopathy.

Observation:

  • Genetic analysis of 85 "mutation negative" Martsolf/Martsolf-like syndrome cases identified two individuals with homozygous null mutations in the ITPA gene.
  • These individuals presented with a distinct, lethal disorder characterized by infantile-onset dilated cardiomyopathy, a Martsolf-like syndrome.

Findings:

  • ITPA encodes inosine triphosphate pyrophosphatase (ITPase), an enzyme crucial for preventing the incorporation of inosine bases (rI/dI) into RNA and DNA.
  • While deoxyinosine (dI) was undetectable in genomic DNA of Itpa-null cells, it was present at low levels in mtDNA without causing instability or dysfunction.
  • Ribosylinosine (rI) accumulated in RNA of proband-derived cells and in tissues of Itpa-null mouse embryos, particularly the heart. Transcriptome and proteome analyses showed no major differences, indicating the cellulopathy's basis remains unclear.

Implications:

  • This discovery expands the genetic basis of Martsolf-like syndromes, identifying ITPA mutations as a cause of a severe, lethal infantile disorder.
  • The findings highlight the critical role of ITPase in preventing RNA/DNA damage and suggest rI accumulation correlates with organ dysfunction severity.
  • Further research is needed to elucidate the precise molecular mechanisms underlying the cellulopathy in ITPase deficiency.

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