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Updated: Aug 3, 2026

Simultaneous Mapping and Quantitation of Ribonucleotides in Human Mitochondrial DNA
Published on: November 14, 2017
In vivo functional analysis of the human mitochondrial DNA polymerase POLG expressed in cultured human cells
J N Spelbrink1, J M Toivonen, G A Hakkaart
1Institute of Medical Technology and Tampere University Hospital, University of Tampere, 33101 Tampere, Finland.
Abstract:
The human gene POLG encodes the catalytic subunit of mitochondrial DNA polymerase, but its precise roles in mtDNA metabolism in vivo have not hitherto been documented. By expressing POLG fusion proteins in cultured human cells, we show that the enzyme is targeted to mitochondria, where the Myc epitope-tagged POLG is catalytically active as a DNA polymerase. Long-term culture of cells expressing wild-type POLG-myc revealed no alterations in mitochondrial function. Expression of POLG-myc mutants created dominant phenotypes demonstrating important roles for the protein in mtDNA maintenance and integrity. The D198A amino acid replacement abolished detectable 3'-5' (proofreading) exonuclease activity and led to the accumulation of a significant load (1:1700) of mtDNA point mutations during 3 months of continuous culture. Further culture resulted in the selection of cells with an inactivated mutator polymerase, and a reduced mutation load in mtDNA. Transient expression of POLG-myc variants D890N or D1135A inhibited endogenous mitochondrial DNA polymerase activity and caused mtDNA depletion. Deletion of the POLG CAG repeat did not affect enzymatic properties, but modestly up-regulated expression. These findings demonstrate that POLG exonuclease and polymerase functions are essential for faithful mtDNA maintenance in vivo, and indicate the importance of key residues for these activities.
Insights
The POLG gene
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- The POLG gene encodes the catalytic subunit of mitochondrial DNA polymerase.
- Its in vivo roles in mitochondrial DNA (mtDNA) metabolism are not fully understood.
Purpose of the Study:
- To elucidate the in vivo functions of POLG in mtDNA maintenance and integrity.
- To investigate the roles of POLG's polymerase and exonuclease activities.
Main Methods:
- Expression of wild-type and mutant POLG-myc fusion proteins in cultured human cells.
- Assessment of mitochondrial function, mtDNA mutation load, and polymerase activity.
- Analysis of POLG variants with specific amino acid substitutions (D198A, D890N, D1135A) and CAG repeat deletion.
Main Results:
- POLG is targeted to mitochondria and exhibits catalytic DNA polymerase activity.
- Mutant POLG variants demonstrated critical roles in mtDNA maintenance.
- The D198A mutation abolished proofreading, leading to increased mtDNA point mutations.
- Other mutants inhibited polymerase activity and caused mtDNA depletion.
- POLG's exonuclease and polymerase functions are essential for mtDNA integrity.
Conclusions:
- POLG's polymerase and exonuclease activities are vital for maintaining mtDNA fidelity in vivo.
- Specific amino acid residues are crucial for POLG's enzymatic functions.
- Dysfunctional POLG can lead to mtDNA mutations and depletion, impacting mitochondrial health.
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Errors During Replication are Corrected by the DNA Polymerase Enzyme

