DNA polymerase gamma (Polγ) forms stable complexes with RNA–DNA primer–template substrates, exhibiting greater stability and lower misincorporation than on DNA-primed substrates and has implications for understanding the molecular basis of mitochondrial disease.
Abstract
Abstract Defects in human mitochondrial DNA (mtDNA) replication can lead to somatic mutations associated with a range of devastating mitochondrial diseases. However, the molecular mechanisms governing the earliest steps of mtDNA replication and their fidelity remain poorly understood. Here, we found that DNA polymerase gamma (Polγ) forms stable complexes with RNA–DNA primer–template substrates, exhibiting greater stability and lower misincorporation than on DNA-primed substrates. Structural analysis revealed that Polγ interacts with the 2′-OH groups of ribose within the first four nucleotides of the primer, explaining the stability of complexes that utilize RNA primers. Although Polγ requires TWINKLE to extend RNA primers, its intrinsic strand-displacement activity allows it to extend DNA primers independently. Structural data further show that the strand-separation mechanism in human Polγ is distinct from that of its yeast paralog, Mip1, and involves previously unresolved elements—the catcher and a GP loop in the exonuclease domain—that support intrinsic strand-displacement synthesis by Polγ. Structure-guided mutagenesis of elements involved in strand separation supports these structural observations. Together, our study provides mechanistic insight into mtDNA replication initiation and strand separation and has implications for understanding the molecular basis of mitochondrial disease.
Mitochondrial DNA (mtDNA) maintenance is essential for cellular homeostasis, and defects in mtDNA replication are linked to a broad spectrum of mitochondrial diseases. During replication, DNA polymerase γ (Polγ) must traverse duplex junctions and stable secondary structures, yet how the human enzyme overcomes these bar...
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