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Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy

Mre11 and Rad50 (M/R) proteins are part of an evolutionarily conserved macromolecular apparatus that maintains genomic integrity through repair pathways. Prior structural studies have revealed that this apparatus is extremely dynamic, displaying flexibility in the long coiled-coil regions of Rad50,...

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Autores principales: Zabolotnaya, Ekaterina, Mela, Ioanna, Williamson, Mark J., Bray, Sian M., Yau, Siu Kei, Papatziamou, Dimitra, Edwardson, J. Michael, Robinson, Nicholas P., Henderson, Robert M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7334584/
https://www.ncbi.nlm.nih.gov/pubmed/32541055
http://dx.doi.org/10.1073/pnas.1915598117
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author Zabolotnaya, Ekaterina
Mela, Ioanna
Williamson, Mark J.
Bray, Sian M.
Yau, Siu Kei
Papatziamou, Dimitra
Edwardson, J. Michael
Robinson, Nicholas P.
Henderson, Robert M.
author_facet Zabolotnaya, Ekaterina
Mela, Ioanna
Williamson, Mark J.
Bray, Sian M.
Yau, Siu Kei
Papatziamou, Dimitra
Edwardson, J. Michael
Robinson, Nicholas P.
Henderson, Robert M.
author_sort Zabolotnaya, Ekaterina
collection PubMed
description Mre11 and Rad50 (M/R) proteins are part of an evolutionarily conserved macromolecular apparatus that maintains genomic integrity through repair pathways. Prior structural studies have revealed that this apparatus is extremely dynamic, displaying flexibility in the long coiled-coil regions of Rad50, a member of the structural maintenance of chromosome (SMC) superfamily of ATPases. However, many details of the mechanics of M/R chromosomal manipulation during DNA-repair events remain unclear. Here, we investigate the properties of the thermostable M/R complex from the archaeon Sulfolobus acidocaldarius using atomic force microscopy (AFM) to understand how this macromolecular machinery orchestrates DNA repair. While previous studies have observed canonical interactions between the globular domains of M/R and DNA, we observe transient interactions between DNA substrates and the Rad50 coiled coils. Fast-scan AFM videos (at 1–2 frames per second) of M/R complexes reveal that these interactions result in manipulation and translocation of the DNA substrates. Our study also shows dramatic and unprecedented ATP-dependent DNA unwinding events by the M/R complex, which extend hundreds of base pairs in length. Supported by molecular dynamic simulations, we propose a model for M/R recognition at DNA breaks in which the Rad50 coiled coils aid movement along DNA substrates until a DNA end is encountered, after which the DNA unwinding activity potentiates the downstream homologous recombination (HR)-mediated DNA repair.
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spelling pubmed-73345842020-07-15 Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy Zabolotnaya, Ekaterina Mela, Ioanna Williamson, Mark J. Bray, Sian M. Yau, Siu Kei Papatziamou, Dimitra Edwardson, J. Michael Robinson, Nicholas P. Henderson, Robert M. Proc Natl Acad Sci U S A Biological Sciences Mre11 and Rad50 (M/R) proteins are part of an evolutionarily conserved macromolecular apparatus that maintains genomic integrity through repair pathways. Prior structural studies have revealed that this apparatus is extremely dynamic, displaying flexibility in the long coiled-coil regions of Rad50, a member of the structural maintenance of chromosome (SMC) superfamily of ATPases. However, many details of the mechanics of M/R chromosomal manipulation during DNA-repair events remain unclear. Here, we investigate the properties of the thermostable M/R complex from the archaeon Sulfolobus acidocaldarius using atomic force microscopy (AFM) to understand how this macromolecular machinery orchestrates DNA repair. While previous studies have observed canonical interactions between the globular domains of M/R and DNA, we observe transient interactions between DNA substrates and the Rad50 coiled coils. Fast-scan AFM videos (at 1–2 frames per second) of M/R complexes reveal that these interactions result in manipulation and translocation of the DNA substrates. Our study also shows dramatic and unprecedented ATP-dependent DNA unwinding events by the M/R complex, which extend hundreds of base pairs in length. Supported by molecular dynamic simulations, we propose a model for M/R recognition at DNA breaks in which the Rad50 coiled coils aid movement along DNA substrates until a DNA end is encountered, after which the DNA unwinding activity potentiates the downstream homologous recombination (HR)-mediated DNA repair. National Academy of Sciences 2020-06-30 2020-06-15 /pmc/articles/PMC7334584/ /pubmed/32541055 http://dx.doi.org/10.1073/pnas.1915598117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under Creative Commons Attribution License 4.0 (CC BY) (http://creativecommons.org/licenses/by/4.0/) .
spellingShingle Biological Sciences
Zabolotnaya, Ekaterina
Mela, Ioanna
Williamson, Mark J.
Bray, Sian M.
Yau, Siu Kei
Papatziamou, Dimitra
Edwardson, J. Michael
Robinson, Nicholas P.
Henderson, Robert M.
Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title_full Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title_fullStr Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title_full_unstemmed Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title_short Modes of action of the archaeal Mre11/Rad50 DNA-repair complex revealed by fast-scan atomic force microscopy
title_sort modes of action of the archaeal mre11/rad50 dna-repair complex revealed by fast-scan atomic force microscopy
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7334584/
https://www.ncbi.nlm.nih.gov/pubmed/32541055
http://dx.doi.org/10.1073/pnas.1915598117
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