Cargando…

Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance

Despite concerted functional genomic efforts to understand the complex phenotype of ionizing radiation (IR) resistance, a genome sequence cannot predict whether a cell is IR-resistant or not. Instead, we report that absorption-display electron paramagnetic resonance (EPR) spectroscopy of nonirradiat...

Descripción completa

Detalles Bibliográficos
Autores principales: Sharma, Ajay, Gaidamakova, Elena K., Grichenko, Olga, Matrosova, Vera Y., Hoeke, Veronika, Klimenkova, Polina, Conze, Isabel H., Volpe, Robert P., Tkavc, Rok, Gostinčar, Cene, Gunde-Cimerman, Nina, DiRuggiero, Jocelyne, Shuryak, Igor, Ozarowski, Andrew, Hoffman, Brian M., Daly, Michael J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5676931/
https://www.ncbi.nlm.nih.gov/pubmed/29042516
http://dx.doi.org/10.1073/pnas.1713608114
_version_ 1783277150211670016
author Sharma, Ajay
Gaidamakova, Elena K.
Grichenko, Olga
Matrosova, Vera Y.
Hoeke, Veronika
Klimenkova, Polina
Conze, Isabel H.
Volpe, Robert P.
Tkavc, Rok
Gostinčar, Cene
Gunde-Cimerman, Nina
DiRuggiero, Jocelyne
Shuryak, Igor
Ozarowski, Andrew
Hoffman, Brian M.
Daly, Michael J.
author_facet Sharma, Ajay
Gaidamakova, Elena K.
Grichenko, Olga
Matrosova, Vera Y.
Hoeke, Veronika
Klimenkova, Polina
Conze, Isabel H.
Volpe, Robert P.
Tkavc, Rok
Gostinčar, Cene
Gunde-Cimerman, Nina
DiRuggiero, Jocelyne
Shuryak, Igor
Ozarowski, Andrew
Hoffman, Brian M.
Daly, Michael J.
author_sort Sharma, Ajay
collection PubMed
description Despite concerted functional genomic efforts to understand the complex phenotype of ionizing radiation (IR) resistance, a genome sequence cannot predict whether a cell is IR-resistant or not. Instead, we report that absorption-display electron paramagnetic resonance (EPR) spectroscopy of nonirradiated cells is highly diagnostic of IR survival and repair efficiency of DNA double-strand breaks (DSBs) caused by exposure to gamma radiation across archaea, bacteria, and eukaryotes, including fungi and human cells. IR-resistant cells, which are efficient at DSB repair, contain a high cellular content of manganous ions (Mn(2+)) in high-symmetry (H) antioxidant complexes with small metabolites (e.g., orthophosphate, peptides), which exhibit narrow EPR signals (small zero-field splitting). In contrast, Mn(2+) ions in IR-sensitive cells, which are inefficient at DSB repair, exist largely as low-symmetry (L) complexes with substantially broadened spectra seen with enzymes and strongly chelating ligands. The fraction of cellular Mn(2+) present as H-complexes (H-Mn(2+)), as measured by EPR of live, nonirradiated Mn-replete cells, is now the strongest known gauge of biological IR resistance between and within organisms representing all three domains of life: Antioxidant H-Mn(2+) complexes, not antioxidant enzymes (e.g., Mn superoxide dismutase), govern IR survival. As the pool of intracellular metabolites needed to form H-Mn(2+) complexes depends on the nutritional status of the cell, we conclude that IR resistance is predominantly a metabolic phenomenon. In a cross-kingdom analysis, the vast differences in taxonomic classification, genome size, and radioresistance between cell types studied here support that IR resistance is not controlled by the repertoire of DNA repair and antioxidant enzymes.
format Online
Article
Text
id pubmed-5676931
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher National Academy of Sciences
record_format MEDLINE/PubMed
