Cargando…

The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling

[Image: see text] Many DNA replication and DNA repair enzymes have been found to carry [4Fe4S] clusters. The major leading strand polymerase, DNA polymerase ε (Pol ε) from Saccharomyces cerevisiae, was recently reported to have a [4Fe4S] cluster located within the catalytic domain of the largest sub...

Descripción completa

Detalles Bibliográficos
Autores principales: Pinto, Miguel N., ter Beek, Josy, Ekanger, Levi A., Johansson, Erik, Barton, Jacqueline K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8499023/
https://www.ncbi.nlm.nih.gov/pubmed/34559527
http://dx.doi.org/10.1021/jacs.1c07150
_version_ 1784580289522040832
author Pinto, Miguel N.
ter Beek, Josy
Ekanger, Levi A.
Johansson, Erik
Barton, Jacqueline K.
author_facet Pinto, Miguel N.
ter Beek, Josy
Ekanger, Levi A.
Johansson, Erik
Barton, Jacqueline K.
author_sort Pinto, Miguel N.
collection PubMed
description [Image: see text] Many DNA replication and DNA repair enzymes have been found to carry [4Fe4S] clusters. The major leading strand polymerase, DNA polymerase ε (Pol ε) from Saccharomyces cerevisiae, was recently reported to have a [4Fe4S] cluster located within the catalytic domain of the largest subunit, Pol2. Here the redox characteristics of the [4Fe4S] cluster in the context of that domain, Pol2(CORE), are explored using DNA electrochemistry, and the effects of oxidation and rereduction on polymerase activity are examined. The exonuclease deficient variant D290A/E292A, Pol2(CORE)exo(–), was used to limit DNA degradation. While no redox signal is apparent for Pol2(CORE)exo(–) on DNA-modified electrodes, a large cathodic signal centered at −140 mV vs NHE is observed after bulk oxidation. A double cysteine to serine mutant (C665S/C668S) of Pol2(CORE)exo(–), which lacks the [4Fe4S] cluster, shows no similar redox signal upon oxidation. Significantly, protein oxidation yields a sharp decrease in polymerization, while rereduction restores activity almost to the level of untreated enzyme. Moreover, the addition of reduced EndoIII, a bacterial DNA repair enzyme containing [4Fe4S](2+), to oxidized Pol2(CORE)exo(–) bound to its DNA substrate also significantly restores polymerase activity. In contrast, parallel experiments with EndoIII(Y82A), a variant of EndoIII, defective in DNA charge transport (CT), does not show restoration of activity of Pol2(CORE)exo(–). We propose a model in which EndoIII bound to the DNA duplex may shuttle electrons through DNA to the DNA-bound oxidized Pol2(CORE)exo(–) via DNA CT and that this DNA CT signaling offers a means to modulate the redox state and replication by Pol ε.
format Online
Article
Text
id pubmed-8499023
institution National Center for Biotechnology Information
language English
publishDate 2021
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-84990232021-10-12 The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling Pinto, Miguel N. ter Beek, Josy Ekanger, Levi A. Johansson, Erik Barton, Jacqueline K. J Am Chem Soc [Image: see text] Many DNA replication and DNA repair enzymes have been found to carry [4Fe4S] clusters. The major leading strand polymerase, DNA polymerase ε (Pol ε) from Saccharomyces cerevisiae, was recently reported to have a [4Fe4S] cluster located within the catalytic domain of the largest subunit, Pol2. Here the redox characteristics of the [4Fe4S] cluster in the context of that domain, Pol2(CORE), are explored using DNA electrochemistry, and the effects of oxidation and rereduction on polymerase activity are examined. The exonuclease deficient variant D290A/E292A, Pol2(CORE)exo(–), was used to limit DNA degradation. While no redox signal is apparent for Pol2(CORE)exo(–) on DNA-modified electrodes, a large cathodic signal centered at −140 mV vs NHE is observed after bulk oxidation. A double cysteine to serine mutant (C665S/C668S) of Pol2(CORE)exo(–), which lacks the [4Fe4S] cluster, shows no similar redox signal upon oxidation. Significantly, protein oxidation yields a sharp decrease in polymerization, while rereduction restores activity almost to the level of untreated enzyme. Moreover, the addition of reduced EndoIII, a bacterial DNA repair enzyme containing [4Fe4S](2+), to oxidized Pol2(CORE)exo(–) bound to its DNA substrate also significantly restores polymerase activity. In contrast, parallel experiments with EndoIII(Y82A), a variant of EndoIII, defective in DNA charge transport (CT), does not show restoration of activity of Pol2(CORE)exo(–). We propose a model in which EndoIII bound to the DNA duplex may shuttle electrons through DNA to the DNA-bound oxidized Pol2(CORE)exo(–) via DNA CT and that this DNA CT signaling offers a means to modulate the redox state and replication by Pol ε. American Chemical Society 2021-09-24 2021-10-06 /pmc/articles/PMC8499023/ /pubmed/34559527 http://dx.doi.org/10.1021/jacs.1c07150 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Pinto, Miguel N.
ter Beek, Josy
Ekanger, Levi A.
Johansson, Erik
Barton, Jacqueline K.
The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title_full The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title_fullStr The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title_full_unstemmed The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title_short The [4Fe4S] Cluster of Yeast DNA Polymerase ε Is Redox Active and Can Undergo DNA-Mediated Signaling
title_sort the [4fe4s] cluster of yeast dna polymerase ε is redox active and can undergo dna-mediated signaling
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8499023/
https://www.ncbi.nlm.nih.gov/pubmed/34559527
http://dx.doi.org/10.1021/jacs.1c07150
work_keys_str_mv AT pintomigueln the4fe4sclusterofyeastdnapolymeraseeisredoxactiveandcanundergodnamediatedsignaling
AT terbeekjosy the4fe4sclusterofyeastdnapolymeraseeisredoxactiveandcanundergodnamediatedsignaling
AT ekangerlevia the4fe4sclusterofyeastdnapolymeraseeisredoxactiveandcanundergodnamediatedsignaling
AT johanssonerik the4fe4sclusterofyeastdnapolymeraseeisredoxactiveandcanundergodnamediatedsignaling
AT bartonjacquelinek the4fe4sclusterofyeastdnapolymeraseeisredoxactiveandcanundergodnamediatedsignaling