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The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism

Production of concatemeric DNA is an essential step during HSV infection, as the packaging machinery must recognize longer-than-unit-length concatemers; however, the mechanism by which they are formed is poorly understood. Although it has been proposed that the viral genome circularizes and rolling...

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Autores principales: Schumacher, April J., Mohni, Kareem N., Kan, Yinan, Hendrickson, Eric A., Stark, Jeremy M., Weller, Sandra K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3415443/
https://www.ncbi.nlm.nih.gov/pubmed/22912580
http://dx.doi.org/10.1371/journal.ppat.1002862
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author Schumacher, April J.
Mohni, Kareem N.
Kan, Yinan
Hendrickson, Eric A.
Stark, Jeremy M.
Weller, Sandra K.
author_facet Schumacher, April J.
Mohni, Kareem N.
Kan, Yinan
Hendrickson, Eric A.
Stark, Jeremy M.
Weller, Sandra K.
author_sort Schumacher, April J.
collection PubMed
description Production of concatemeric DNA is an essential step during HSV infection, as the packaging machinery must recognize longer-than-unit-length concatemers; however, the mechanism by which they are formed is poorly understood. Although it has been proposed that the viral genome circularizes and rolling circle replication leads to the formation of concatemers, several lines of evidence suggest that HSV DNA replication involves recombination-dependent replication reminiscent of bacteriophages λ and T4. Similar to λ, HSV-1 encodes a 5′-to-3′ exonuclease (UL12) and a single strand annealing protein [SSAP (ICP8)] that interact with each other and can perform strand exchange in vitro. By analogy with λ phage, HSV may utilize viral and/or cellular recombination proteins during DNA replication. At least four double strand break repair pathways are present in eukaryotic cells, and HSV-1 is known to manipulate several components of these pathways. Chromosomally integrated reporter assays were used to measure the repair of double strand breaks in HSV-infected cells. Single strand annealing (SSA) was increased in HSV-infected cells, while homologous recombination (HR), non-homologous end joining (NHEJ) and alternative non-homologous end joining (A-NHEJ) were decreased. The increase in SSA was abolished when cells were infected with a viral mutant lacking UL12. Moreover, expression of UL12 alone caused an increase in SSA, which was completely eliminated when a UL12 mutant lacking exonuclease activity was expressed. UL12-mediated stimulation of SSA was decreased in cells lacking the cellular SSAP, Rad52, and could be restored by coexpressing the viral SSAP, ICP8, indicating that an SSAP is also required. These results demonstrate that UL12 can specifically stimulate SSA and that either ICP8 or Rad52 can function as an SSAP. We suggest that SSA is the homology-mediated repair pathway utilized during HSV infection.
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spelling pubmed-34154432012-08-21 The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism Schumacher, April J. Mohni, Kareem N. Kan, Yinan Hendrickson, Eric A. Stark, Jeremy M. Weller, Sandra K. PLoS Pathog Research Article Production of concatemeric DNA is an essential step during HSV infection, as the packaging machinery must recognize longer-than-unit-length concatemers; however, the mechanism by which they are formed is poorly understood. Although it has been proposed that the viral genome circularizes and rolling circle replication leads to the formation of concatemers, several lines of evidence suggest that HSV DNA replication involves recombination-dependent replication reminiscent of bacteriophages λ and T4. Similar to λ, HSV-1 encodes a 5′-to-3′ exonuclease (UL12) and a single strand annealing protein [SSAP (ICP8)] that interact with each other and can perform strand exchange in vitro. By analogy with λ phage, HSV may utilize viral and/or cellular recombination proteins during DNA replication. At least four double strand break repair pathways are present in eukaryotic cells, and HSV-1 is known to manipulate several components of these pathways. Chromosomally integrated reporter assays were used to measure the repair of double strand breaks in HSV-infected cells. Single strand annealing (SSA) was increased in HSV-infected cells, while homologous recombination (HR), non-homologous end joining (NHEJ) and alternative non-homologous end joining (A-NHEJ) were decreased. The increase in SSA was abolished when cells were infected with a viral mutant lacking UL12. Moreover, expression of UL12 alone caused an increase in SSA, which was completely eliminated when a UL12 mutant lacking exonuclease activity was expressed. UL12-mediated stimulation of SSA was decreased in cells lacking the cellular SSAP, Rad52, and could be restored by coexpressing the viral SSAP, ICP8, indicating that an SSAP is also required. These results demonstrate that UL12 can specifically stimulate SSA and that either ICP8 or Rad52 can function as an SSAP. We suggest that SSA is the homology-mediated repair pathway utilized during HSV infection. Public Library of Science 2012-08-09 /pmc/articles/PMC3415443/ /pubmed/22912580 http://dx.doi.org/10.1371/journal.ppat.1002862 Text en © 2012 Schumacher 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, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Schumacher, April J.
Mohni, Kareem N.
Kan, Yinan
Hendrickson, Eric A.
Stark, Jeremy M.
Weller, Sandra K.
The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title_full The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title_fullStr The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title_full_unstemmed The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title_short The HSV-1 Exonuclease, UL12, Stimulates Recombination by a Single Strand Annealing Mechanism
title_sort hsv-1 exonuclease, ul12, stimulates recombination by a single strand annealing mechanism
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3415443/
https://www.ncbi.nlm.nih.gov/pubmed/22912580
http://dx.doi.org/10.1371/journal.ppat.1002862
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