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.
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.
Abstract:
Pentatricopeptide repeat domain proteins are a large family of RNA-binding proteins involved in mitochondrial RNA editing, stability, and translation. Mitochondrial translation machinery defects are an expanding group of genetic diseases in humans. We describe a patient who presented with low birth weight, mental retardation, and optic atrophy. Brain MRI showed abnormal bilateral signals at the basal ganglia and brainstem, and the patient was diagnosed as Leigh syndrome. Exome sequencing revealed two potentially loss-of-function variants [c.415-2A>G, and c.1747_1748insCT (p.Phe583Serfs*3)] in PTCD3 (also known as MRPS39). PTCD3, a member of the pentatricopeptide repeat domain protein family, is a component of the small mitoribosomal subunit. The patient had marked decreases in mitochondrial complex I and IV levels and activities, oxygen consumption and ATP biosynthesis, and generalized mitochondrial translation defects in fibroblasts. Quantitative proteomic analysis revealed decreased levels of the small mitoribosomal subunits. Complementation experiments rescued oxidative phosphorylation complex I and IV levels and activities, ATP biosynthesis, and MT-RNR1 rRNA transcript level, providing functional validation of the pathogenicity of identified variants. This is the first report of an association of PTCD3 mutations with Leigh syndrome along with combined oxidative phosphorylation deficiencies caused by defects in the mitochondrial translation machinery.
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