Cargando…

Proline-specific aminopeptidase P prevents replication-associated genome instability

Genotoxic stress during DNA replication constitutes a serious threat to genome integrity and causes human diseases. Defects at different steps of DNA metabolism are known to induce replication stress, but the contribution of other aspects of cellular metabolism is less understood. We show that amino...

Descripción completa

Detalles Bibliográficos
Autores principales: Silva, Nicola, Castellano-Pozo, Maikel, Matsuzaki, Kenichiro, Barroso, Consuelo, Roman-Trufero, Monica, Craig, Hannah, Brooks, Darren R., Isaac, R. Elwyn, Boulton, Simon J., Martinez-Perez, Enrique
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8820600/
https://www.ncbi.nlm.nih.gov/pubmed/35081133
http://dx.doi.org/10.1371/journal.pgen.1010025
_version_ 1784646236686516224
author Silva, Nicola
Castellano-Pozo, Maikel
Matsuzaki, Kenichiro
Barroso, Consuelo
Roman-Trufero, Monica
Craig, Hannah
Brooks, Darren R.
Isaac, R. Elwyn
Boulton, Simon J.
Martinez-Perez, Enrique
author_facet Silva, Nicola
Castellano-Pozo, Maikel
Matsuzaki, Kenichiro
Barroso, Consuelo
Roman-Trufero, Monica
Craig, Hannah
Brooks, Darren R.
Isaac, R. Elwyn
Boulton, Simon J.
Martinez-Perez, Enrique
author_sort Silva, Nicola
collection PubMed
description Genotoxic stress during DNA replication constitutes a serious threat to genome integrity and causes human diseases. Defects at different steps of DNA metabolism are known to induce replication stress, but the contribution of other aspects of cellular metabolism is less understood. We show that aminopeptidase P (APP1), a metalloprotease involved in the catabolism of peptides containing proline residues near their N-terminus, prevents replication-associated genome instability. Functional analysis of C. elegans mutants lacking APP-1 demonstrates that germ cells display replication defects including reduced proliferation, cell cycle arrest, and accumulation of mitotic DSBs. Despite these defects, app-1 mutants are competent in repairing DSBs induced by gamma irradiation, as well as SPO-11-dependent DSBs that initiate meiotic recombination. Moreover, in the absence of SPO-11, spontaneous DSBs arising in app-1 mutants are repaired as inter-homologue crossover events during meiosis, confirming that APP-1 is not required for homologous recombination. Thus, APP-1 prevents replication stress without having an apparent role in DSB repair. Depletion of APP1 (XPNPEP1) also causes DSB accumulation in mitotically-proliferating human cells, suggesting that APP1’s role in genome stability is evolutionarily conserved. Our findings uncover an unexpected role for APP1 in genome stability, suggesting functional connections between aminopeptidase-mediated protein catabolism and DNA replication.
format Online
Article
Text
id pubmed-8820600
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-88206002022-02-08 Proline-specific aminopeptidase P prevents replication-associated genome instability Silva, Nicola Castellano-Pozo, Maikel Matsuzaki, Kenichiro Barroso, Consuelo Roman-Trufero, Monica Craig, Hannah Brooks, Darren R. Isaac, R. Elwyn Boulton, Simon J. Martinez-Perez, Enrique PLoS Genet Research Article Genotoxic stress during DNA replication constitutes a serious threat to genome integrity and causes human diseases. Defects at different steps of DNA metabolism are known to induce replication stress, but the contribution of other aspects of cellular metabolism is less understood. We show that aminopeptidase P (APP1), a metalloprotease involved in the catabolism of peptides containing proline residues near their N-terminus, prevents replication-associated genome instability. Functional analysis of C. elegans mutants lacking APP-1 demonstrates that germ cells display replication defects including reduced proliferation, cell cycle arrest, and accumulation of mitotic DSBs. Despite these defects, app-1 mutants are competent in repairing DSBs induced by gamma irradiation, as well as SPO-11-dependent DSBs that initiate meiotic recombination. Moreover, in the absence of SPO-11, spontaneous DSBs arising in app-1 mutants are repaired as inter-homologue crossover events during meiosis, confirming that APP-1 is not required for homologous recombination. Thus, APP-1 prevents replication stress without having an apparent role in DSB repair. Depletion of APP1 (XPNPEP1) also causes DSB accumulation in mitotically-proliferating human cells, suggesting that APP1’s role in genome stability is evolutionarily conserved. Our findings uncover an unexpected role for APP1 in genome stability, suggesting functional connections between aminopeptidase-mediated protein catabolism and DNA replication. Public Library of Science 2022-01-26 /pmc/articles/PMC8820600/ /pubmed/35081133 http://dx.doi.org/10.1371/journal.pgen.1010025 Text en © 2022 Silva et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Silva, Nicola
Castellano-Pozo, Maikel
Matsuzaki, Kenichiro
Barroso, Consuelo
Roman-Trufero, Monica
Craig, Hannah
Brooks, Darren R.
Isaac, R. Elwyn
Boulton, Simon J.
Martinez-Perez, Enrique
Proline-specific aminopeptidase P prevents replication-associated genome instability
title Proline-specific aminopeptidase P prevents replication-associated genome instability
title_full Proline-specific aminopeptidase P prevents replication-associated genome instability
title_fullStr Proline-specific aminopeptidase P prevents replication-associated genome instability
title_full_unstemmed Proline-specific aminopeptidase P prevents replication-associated genome instability
title_short Proline-specific aminopeptidase P prevents replication-associated genome instability
title_sort proline-specific aminopeptidase p prevents replication-associated genome instability
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8820600/
https://www.ncbi.nlm.nih.gov/pubmed/35081133
http://dx.doi.org/10.1371/journal.pgen.1010025
work_keys_str_mv AT silvanicola prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT castellanopozomaikel prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT matsuzakikenichiro prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT barrosoconsuelo prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT romantruferomonica prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT craighannah prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT brooksdarrenr prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT isaacrelwyn prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT boultonsimonj prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability
AT martinezperezenrique prolinespecificaminopeptidaseppreventsreplicationassociatedgenomeinstability