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Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining

Double-stranded breaks (DSBs) in plant organelles are repaired via genomic rearrangements characterized by microhomologous repeats. These microhomologous signatures predict the existence of an unidentified enzymatic machinery capable of repairing of DSBs via microhomology-mediated end-joining (MMEJ)...

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Autores principales: García-Medel, Paola L, Baruch-Torres, Noe, Peralta-Castro, Antolín, Trasviña-Arenas, Carlos H, Torres-Larios, Alfredo, Brieba, Luis G
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6451138/
https://www.ncbi.nlm.nih.gov/pubmed/30698803
http://dx.doi.org/10.1093/nar/gkz039
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author García-Medel, Paola L
Baruch-Torres, Noe
Peralta-Castro, Antolín
Trasviña-Arenas, Carlos H
Torres-Larios, Alfredo
Brieba, Luis G
author_facet García-Medel, Paola L
Baruch-Torres, Noe
Peralta-Castro, Antolín
Trasviña-Arenas, Carlos H
Torres-Larios, Alfredo
Brieba, Luis G
author_sort García-Medel, Paola L
collection PubMed
description Double-stranded breaks (DSBs) in plant organelles are repaired via genomic rearrangements characterized by microhomologous repeats. These microhomologous signatures predict the existence of an unidentified enzymatic machinery capable of repairing of DSBs via microhomology-mediated end-joining (MMEJ) in plant organelles. Here, we show that organellar DNA polymerases from Arabidopsis thaliana (AtPolIA and AtPolIB) perform MMEJ using microhomologous sequences as short as six nucleotides. AtPolIs execute MMEJ by virtue of two specialized amino acid insertions located in their thumb subdomains. Single-stranded binding proteins (SSBs) unique to plants, AtWhirly2 and organellar single-stranded binding proteins (AtOSBs), hinder MMEJ, whereas canonical mitochondrial SSBs (AtmtSSB1 and AtmtSSB2) do not interfere with MMEJ. Our data predict that organellar DNA rearrangements by MMEJ are a consequence of a competition for the 3′-OH of a DSBs. If AtWhirlies or AtOSBs gain access to the single-stranded DNA (ssDNA) region of a DSB, the reaction will shift towards high-fidelity routes like homologous recombination. Conversely MMEJ would be favored if AtPolIs or AtmtSSBs interact with the DSB. AtPolIs are not phylogenetically related to metazoan mitochondrial DNA polymerases, and the ability of AtPolIs to execute MMEJ may explain the abundance of DNA rearrangements in plant organelles in comparison to animal mitochondria.
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spelling pubmed-64511382019-04-09 Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining García-Medel, Paola L Baruch-Torres, Noe Peralta-Castro, Antolín Trasviña-Arenas, Carlos H Torres-Larios, Alfredo Brieba, Luis G Nucleic Acids Res Nucleic Acid Enzymes Double-stranded breaks (DSBs) in plant organelles are repaired via genomic rearrangements characterized by microhomologous repeats. These microhomologous signatures predict the existence of an unidentified enzymatic machinery capable of repairing of DSBs via microhomology-mediated end-joining (MMEJ) in plant organelles. Here, we show that organellar DNA polymerases from Arabidopsis thaliana (AtPolIA and AtPolIB) perform MMEJ using microhomologous sequences as short as six nucleotides. AtPolIs execute MMEJ by virtue of two specialized amino acid insertions located in their thumb subdomains. Single-stranded binding proteins (SSBs) unique to plants, AtWhirly2 and organellar single-stranded binding proteins (AtOSBs), hinder MMEJ, whereas canonical mitochondrial SSBs (AtmtSSB1 and AtmtSSB2) do not interfere with MMEJ. Our data predict that organellar DNA rearrangements by MMEJ are a consequence of a competition for the 3′-OH of a DSBs. If AtWhirlies or AtOSBs gain access to the single-stranded DNA (ssDNA) region of a DSB, the reaction will shift towards high-fidelity routes like homologous recombination. Conversely MMEJ would be favored if AtPolIs or AtmtSSBs interact with the DSB. AtPolIs are not phylogenetically related to metazoan mitochondrial DNA polymerases, and the ability of AtPolIs to execute MMEJ may explain the abundance of DNA rearrangements in plant organelles in comparison to animal mitochondria. Oxford University Press 2019-04-08 2019-01-30 /pmc/articles/PMC6451138/ /pubmed/30698803 http://dx.doi.org/10.1093/nar/gkz039 Text en © The Author(s) 2019. Published by Oxford University Press on behalf of Nucleic Acids Research. http://creativecommons.org/licenses/by-nc/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Nucleic Acid Enzymes
García-Medel, Paola L
Baruch-Torres, Noe
Peralta-Castro, Antolín
Trasviña-Arenas, Carlos H
Torres-Larios, Alfredo
Brieba, Luis G
Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title_full Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title_fullStr Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title_full_unstemmed Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title_short Plant organellar DNA polymerases repair double-stranded breaks by microhomology-mediated end-joining
title_sort plant organellar dna polymerases repair double-stranded breaks by microhomology-mediated end-joining
topic Nucleic Acid Enzymes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6451138/
https://www.ncbi.nlm.nih.gov/pubmed/30698803
http://dx.doi.org/10.1093/nar/gkz039
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