Dynamics of the Eukaryotic Replicative Helicase at Lagging-Strand Protein Barriers Support the Steric Exclusion Model.

Cell Rep

Single Molecule Imaging of Genome Duplication and Maintenance Laboratory, The Francis Crick Institute, NW1 1AT London, UK. Electronic address:

Published: February 2019

AI Article Synopsis

  • The replisome complex must maneuver past nucleoprotein barriers for effective DNA replication, particularly focusing on the role of the CMG helicase in unwinding the DNA double helix.
  • While proteins on the leading-strand template hinder the helicase's movement, the effect of similar proteins on the lagging strand is debated; however, this study indicates that when lagging-strand proteins are crosslinked, they can impede CMG and replisome progression by stabilizing the DNA duplex.
  • Notably, the CMG helicase seems to avoid interaction with the lagging-strand template during DNA unwinding, allowing multiple CMG helicases to operate concurrently during the initiation and termination of replication.

Article Abstract

Progression of DNA replication depends on the ability of the replisome complex to overcome nucleoprotein barriers. During eukaryotic replication, the CMG helicase translocates along the leading-strand template and unwinds the DNA double helix. While proteins bound to the leading-strand template efficiently block the helicase, the impact of lagging-strand protein obstacles on helicase translocation and replisome progression remains controversial. Here, we show that CMG and replisome progressions are impaired when proteins crosslinked to the lagging-strand template enhance the stability of duplex DNA. In contrast, proteins that exclusively interact with the lagging-strand template influence neither the translocation of isolated CMG nor replisome progression in Xenopus egg extracts. Our data imply that CMG completely excludes the lagging-strand template from the helicase central channel while unwinding DNA at the replication fork, which clarifies how two CMG helicases could freely cross one another during replication initiation and termination.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6381796PMC
http://dx.doi.org/10.1016/j.celrep.2019.01.086DOI Listing

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