Structure-specific roles for PolG2–DNA complexes in maintenance and replication of mitochondrial DNA

Author:

Wojtaszek Jessica L1,Hoff Kirsten E1,Longley Matthew J1,Kaur Parminder23,Andres Sara N1ORCID,Wang Hong234,Williams R Scott1ORCID,Copeland William C1ORCID

Affiliation:

1. Genome Integrity and Structural Biology Laboratory, National Institute of Environmental Health Sciences, National Institutes of Health , Research Triangle Park, NC  27709 , USA

2. Physics Department, North Carolina State University , Raleigh , NC  27695 , USA

3. Center for Human Health and the Environment, North Carolina State University , Raleigh , NC  27695 , USA

4. Toxicology Program, North Carolina State University , Raleigh , NC  27695 , USA

Abstract

AbstractThe homodimeric PolG2 accessory subunit of the mitochondrial DNA polymerase gamma (Pol γ) enhances DNA binding and processive DNA synthesis by the PolG catalytic subunit. PolG2 also directly binds DNA, although the underlying molecular basis and functional significance are unknown. Here, data from Atomic Force Microscopy (AFM) and X-ray structures of PolG2–DNA complexes define dimeric and hexameric PolG2 DNA binding modes. Targeted disruption of PolG2 DNA-binding interfaces impairs processive DNA synthesis without diminishing Pol γ subunit affinities. In addition, a structure-specific DNA-binding role for PolG2 oligomers is supported by X-ray structures and AFM showing that oligomeric PolG2 localizes to DNA crossings and targets forked DNA structures resembling the mitochondrial D-loop. Overall, data indicate that PolG2 DNA binding has both PolG-dependent and -independent functions in mitochondrial DNA replication and maintenance, which provide new insight into molecular defects associated with PolG2 disruption in mitochondrial disease.

Funder

National Institutes of Health

North Carolina State University Center for Human Health and the Environment Pilot Project

U.S. Department of Energy

Office of Science

Office of Basic Energy Sciences

Publisher

Oxford University Press (OUP)

Subject

Genetics

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