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The [4Fe4S] cluster of human DNA primase functions as a redox switch using DNA charge transport.


ABSTRACT: DNA charge transport chemistry offers a means of long-range, rapid redox signaling. We demonstrate that the [4Fe4S] cluster in human DNA primase can make use of this chemistry to coordinate the first steps of DNA synthesis. Using DNA electrochemistry, we found that a change in oxidation state of the [4Fe4S] cluster acts as a switch for DNA binding. Single-atom mutations that inhibit this charge transfer hinder primase initiation without affecting primase structure or polymerization. Generating a single base mismatch in the growing primer duplex, which attenuates DNA charge transport, inhibits primer truncation. Thus, redox signaling by [4Fe4S] clusters using DNA charge transport regulates primase binding to DNA and illustrates chemistry that may efficiently drive substrate handoff between polymerases during DNA replication.

SUBMITTER: O'Brien E 

PROVIDER: S-EPMC5338353 | biostudies-literature | 2017 Feb

REPOSITORIES: biostudies-literature

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The [4Fe4S] cluster of human DNA primase functions as a redox switch using DNA charge transport.

O'Brien Elizabeth E   Holt Marilyn E ME   Thompson Matthew K MK   Salay Lauren E LE   Ehlinger Aaron C AC   Chazin Walter J WJ   Barton Jacqueline K JK  

Science (New York, N.Y.) 20170201 6327


DNA charge transport chemistry offers a means of long-range, rapid redox signaling. We demonstrate that the [4Fe4S] cluster in human DNA primase can make use of this chemistry to coordinate the first steps of DNA synthesis. Using DNA electrochemistry, we found that a change in oxidation state of the [4Fe4S] cluster acts as a switch for DNA binding. Single-atom mutations that inhibit this charge transfer hinder primase initiation without affecting primase structure or polymerization. Generating a  ...[more]

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