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Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress

BACKGROUND: DNA repair mechanisms are crucial for maintenance of the genome in all organisms, including parasites where successful infection is dependent both on genomic stability and sequence variation. MSH2 is an early acting, central component of the Mismatch Repair (MMR) pathway, which is respon...

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Autores principales: Grazielle-Silva, Viviane, Zeb, Tehseen Fatima, Bolderson, Jason, Campos, Priscila C., Miranda, Julia B., Alves, Ceres L., Machado, Carlos R., McCulloch, Richard, Teixeira, Santuza M. R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4470938/
https://www.ncbi.nlm.nih.gov/pubmed/26083967
http://dx.doi.org/10.1371/journal.pntd.0003870
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author Grazielle-Silva, Viviane
Zeb, Tehseen Fatima
Bolderson, Jason
Campos, Priscila C.
Miranda, Julia B.
Alves, Ceres L.
Machado, Carlos R.
McCulloch, Richard
Teixeira, Santuza M. R.
author_facet Grazielle-Silva, Viviane
Zeb, Tehseen Fatima
Bolderson, Jason
Campos, Priscila C.
Miranda, Julia B.
Alves, Ceres L.
Machado, Carlos R.
McCulloch, Richard
Teixeira, Santuza M. R.
author_sort Grazielle-Silva, Viviane
collection PubMed
description BACKGROUND: DNA repair mechanisms are crucial for maintenance of the genome in all organisms, including parasites where successful infection is dependent both on genomic stability and sequence variation. MSH2 is an early acting, central component of the Mismatch Repair (MMR) pathway, which is responsible for the recognition and correction of base mismatches that occur during DNA replication and recombination. In addition, recent evidence suggests that MSH2 might also play an important, but poorly understood, role in responding to oxidative damage in both African and American trypanosomes. METHODOLOGY/PRINCIPAL FINDINGS: To investigate the involvement of MMR in the oxidative stress response, null mutants of MSH2 were generated in Trypanosoma brucei procyclic forms and in Trypanosoma cruzi epimastigote forms. Unexpectedly, the MSH2 null mutants showed increased resistance to H(2)O(2) exposure when compared with wild type cells, a phenotype distinct from the previously observed increased sensitivity of T. brucei bloodstream forms MSH2 mutants. Complementation studies indicated that the increased oxidative resistance of procyclic T. brucei was due to adaptation to MSH2 loss. In both parasites, loss of MSH2 was shown to result in increased tolerance to alkylation by MNNG and increased accumulation of 8-oxo-guanine in the nuclear and mitochondrial genomes, indicating impaired MMR. In T. cruzi, loss of MSH2 also increases the parasite capacity to survive within host macrophages. CONCLUSIONS/SIGNIFICANCE: Taken together, these results indicate MSH2 displays conserved, dual roles in MMR and in the response to oxidative stress. Loss of the latter function results in life cycle dependent differences in phenotypic outcomes in T. brucei MSH2 mutants, most likely because of the greater burden of oxidative stress in the insect stage of the parasite.
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spelling pubmed-44709382015-06-29 Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress Grazielle-Silva, Viviane Zeb, Tehseen Fatima Bolderson, Jason Campos, Priscila C. Miranda, Julia B. Alves, Ceres L. Machado, Carlos R. McCulloch, Richard Teixeira, Santuza M. R. PLoS Negl Trop Dis Research Article BACKGROUND: DNA repair mechanisms are crucial for maintenance of the genome in all organisms, including parasites where successful infection is dependent both on genomic stability and sequence variation. MSH2 is an early acting, central component of the Mismatch Repair (MMR) pathway, which is responsible for the recognition and correction of base mismatches that occur during DNA replication and recombination. In addition, recent evidence suggests that MSH2 might also play an important, but poorly understood, role in responding to oxidative damage in both African and American trypanosomes. METHODOLOGY/PRINCIPAL FINDINGS: To investigate the involvement of MMR in the oxidative stress response, null mutants of MSH2 were generated in Trypanosoma brucei procyclic forms and in Trypanosoma cruzi epimastigote forms. Unexpectedly, the MSH2 null mutants showed increased resistance to H(2)O(2) exposure when compared with wild type cells, a phenotype distinct from the previously observed increased sensitivity of T. brucei bloodstream forms MSH2 mutants. Complementation studies indicated that the increased oxidative resistance of procyclic T. brucei was due to adaptation to MSH2 loss. In both parasites, loss of MSH2 was shown to result in increased tolerance to alkylation by MNNG and increased accumulation of 8-oxo-guanine in the nuclear and mitochondrial genomes, indicating impaired MMR. In T. cruzi, loss of MSH2 also increases the parasite capacity to survive within host macrophages. CONCLUSIONS/SIGNIFICANCE: Taken together, these results indicate MSH2 displays conserved, dual roles in MMR and in the response to oxidative stress. Loss of the latter function results in life cycle dependent differences in phenotypic outcomes in T. brucei MSH2 mutants, most likely because of the greater burden of oxidative stress in the insect stage of the parasite. Public Library of Science 2015-06-17 /pmc/articles/PMC4470938/ /pubmed/26083967 http://dx.doi.org/10.1371/journal.pntd.0003870 Text en © 2015 Grazielle-Silva et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Grazielle-Silva, Viviane
Zeb, Tehseen Fatima
Bolderson, Jason
Campos, Priscila C.
Miranda, Julia B.
Alves, Ceres L.
Machado, Carlos R.
McCulloch, Richard
Teixeira, Santuza M. R.
Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title_full Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title_fullStr Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title_full_unstemmed Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title_short Distinct Phenotypes Caused by Mutation of MSH2 in Trypanosome Insect and Mammalian Life Cycle Forms Are Associated with Parasite Adaptation to Oxidative Stress
title_sort distinct phenotypes caused by mutation of msh2 in trypanosome insect and mammalian life cycle forms are associated with parasite adaptation to oxidative stress
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4470938/
https://www.ncbi.nlm.nih.gov/pubmed/26083967
http://dx.doi.org/10.1371/journal.pntd.0003870
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