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Single-molecule view of coordination in a multi-functional DNA polymerase.


ABSTRACT: Replication and repair of genomic DNA requires the actions of multiple enzymatic functions that must be coordinated in order to ensure efficient and accurate product formation. Here, we have used single-molecule FRET microscopy to investigate the physical basis of functional coordination in DNA polymerase I (Pol I) from Escherichia coli, a key enzyme involved in lagging-strand replication and base excision repair. Pol I contains active sites for template-directed DNA polymerization and 5' flap processing in separate domains. We show that a DNA substrate can spontaneously transfer between polymerase and 5' nuclease domains during a single encounter with Pol I. Additionally, we show that the flexibly tethered 5' nuclease domain adopts different positions within Pol I-DNA complexes, depending on the nature of the DNA substrate. Our results reveal the structural dynamics that underlie functional coordination in Pol I and are likely relevant to other multi-functional DNA polymerases.

SUBMITTER: Pauszek RF 

PROVIDER: S-EPMC7952088 | biostudies-literature | 2021 Mar

REPOSITORIES: biostudies-literature

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Single-molecule view of coordination in a multi-functional DNA polymerase.

Pauszek Raymond F RF   Lamichhane Rajan R   Rajkarnikar Singh Arishma A   Millar David P DP  

eLife 20210311


Replication and repair of genomic DNA requires the actions of multiple enzymatic functions that must be coordinated in order to ensure efficient and accurate product formation. Here, we have used single-molecule FRET microscopy to investigate the physical basis of functional coordination in DNA polymerase I (Pol I) from <i>Escherichia coli</i>, a key enzyme involved in lagging-strand replication and base excision repair. Pol I contains active sites for template-directed DNA polymerization and 5'  ...[more]

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