spelling pubmed-56769312017-11-15 Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance Sharma, Ajay Gaidamakova, Elena K. Grichenko, Olga Matrosova, Vera Y. Hoeke, Veronika Klimenkova, Polina Conze, Isabel H. Volpe, Robert P. Tkavc, Rok Gostinčar, Cene Gunde-Cimerman, Nina DiRuggiero, Jocelyne Shuryak, Igor Ozarowski, Andrew Hoffman, Brian M. Daly, Michael J. Proc Natl Acad Sci U S A PNAS Plus Despite concerted functional genomic efforts to understand the complex phenotype of ionizing radiation (IR) resistance, a genome sequence cannot predict whether a cell is IR-resistant or not. Instead, we report that absorption-display electron paramagnetic resonance (EPR) spectroscopy of nonirradiated cells is highly diagnostic of IR survival and repair efficiency of DNA double-strand breaks (DSBs) caused by exposure to gamma radiation across archaea, bacteria, and eukaryotes, including fungi and human cells. IR-resistant cells, which are efficient at DSB repair, contain a high cellular content of manganous ions (Mn(2+)) in high-symmetry (H) antioxidant complexes with small metabolites (e.g., orthophosphate, peptides), which exhibit narrow EPR signals (small zero-field splitting). In contrast, Mn(2+) ions in IR-sensitive cells, which are inefficient at DSB repair, exist largely as low-symmetry (L) complexes with substantially broadened spectra seen with enzymes and strongly chelating ligands. The fraction of cellular Mn(2+) present as H-complexes (H-Mn(2+)), as measured by EPR of live, nonirradiated Mn-replete cells, is now the strongest known gauge of biological IR resistance between and within organisms representing all three domains of life: Antioxidant H-Mn(2+) complexes, not antioxidant enzymes (e.g., Mn superoxide dismutase), govern IR survival. As the pool of intracellular metabolites needed to form H-Mn(2+) complexes depends on the nutritional status of the cell, we conclude that IR resistance is predominantly a metabolic phenomenon. In a cross-kingdom analysis, the vast differences in taxonomic classification, genome size, and radioresistance between cell types studied here support that IR resistance is not controlled by the repertoire of DNA repair and antioxidant enzymes. National Academy of Sciences 2017-10-31 2017-10-17 /pmc/articles/PMC5676931/ /pubmed/29042516 http://dx.doi.org/10.1073/pnas.1713608114 Text en Copyright © 2017 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-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .https://creativecommons.org/licenses/by-nc-nd/4.0/
spellingShingle PNAS Plus
Sharma, Ajay
Gaidamakova, Elena K.
Grichenko, Olga
Matrosova, Vera Y.
Hoeke, Veronika
Klimenkova, Polina
Conze, Isabel H.
Volpe, Robert P.
Tkavc, Rok
Gostinčar, Cene
Gunde-Cimerman, Nina
DiRuggiero, Jocelyne
Shuryak, Igor
Ozarowski, Andrew
Hoffman, Brian M.
Daly, Michael J.
Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title_full Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title_fullStr Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title_full_unstemmed Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title_short Across the tree of life, radiation resistance is governed by antioxidant Mn(2+), gauged by paramagnetic resonance
title_sort across the tree of life, radiation resistance is governed by antioxidant mn(2+), gauged by paramagnetic resonance
topic PNAS Plus
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5676931/
https://www.ncbi.nlm.nih.gov/pubmed/29042516
http://dx.doi.org/10.1073/pnas.1713608114
work_keys_str_mv AT sharmaajay acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT gaidamakovaelenak acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT grichenkoolga acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT matrosovaveray acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT hoekeveronika acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT klimenkovapolina acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT conzeisabelh acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT volperobertp acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT tkavcrok acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT gostincarcene acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT gundecimermannina acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT diruggierojocelyne acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT shuryakigor acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT ozarowskiandrew acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT hoffmanbrianm acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance
AT dalymichaelj acrossthetreeofliferadiationresistanceisgovernedbyantioxidantmn2gaugedbyparamagneticresonance