Mitochondrial ribosomal protein PTCD3 mutations cause oxidative phosphorylation defects with Leigh syndrome

Nurun Nahar Borna1, Yoshihito Kishita1, Masakazu Kohda1

  • 1Diagnostics and Therapeutics of Intractable Diseases, Intractable Disease Research Center, Graduate School of Medicine, Juntendo University, Hongo 2-1-1, Bunkyo-ku, Tokyo, 113-8421, Japan.

Neurogenetics
|January 5, 2019
PubMed

Insights

Mutations in PTCD3 (pentatricopeptide repeat domain 3) cause Leigh syndrome, a severe genetic disorder. This study identifies PTCD3 variants linked to mitochondrial translation defects and combined oxidative phosphorylation deficiencies.

Area of Science:

  • Biochemistry
  • Genetics
  • Molecular Biology

Background:

  • Pentatricopeptide repeat domain proteins regulate mitochondrial RNA processes.
  • Defects in mitochondrial translation machinery cause human genetic diseases.

Observation:

  • A patient presented with low birth weight, mental retardation, optic atrophy, and Leigh syndrome.
  • Brain MRI revealed abnormal signals in the basal ganglia and brainstem.

Findings:

  • Exome sequencing identified two loss-of-function variants in PTCD3 (MRPS39).
  • The patient exhibited decreased mitochondrial complex I and IV activity, impaired oxygen consumption, and generalized mitochondrial translation defects.
  • Quantitative proteomics showed reduced levels of small mitoribosomal subunits.

Implications:

  • This is the first report linking PTCD3 mutations to Leigh syndrome and combined oxidative phosphorylation deficiencies.
  • PTCD3 variants disrupt mitochondrial translation, leading to severe neurological and metabolic dysfunction.
  • Complementation experiments validated the pathogenicity of the identified PTCD3 variants.

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