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Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations

Xeroderma pigmentosum group G (XPG) protein is both a functional partner in multiple DNA damage responses (DDR) and a pathway coordinator and structure-specific endonuclease in nucleotide excision repair (NER). Different mutations in the XPG gene ERCC5 lead to either of two distinct human diseases:...

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Autores principales: Tsutakawa, Susan E., Sarker, Altaf H., Ng, Clifford, Arvai, Andrew S., Shin, David S., Shih, Brian, Jiang, Shuai, Thwin, Aye C., Tsai, Miaw-Sheue, Willcox, Alexandra, Her, Mai Zong, Trego, Kelly S., Raetz, Alan G., Rosenberg, Daniel, Bacolla, Albino, Hammel, Michal, Griffith, Jack D., Cooper, Priscilla K., Tainer, John A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321962/
https://www.ncbi.nlm.nih.gov/pubmed/32522879
http://dx.doi.org/10.1073/pnas.1921311117
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author Tsutakawa, Susan E.
Sarker, Altaf H.
Ng, Clifford
Arvai, Andrew S.
Shin, David S.
Shih, Brian
Jiang, Shuai
Thwin, Aye C.
Tsai, Miaw-Sheue
Willcox, Alexandra
Her, Mai Zong
Trego, Kelly S.
Raetz, Alan G.
Rosenberg, Daniel
Bacolla, Albino
Hammel, Michal
Griffith, Jack D.
Cooper, Priscilla K.
Tainer, John A.
author_facet Tsutakawa, Susan E.
Sarker, Altaf H.
Ng, Clifford
Arvai, Andrew S.
Shin, David S.
Shih, Brian
Jiang, Shuai
Thwin, Aye C.
Tsai, Miaw-Sheue
Willcox, Alexandra
Her, Mai Zong
Trego, Kelly S.
Raetz, Alan G.
Rosenberg, Daniel
Bacolla, Albino
Hammel, Michal
Griffith, Jack D.
Cooper, Priscilla K.
Tainer, John A.
author_sort Tsutakawa, Susan E.
collection PubMed
description Xeroderma pigmentosum group G (XPG) protein is both a functional partner in multiple DNA damage responses (DDR) and a pathway coordinator and structure-specific endonuclease in nucleotide excision repair (NER). Different mutations in the XPG gene ERCC5 lead to either of two distinct human diseases: Cancer-prone xeroderma pigmentosum (XP-G) or the fatal neurodevelopmental disorder Cockayne syndrome (XP-G/CS). To address the enigmatic structural mechanism for these differing disease phenotypes and for XPG’s role in multiple DDRs, here we determined the crystal structure of human XPG catalytic domain (XPGcat), revealing XPG-specific features for its activities and regulation. Furthermore, XPG DNA binding elements conserved with FEN1 superfamily members enable insights on DNA interactions. Notably, all but one of the known pathogenic point mutations map to XPGcat, and both XP-G and XP-G/CS mutations destabilize XPG and reduce its cellular protein levels. Mapping the distinct mutation classes provides structure-based predictions for disease phenotypes: Residues mutated in XP-G are positioned to reduce local stability and NER activity, whereas residues mutated in XP-G/CS have implied long-range structural defects that would likely disrupt stability of the whole protein, and thus interfere with its functional interactions. Combined data from crystallography, biochemistry, small angle X-ray scattering, and electron microscopy unveil an XPG homodimer that binds, unstacks, and sculpts duplex DNA at internal unpaired regions (bubbles) into strongly bent structures, and suggest how XPG complexes may bind both NER bubble junctions and replication forks. Collective results support XPG scaffolding and DNA sculpting functions in multiple DDR processes to maintain genome stability.
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spelling pubmed-73219622020-07-01 Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations Tsutakawa, Susan E. Sarker, Altaf H. Ng, Clifford Arvai, Andrew S. Shin, David S. Shih, Brian Jiang, Shuai Thwin, Aye C. Tsai, Miaw-Sheue Willcox, Alexandra Her, Mai Zong Trego, Kelly S. Raetz, Alan G. Rosenberg, Daniel Bacolla, Albino Hammel, Michal Griffith, Jack D. Cooper, Priscilla K. Tainer, John A. Proc Natl Acad Sci U S A Biological Sciences Xeroderma pigmentosum group G (XPG) protein is both a functional partner in multiple DNA damage responses (DDR) and a pathway coordinator and structure-specific endonuclease in nucleotide excision repair (NER). Different mutations in the XPG gene ERCC5 lead to either of two distinct human diseases: Cancer-prone xeroderma pigmentosum (XP-G) or the fatal neurodevelopmental disorder Cockayne syndrome (XP-G/CS). To address the enigmatic structural mechanism for these differing disease phenotypes and for XPG’s role in multiple DDRs, here we determined the crystal structure of human XPG catalytic domain (XPGcat), revealing XPG-specific features for its activities and regulation. Furthermore, XPG DNA binding elements conserved with FEN1 superfamily members enable insights on DNA interactions. Notably, all but one of the known pathogenic point mutations map to XPGcat, and both XP-G and XP-G/CS mutations destabilize XPG and reduce its cellular protein levels. Mapping the distinct mutation classes provides structure-based predictions for disease phenotypes: Residues mutated in XP-G are positioned to reduce local stability and NER activity, whereas residues mutated in XP-G/CS have implied long-range structural defects that would likely disrupt stability of the whole protein, and thus interfere with its functional interactions. Combined data from crystallography, biochemistry, small angle X-ray scattering, and electron microscopy unveil an XPG homodimer that binds, unstacks, and sculpts duplex DNA at internal unpaired regions (bubbles) into strongly bent structures, and suggest how XPG complexes may bind both NER bubble junctions and replication forks. Collective results support XPG scaffolding and DNA sculpting functions in multiple DDR processes to maintain genome stability. National Academy of Sciences 2020-06-23 2020-06-10 /pmc/articles/PMC7321962/ /pubmed/32522879 http://dx.doi.org/10.1073/pnas.1921311117 Text en Copyright © 2020 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/ https://creativecommons.org/licenses/by-nc-nd/4.0/This open access 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
Tsutakawa, Susan E.
Sarker, Altaf H.
Ng, Clifford
Arvai, Andrew S.
Shin, David S.
Shih, Brian
Jiang, Shuai
Thwin, Aye C.
Tsai, Miaw-Sheue
Willcox, Alexandra
Her, Mai Zong
Trego, Kelly S.
Raetz, Alan G.
Rosenberg, Daniel
Bacolla, Albino
Hammel, Michal
Griffith, Jack D.
Cooper, Priscilla K.
Tainer, John A.
Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title_full Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title_fullStr Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title_full_unstemmed Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title_short Human XPG nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
title_sort human xpg nuclease structure, assembly, and activities with insights for neurodegeneration and cancer from pathogenic mutations
topic Biological Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7321962/
https://www.ncbi.nlm.nih.gov/pubmed/32522879
http://dx.doi.org/10.1073/pnas.1921311117
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