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Updated: Jun 2, 2026

Genotyping Single Nucleotide Polymorphisms in the Mitochondrial Genome by Pyrosequencing
Published on: February 10, 2023
Biochemical analysis of human POLG2 variants associated with mitochondrial disease
Matthew J Young1, Matthew J Longley, Fang-Yuan Li
1Laboratory of Molecular Genetics, NIEHS, National Institutes of Health, DHHS, Research Triangle Park, NC 27709, USA.
Abstract:
Defects in mitochondrial DNA (mtDNA) maintenance comprise an expanding repertoire of polymorphic diseases caused, in part, by mutations in the genes encoding the p140 mtDNA polymerase (POLG), its p55 accessory subunit (POLG2) or the mtDNA helicase (C10orf2). In an exploration of nuclear genes for mtDNA maintenance linked to mitochondrial disease, eight heterozygous mutations (six novel) in POLG2 were identified in one control and eight patients with POLG-related mitochondrial disease that lacked POLG mutations. Of these eight mutations, we biochemically characterized seven variants [c.307G>A (G103S); c.457C>G (L153V); c.614C>G (P205R); c.1105A>G (R369G); c.1158T>G (D386E); c.1268C>A (S423Y); c.1423_1424delTT (L475DfsX2)] that were previously uncharacterized along with the wild-type protein and the G451E pathogenic variant. These seven mutations encode amino acid substitutions that map throughout the protein, including the p55 dimer interface and the C-terminal domain that interacts with the catalytic subunit. Recombinant proteins harboring these alterations were assessed for stimulation of processive DNA synthesis, binding to the p140 catalytic subunit, binding to dsDNA and self-dimerization. Whereas the G103S, L153V, D386E and S423Y proteins displayed wild-type behavior, the P205R and R369G p55 variants had reduced stimulation of processivity and decreased affinity for the catalytic subunit. Additionally, the L475DfsX2 variant, which possesses a C-terminal truncation, was unable to bind the p140 catalytic subunit, unable to bind dsDNA and formed aberrant oligomeric complexes. Our biochemical analysis helps explain the pathogenesis of POLG2 mutations in mitochondrial disease and emphasizes the need to quantitatively characterize the biochemical consequences of newly discovered mutations before classifying them as pathogenic.
Insights
Mitochondrial DNA maintenance disorders can stem from mutations in POLG2, the gene for the p55 accessory subunit. This study biochemically characterized seven novel POLG2 variants, revealing how specific mutations impair protein function and contribute to disease pathogenesis.
Area of Science:
- Genetics
- Molecular Biology
- Biochemistry
Background:
- Mitochondrial DNA (mtDNA) maintenance is crucial for cellular health, with defects leading to various diseases.
- Mutations in genes like POLG (encoding the catalytic subunit) and POLG2 (encoding the accessory subunit) are known causes of mtDNA maintenance disorders.
Purpose of the Study:
- To investigate the functional consequences of novel heterozygous mutations in the POLG2 gene.
- To biochemically characterize seven previously uncharacterized POLG2 variants found in patients with POLG-related mitochondrial disease.
Main Methods:
- Identification of POLG2 mutations in patients lacking POLG mutations.
- Biochemical characterization of seven novel POLG2 variants and one known pathogenic variant.
- Assessment of recombinant proteins for DNA synthesis stimulation, subunit binding, dsDNA binding, and self-dimerization.
Main Results:
- Four POLG2 variants (G103S, L153V, D386E, S423Y) exhibited wild-type protein behavior.
- Two variants (P205R, R369G) showed reduced processivity stimulation and decreased affinity for the POLG catalytic subunit.
- One variant (L475DfsX2) with a C-terminal truncation was unable to bind POLG, dsDNA, and formed aberrant complexes.
Conclusions:
- The study elucidates the pathogenic mechanisms of specific POLG2 mutations in mitochondrial disease.
- Biochemical characterization is essential for accurately classifying the pathogenicity of newly discovered mutations.
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