Cargando…

Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation

During eukaryotic DNA replication, DNA polymerase alpha/primase (Pol α) initiates synthesis on both the leading and lagging strands. It is unknown whether leading- and lagging-strand priming are mechanistically identical, and whether Pol α associates processively or distributively with the replisome...

Descripción completa

Detalles Bibliográficos
Autores principales: Porcella, Sarina Y., Koussa, Natasha C., Tang, Colin P., Kramer, Daphne N., Srivastava, Priyanka, Smith, Duncan J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7237047/
https://www.ncbi.nlm.nih.gov/pubmed/32379761
http://dx.doi.org/10.1371/journal.pgen.1008755
_version_ 1783536258135359488
author Porcella, Sarina Y.
Koussa, Natasha C.
Tang, Colin P.
Kramer, Daphne N.
Srivastava, Priyanka
Smith, Duncan J.
author_facet Porcella, Sarina Y.
Koussa, Natasha C.
Tang, Colin P.
Kramer, Daphne N.
Srivastava, Priyanka
Smith, Duncan J.
author_sort Porcella, Sarina Y.
collection PubMed
description During eukaryotic DNA replication, DNA polymerase alpha/primase (Pol α) initiates synthesis on both the leading and lagging strands. It is unknown whether leading- and lagging-strand priming are mechanistically identical, and whether Pol α associates processively or distributively with the replisome. Here, we titrate cellular levels of Pol α in S. cerevisiae and analyze Okazaki fragments to study both replication initiation and ongoing lagging-strand synthesis in vivo. We observe that both Okazaki fragment initiation and the productive firing of replication origins are sensitive to Pol α abundance, and that both processes are disrupted at similar Pol α concentrations. When the replisome adaptor protein Ctf4 is absent or cannot interact with Pol α, lagging-strand initiation is impaired at Pol α concentrations that still support normal origin firing. Additionally, we observe that activation of the checkpoint becomes essential for viability upon severe depletion of Pol α. Using strains in which the Pol α-Ctf4 interaction is disrupted, we demonstrate that this checkpoint requirement is not solely caused by reduced lagging-strand priming. Our results suggest that Pol α recruitment for replication initiation and ongoing lagging-strand priming are distinctly sensitive to the presence of Ctf4. We propose that the global changes we observe in Okazaki fragment length and origin firing efficiency are consistent with distributive association of Pol α at the replication fork, at least when Pol α is limiting.
format Online
Article
Text
id pubmed-7237047
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-72370472020-06-03 Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation Porcella, Sarina Y. Koussa, Natasha C. Tang, Colin P. Kramer, Daphne N. Srivastava, Priyanka Smith, Duncan J. PLoS Genet Research Article During eukaryotic DNA replication, DNA polymerase alpha/primase (Pol α) initiates synthesis on both the leading and lagging strands. It is unknown whether leading- and lagging-strand priming are mechanistically identical, and whether Pol α associates processively or distributively with the replisome. Here, we titrate cellular levels of Pol α in S. cerevisiae and analyze Okazaki fragments to study both replication initiation and ongoing lagging-strand synthesis in vivo. We observe that both Okazaki fragment initiation and the productive firing of replication origins are sensitive to Pol α abundance, and that both processes are disrupted at similar Pol α concentrations. When the replisome adaptor protein Ctf4 is absent or cannot interact with Pol α, lagging-strand initiation is impaired at Pol α concentrations that still support normal origin firing. Additionally, we observe that activation of the checkpoint becomes essential for viability upon severe depletion of Pol α. Using strains in which the Pol α-Ctf4 interaction is disrupted, we demonstrate that this checkpoint requirement is not solely caused by reduced lagging-strand priming. Our results suggest that Pol α recruitment for replication initiation and ongoing lagging-strand priming are distinctly sensitive to the presence of Ctf4. We propose that the global changes we observe in Okazaki fragment length and origin firing efficiency are consistent with distributive association of Pol α at the replication fork, at least when Pol α is limiting. Public Library of Science 2020-05-07 /pmc/articles/PMC7237047/ /pubmed/32379761 http://dx.doi.org/10.1371/journal.pgen.1008755 Text en © 2020 Porcella et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Porcella, Sarina Y.
Koussa, Natasha C.
Tang, Colin P.
Kramer, Daphne N.
Srivastava, Priyanka
Smith, Duncan J.
Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title_full Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title_fullStr Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title_full_unstemmed Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title_short Separable, Ctf4-mediated recruitment of DNA Polymerase α for initiation of DNA synthesis at replication origins and lagging-strand priming during replication elongation
title_sort separable, ctf4-mediated recruitment of dna polymerase α for initiation of dna synthesis at replication origins and lagging-strand priming during replication elongation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7237047/
https://www.ncbi.nlm.nih.gov/pubmed/32379761
http://dx.doi.org/10.1371/journal.pgen.1008755
work_keys_str_mv AT porcellasarinay separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation
AT koussanatashac separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation
AT tangcolinp separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation
AT kramerdaphnen separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation
AT srivastavapriyanka separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation
AT smithduncanj separablectf4mediatedrecruitmentofdnapolymeraseaforinitiationofdnasynthesisatreplicationoriginsandlaggingstrandprimingduringreplicationelongation