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Parkash, Vimal
Publications (5 of 5) Show all publications
Forslund, J. M. .., Nguyen, T. V. H., Parkash, V., Berner, A., Goffart, S., Pohjoismäki, J. L. .., . . . Wanrooij, S. (2025). The POLγ Y951N patient mutation disrupts the switch between DNA synthesis and proofreading, triggering mitochondrial DNA instability. Proceedings of the National Academy of Sciences of the United States of America, 122(16), Article ID e2417477122.
Open this publication in new window or tab >>The POLγ Y951N patient mutation disrupts the switch between DNA synthesis and proofreading, triggering mitochondrial DNA instability
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2025 (English)In: Proceedings of the National Academy of Sciences of the United States of America, ISSN 0027-8424, E-ISSN 1091-6490, Vol. 122, no 16, article id e2417477122Article in journal (Refereed) Published
Abstract [en]

Mitochondrial DNA (mtDNA) stability, essential for cellular energy production, relies on DNA polymerase gamma (POLγ). Here, we show that the POLγ Y951N disease-causing mutation induces replication stalling and severe mtDNA depletion. However, unlike other POLγ disease-causing mutations, Y951N does not directly impair exonuclease activity and only mildly affects polymerase activity. Instead, we found that Y951N compromises the enzyme’s ability to efficiently toggle between DNA synthesis and degradation, and is thus a patient-derived mutation with impaired polymerase-exonuclease switching. These findings provide insights into the intramolecular switch when POLγ proofreads the newly synthesized DNA strand and reveal a new mechanism for causing mitochondrial DNA instability.

Place, publisher, year, edition, pages
Proceedings of the National Academy of Sciences (PNAS), 2025
Keywords
DNA polymerases, mitochondria, mitochondrial disease, mtDNA, mtDNA replication
National Category
Medical Genetics and Genomics
Identifiers
urn:nbn:se:umu:diva-238484 (URN)10.1073/pnas.2417477122 (DOI)40238457 (PubMedID)2-s2.0-105003483574 (Scopus ID)
Funder
Swedish Research Council, 2019-01874Swedish Cancer Society, 19 0022 JIASwedish Cancer Society, 22 2381 PjKnut and Alice Wallenberg Foundation, KAW 2021.0053Swedish Society of Medicine, S17-0023Swedish Research Council, 2021-01104Swedish Cancer Society, 23 2999 Pj
Available from: 2025-05-07 Created: 2025-05-07 Last updated: 2025-12-20Bibliographically approved
Parkash, V., Kulkarni, Y., Bylund, G. O., Osterman, P., Kamerlin, S. C. & Johansson, E. (2023). A sensor complements the steric gate when DNA polymerase ϵ discriminates ribonucleotides. Nucleic Acids Research, 51(20), 11225-11238
Open this publication in new window or tab >>A sensor complements the steric gate when DNA polymerase ϵ discriminates ribonucleotides
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2023 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 51, no 20, p. 11225-11238Article in journal (Refereed) Published
Abstract [en]

The cellular imbalance between high concentrations of ribonucleotides (NTPs) and low concentrations of deoxyribonucleotides (dNTPs), is challenging for DNA polymerases when building DNA from dNTPs. It is currently believed that DNA polymerases discriminate against NTPs through a steric gate model involving a clash between a tyrosine and the 2′-hydroxyl of the ribonucleotide in the polymerase active site in B-family DNA polymerases. With the help of crystal structures of a B-family polymerase with a UTP or CTP in the active site, molecular dynamics simulations, biochemical assays and yeast genetics, we have identified a mechanism by which the finger domain of the polymerase sense NTPs in the polymerase active site. In contrast to the previously proposed polar filter, our experiments suggest that the amino acid residue in the finger domain senses ribonucleotides by steric hindrance. Furthermore, our results demonstrate that the steric gate in the palm domain and the sensor in the finger domain are both important when discriminating NTPs. Structural comparisons reveal that the sensor residue is conserved among B-family polymerases and we hypothesize that a sensor in the finger domain should be considered in all types of DNA polymerases.

Place, publisher, year, edition, pages
Oxford University Press, 2023
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-218101 (URN)10.1093/nar/gkad817 (DOI)001186525200005 ()37819038 (PubMedID)2-s2.0-85178042069 (Scopus ID)
Funder
Vinnova, 2018-04969Swedish Research Council Formas, 2019-02496Swedish Cancer Society, 2018-05973Swedish Research Council, 2018-07152Swedish Research Council, 2019-03499Swedish Research Council, 2021-01104
Available from: 2023-12-15 Created: 2023-12-15 Last updated: 2025-04-24Bibliographically approved
Barbari, S. R., Beach, A. K., Markgren, J. G., Parkash, V., Moore, E. A., Johansson, E. & Shcherbakova, P. V. (2022). Enhanced polymerase activity permits efficient synthesis by cancer-Associated DNA polymerase variants at low dNTP levels. Nucleic Acids Research, 50(14), 8023-8040
Open this publication in new window or tab >>Enhanced polymerase activity permits efficient synthesis by cancer-Associated DNA polymerase variants at low dNTP levels
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2022 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 50, no 14, p. 8023-8040Article in journal (Refereed) Published
Abstract [en]

Amino acid substitutions in the exonuclease domain of DNA polymerase (Pol) cause ultramutated tumors. Studies in model organisms suggested pathogenic mechanisms distinct from a simple loss of exonuclease. These mechanisms remain unclear for most recurrent Pol mutations. Particularly, the highly prevalent V411L variant remained a long-standing puzzle with no detectable mutator effect in yeast despite the unequivocal association with ultramutation in cancers. Using purified four-subunit yeast Pol, we assessed the consequences of substitutions mimicking human V411L, S459F, F367S, L424V and D275V. While the effects on exonuclease activity vary widely, all common cancer-Associated variants have increased DNA polymerase activity. Notably, the analog of Pol-V411L is among the strongest polymerases, and structural analysis suggests defective polymerase-To-exonuclease site switching. We further show that the V411L analog produces a robust mutator phenotype in strains that lack mismatch repair, indicating a high rate of replication errors. Lastly, unlike wild-Type and exonuclease-dead Pol, hyperactive variants efficiently synthesize DNA at low dNTP concentrations. We propose that this characteristic could promote cancer cell survival and preferential participation of mutator polymerases in replication during metabolic stress. Our results support the notion that polymerase fitness, rather than low fidelity alone, is an important determinant of variant pathogenicity.

