Point mutations V546E and D547H of the RBM-B motif does not affect the binding of PrimPol to RPA and DNA
- Authors: Manukyan A.A.1, Makarova A.V.1,2, Boldinova E.O.1,2
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Affiliations:
- National Research Center “Kurchatov Institute”
- Institute of Gene Biology, Russian Academy of Sciences
- Issue: Vol 58, No 5 (2024)
- Pages: 840-848
- Section: СТРУКТУРНО-ФУНКЦИОНАЛЬНЫЙ АНАЛИЗ БИОПОЛИМЕРОВИ ИХ КОМПЛЕКСОВ
- URL: https://rjdentistry.com/0026-8984/article/view/683307
- DOI: https://doi.org/10.31857/S0026898424050122
- EDN: https://elibrary.ru/HUAYQY
- ID: 683307
Cite item
Abstract
The human primase-polymerase PrimPol is a key participant of the mechanism of DNA synthesis restart during replication fork stalling at DNA damaged sites. PrimPol has a DNA primase activity and synthesizes DNA primers that are used by processive DNA polymerases to continue replication. Recruitment of PrimPol to the sites of DNA damage, as well as catalytic activity stimulation depends on interaction with the replicative protein RPA, which binds single-stranded DNA. The C-terminal domain of PrimPol contains a negatively charged RPA-binding motif (RBM), which mutations disrupt the interaction between two proteins. The RBM motif also plays a role in the negative regulation of PrimPol interaction with DNA. Deletion of RBM dramatically increases PrimPol affinity to DNA and stimulates PrimPol activity. The mechanism of RBM-mediated regulation of PrimPol activity is unclear. The relatively strong negative charge of RBM potentially may contribute to the interaction of PrimPol with RPA and DNA. RBM contains two negatively charged regions RBM-A and RBM-B. In this work, we additionally added (substitution V546E) or decreased (substitution D547H) the negative charge in RBM-B PrimPol and characterized these mutant variants biochemically. It was shown that the local change of RBM-B charge has no effect on the interaction of PrimPol with DNA and RPA, as well as the catalytic activity of the enzyme.
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About the authors
A. A. Manukyan
National Research Center “Kurchatov Institute”
Email: lizaboldinova@yandex.ru
Russian Federation, Moscow, 123182
A. V. Makarova
National Research Center “Kurchatov Institute”; Institute of Gene Biology, Russian Academy of Sciences
Email: lizaboldinova@yandex.ru
Russian Federation, Moscow, 123182; Moscow, 119334
E. O. Boldinova
National Research Center “Kurchatov Institute”; Institute of Gene Biology, Russian Academy of Sciences
Author for correspondence.
Email: lizaboldinova@yandex.ru
Russian Federation, Moscow, 123182; Moscow, 119334
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