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Mutation effects on charge transport through the p58c iron-sulfur protein.

Publication ,  Journal Article
Teo, RD; Migliore, A; Beratan, DN
Published in: Chemical science
July 2020

Growing experimental evidence indicates that iron-sulfur proteins play key roles in DNA repair and replication. In particular, charge transport between [Fe4S4] clusters, mediated by proteins and DNA, may convey signals to coordinate enzyme action. Human primase is a well studied [Fe4S4] protein, and its p58c domain (which contains an [Fe4S4] cluster) plays a role in the initiation of DNA replication. The Y345C mutation in p58c is linked to gastric tumors and may influence the protein-mediated charge transport. The complexity of protein-DNA systems, and the intricate electronic structure of [Fe4S4] clusters, have impeded progress into understanding functional charge transport in these systems. In this study, we built force fields to describe the high potential [Fe4S4] cluster in both oxidation states. The parameterization is compatible with AMBER force fields and enabled well-balanced molecular dynamics simulations of the p58c-RNA/DNA complex relevant to the initiation of DNA replication. Using the molecular mechanics Poisson-Boltzmann and surface area solvation method on the molecular dynamics trajectories, we find that the p58c mutation induces a modest change in the p58c-duplex binding free energy in agreement with recent experiments. Through kinetic modeling and analysis, we identify key features of the main charge transport pathways in p58c. In particular, we find that the Y345C mutation partially changes the composition and frequency of the most efficient (and potentially relevant to the biological function) charge transport pathways between the [Fe4S4] cluster and the duplex. Moreover, our approach sets the stage for a deeper understanding of functional charge transfer in [Fe4S4] protein-DNA complexes.

Duke Scholars

Published In

Chemical science

DOI

EISSN

2041-6539

ISSN

2041-6520

Publication Date

July 2020

Volume

11

Issue

27

Start / End Page

7076 / 7085

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences
 

Citation

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Teo, R. D., Migliore, A., & Beratan, D. N. (2020). Mutation effects on charge transport through the p58c iron-sulfur protein. Chemical Science, 11(27), 7076–7085. https://doi.org/10.1039/d0sc02245d
Teo, Ruijie D., Agostino Migliore, and David N. Beratan. “Mutation effects on charge transport through the p58c iron-sulfur protein.Chemical Science 11, no. 27 (July 2020): 7076–85. https://doi.org/10.1039/d0sc02245d.
Teo RD, Migliore A, Beratan DN. Mutation effects on charge transport through the p58c iron-sulfur protein. Chemical science. 2020 Jul;11(27):7076–85.
Teo, Ruijie D., et al. “Mutation effects on charge transport through the p58c iron-sulfur protein.Chemical Science, vol. 11, no. 27, July 2020, pp. 7076–85. Epmc, doi:10.1039/d0sc02245d.
Teo RD, Migliore A, Beratan DN. Mutation effects on charge transport through the p58c iron-sulfur protein. Chemical science. 2020 Jul;11(27):7076–7085.
Journal cover image

Published In

Chemical science

DOI

EISSN

2041-6539

ISSN

2041-6520

Publication Date

July 2020

Volume

11

Issue

27

Start / End Page

7076 / 7085

Related Subject Headings

  • 34 Chemical sciences
  • 03 Chemical Sciences