Place, publisher, year, edition, pages
Oxford University Press, 2022
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:umu:diva-199009 (URN)10.1093/nar/gkac602 (DOI)000823814600001 ()35822874 (PubMedID)2-s2.0-85136314031 (Scopus ID)
Funder
Swedish Cancer SocietySwedish Research Council, 2018-07152Vinnova, 2018-04969Swedish Research Council Formas, 2019-02496
Available from: 2022-09-02 Created: 2022-09-02 Last updated: 2024-07-02Bibliographically approved
Parkash, V., Kulkarni, Y., ter Beek, J., Shcherbakova, P. V., Kamerlin, S. C. & Johansson, E. (2019). Structural consequence of the most frequently recurring cancer-associated substitution in DNA polymerase epsilon. Nature Communications, 10, Article ID 373.
Open this publication in new window or tab >>Structural consequence of the most frequently recurring cancer-associated substitution in DNA polymerase epsilon
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2019 (English)In: Nature Communications, E-ISSN 2041-1723, Vol. 10, article id 373Article in journal (Refereed) Published
Abstract [en]

The most frequently recurring cancer-associated DNA polymerase epsilon (Pol epsilon) mutation is a P286R substitution in the exonuclease domain. While originally proposed to increase genome instability by disrupting exonucleolytic proofreading, the P286R variant was later found to be significantly more pathogenic than Pol epsilon proofreading deficiency per se. The mechanisms underlying its stronger impact remained unclear. Here we report the crystal structure of the yeast orthologue, Pol epsilon-P301R, complexed with DNA and an incoming dNTP. Structural changes in the protein are confined to the exonuclease domain, with R301 pointing towards the exonuclease site. Molecular dynamics simulations suggest that R301 interferes with DNA binding to the exonuclease site, an outcome not observed with the exonuclease-inactive Pol epsilon-D290A, E292A variant lacking the catalytic residues. These results reveal a distinct mechanism of exonuclease inactivation by the P301R substitution and a likely basis for its dramatically higher mutagenic and tumorigenic effects.

Place, publisher, year, edition, pages
Nature Publishing Group, 2019
National Category
Cell and Molecular Biology
Identifiers
urn:nbn:se:umu:diva-156315 (URN)10.1038/s41467-018-08114-9 (DOI)000456286400001 ()30670696 (PubMedID)2-s2.0-85060366876 (Scopus ID)
Available from: 2019-02-21 Created: 2019-02-21 Last updated: 2024-07-02Bibliographically approved
ter Beek, J., Parkash, V., Bylund, G., Osterman, P., Sauer-Eriksson, A. E. & Johansson, E. (2019). Structural evidence for an essential Fe–S cluster in the catalytic core domain of DNA polymerase ϵ. Nucleic Acids Research, 47(11), 5712-5722
Open this publication in new window or tab >>Structural evidence for an essential Fe–S cluster in the catalytic core domain of DNA polymerase ϵ
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2019 (English)In: Nucleic Acids Research, ISSN 0305-1048, E-ISSN 1362-4962, Vol. 47, no 11, p. 5712-5722Article in journal (Refereed) Published
Abstract [en]

DNA polymerase ϵ (Pol ϵ), the major leading-strand DNA polymerase in eukaryotes, has a catalytic subunit (Pol2) and three non-catalytic subunits. The N-terminal half of Pol2 (Pol2CORE) exhibits both polymerase and exonuclease activity. It has been suggested that both the non-catalytic C-terminal domain of Pol2 (with the two cysteine motifs CysA and CysB) and Pol2CORE (with the CysX cysteine motif) are likely to coordinate an Fe–S cluster. Here, we present two new crystal structures of Pol2CORE with an Fe–S cluster bound to the CysX motif, supported by an anomalous signal at that position. Furthermore we show that purified four-subunit Pol ϵ, Pol ϵ CysAMUT (C2111S/C2133S), and Pol ϵ CysBMUT (C2167S/C2181S) all have an Fe–S cluster that is not present in Pol ϵ CysXMUT (C665S/C668S). Pol ϵ CysAMUT and Pol ϵ CysBMUT behave similarly to wild-type Pol ϵ in in vitro assays, but Pol ϵ CysXMUT has severely compromised DNA polymerase activity that is not the result of an excessive exonuclease activity. Tetrad analyses show that haploid yeast strains carrying CysXMUT are inviable. In conclusion, Pol ϵ has a single Fe–S cluster bound at the base of the P-domain, and this Fe–S cluster is essential for cell viability and polymerase activity.

Place, publisher, year, edition, pages
Oxford University Press, 2019
National Category
Biochemistry Molecular Biology
Identifiers
urn:nbn:se:umu:diva-161925 (URN)10.1093/nar/gkz248 (DOI)000475702000027 ()30968138 (PubMedID)2-s2.0-85068487970 (Scopus ID)
Available from: 2019-08-06 Created: 2019-08-06 Last updated: 2025-02-20Bibliographically approved
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