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“Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein

Replication protein A (RPA) is a eukaryotic single-stranded (ss) DNA-binding (SSB) protein that is essential for all aspects of genome maintenance. RPA binds ssDNA with high affinity but can also diffuse along ssDNA. By itself, RPA is capable of transiently disrupting short regions of duplex DNA by...

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Autores principales: Mersch, Kacey N., Sokoloski, Joshua E., Nguyen, Binh, Galletto, Roberto, Lohman, Timothy M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10104510/
https://www.ncbi.nlm.nih.gov/pubmed/37011199
http://dx.doi.org/10.1073/pnas.2216777120
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author Mersch, Kacey N.
Sokoloski, Joshua E.
Nguyen, Binh
Galletto, Roberto
Lohman, Timothy M.
author_facet Mersch, Kacey N.
Sokoloski, Joshua E.
Nguyen, Binh
Galletto, Roberto
Lohman, Timothy M.
author_sort Mersch, Kacey N.
collection PubMed
description Replication protein A (RPA) is a eukaryotic single-stranded (ss) DNA-binding (SSB) protein that is essential for all aspects of genome maintenance. RPA binds ssDNA with high affinity but can also diffuse along ssDNA. By itself, RPA is capable of transiently disrupting short regions of duplex DNA by diffusing from a ssDNA that flanks the duplex DNA. Using single-molecule total internal reflection fluorescence and optical trapping combined with fluorescence approaches, we show that S. cerevisiae Pif1 can use its ATP-dependent 5′ to 3′ translocase activity to chemomechanically push a single human RPA (hRPA) heterotrimer directionally along ssDNA at rates comparable to those of Pif1 translocation alone. We further show that using its translocation activity, Pif1 can push hRPA from a ssDNA loading site into a duplex DNA causing stable disruption of at least 9 bp of duplex DNA. These results highlight the dynamic nature of hRPA enabling it to be readily reorganized even when bound tightly to ssDNA and demonstrate a mechanism by which directional DNA unwinding can be achieved through the combined action of a ssDNA translocase that pushes an SSB protein. These results highlight the two basic requirements for any processive DNA helicase: transient DNA base pair melting (supplied by hRPA) and ATP-dependent directional ssDNA translocation (supplied by Pif1) and that these functions can be unlinked by using two separate proteins.
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spelling pubmed-101045102023-10-03 “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein Mersch, Kacey N. Sokoloski, Joshua E. Nguyen, Binh Galletto, Roberto Lohman, Timothy M. Proc Natl Acad Sci U S A Biological Sciences Replication protein A (RPA) is a eukaryotic single-stranded (ss) DNA-binding (SSB) protein that is essential for all aspects of genome maintenance. RPA binds ssDNA with high affinity but can also diffuse along ssDNA. By itself, RPA is capable of transiently disrupting short regions of duplex DNA by diffusing from a ssDNA that flanks the duplex DNA. Using single-molecule total internal reflection fluorescence and optical trapping combined with fluorescence approaches, we show that S. cerevisiae Pif1 can use its ATP-dependent 5′ to 3′ translocase activity to chemomechanically push a single human RPA (hRPA) heterotrimer directionally along ssDNA at rates comparable to those of Pif1 translocation alone. We further show that using its translocation activity, Pif1 can push hRPA from a ssDNA loading site into a duplex DNA causing stable disruption of at least 9 bp of duplex DNA. These results highlight the dynamic nature of hRPA enabling it to be readily reorganized even when bound tightly to ssDNA and demonstrate a mechanism by which directional DNA unwinding can be achieved through the combined action of a ssDNA translocase that pushes an SSB protein. These results highlight the two basic requirements for any processive DNA helicase: transient DNA base pair melting (supplied by hRPA) and ATP-dependent directional ssDNA translocation (supplied by Pif1) and that these functions can be unlinked by using two separate proteins. National Academy of Sciences 2023-04-03 2023-04-11 /pmc/articles/PMC10104510/ /pubmed/37011199 http://dx.doi.org/10.1073/pnas.2216777120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Biological Sciences
Mersch, Kacey N.
Sokoloski, Joshua E.
Nguyen, Binh
Galletto, Roberto
Lohman, Timothy M.
“Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title_full “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title_fullStr “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title_full_unstemmed “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title_short “Helicase” activity promoted through dynamic interactions between a ssDNA translocase and a diffusing SSB protein
title_sort “helicase” activity promoted through dynamic interactions between a ssdna translocase and a diffusing ssb protein
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10104510/
https://www.ncbi.nlm.nih.gov/pubmed/37011199
http://dx.doi.org/10.1073/pnas.2216777120
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