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DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers

Cancer genomes harbor numerous genomic alterations and many cancers accumulate thousands of nucleotide sequence variations. A prominent fraction of these mutations arises as a consequence of the off-target activity of DNA/RNA editing cytosine deaminases followed by the replication/repair of edited s...

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Autores principales: Rogozin, Igor B., Roche-Lima, Abiel, Tyryshkin, Kathrin, Carrasquillo-Carrión, Kelvin, Lada, Artem G., Poliakov, Lennard Y., Schwartz, Elena, Saura, Andreu, Yurchenko, Vyacheslav, Cooper, David N., Panchenko, Anna R., Pavlov, Youri I.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8170131/
https://www.ncbi.nlm.nih.gov/pubmed/34093666
http://dx.doi.org/10.3389/fgene.2021.671866
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author Rogozin, Igor B.
Roche-Lima, Abiel
Tyryshkin, Kathrin
Carrasquillo-Carrión, Kelvin
Lada, Artem G.
Poliakov, Lennard Y.
Schwartz, Elena
Saura, Andreu
Yurchenko, Vyacheslav
Cooper, David N.
Panchenko, Anna R.
Pavlov, Youri I.
author_facet Rogozin, Igor B.
Roche-Lima, Abiel
Tyryshkin, Kathrin
Carrasquillo-Carrión, Kelvin
Lada, Artem G.
Poliakov, Lennard Y.
Schwartz, Elena
Saura, Andreu
Yurchenko, Vyacheslav
Cooper, David N.
Panchenko, Anna R.
Pavlov, Youri I.
author_sort Rogozin, Igor B.
collection PubMed
description Cancer genomes harbor numerous genomic alterations and many cancers accumulate thousands of nucleotide sequence variations. A prominent fraction of these mutations arises as a consequence of the off-target activity of DNA/RNA editing cytosine deaminases followed by the replication/repair of edited sites by DNA polymerases (pol), as deduced from the analysis of the DNA sequence context of mutations in different tumor tissues. We have used the weight matrix (sequence profile) approach to analyze mutagenesis due to Activation Induced Deaminase (AID) and two error-prone DNA polymerases. Control experiments using shuffled weight matrices and somatic mutations in immunoglobulin genes confirmed the power of this method. Analysis of somatic mutations in various cancers suggested that AID and DNA polymerases η and θ contribute to mutagenesis in contexts that almost universally correlate with the context of mutations in A:T and G:C sites during the affinity maturation of immunoglobulin genes. Previously, we demonstrated that AID contributes to mutagenesis in (de)methylated genomic DNA in various cancers. Our current analysis of methylation data from malignant lymphomas suggests that driver genes are subject to different (de)methylation processes than non-driver genes and, in addition to AID, the activity of pols η and θ contributes to the establishment of methylation-dependent mutation profiles. This may reflect the functional importance of interplay between mutagenesis in cancer and (de)methylation processes in different groups of genes. The resulting changes in CpG methylation levels and chromatin modifications are likely to cause changes in the expression levels of driver genes that may affect cancer initiation and/or progression.
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spelling pubmed-81701312021-06-03 DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers Rogozin, Igor B. Roche-Lima, Abiel Tyryshkin, Kathrin Carrasquillo-Carrión, Kelvin Lada, Artem G. Poliakov, Lennard Y. Schwartz, Elena Saura, Andreu Yurchenko, Vyacheslav Cooper, David N. Panchenko, Anna R. Pavlov, Youri I. Front Genet Genetics Cancer genomes harbor numerous genomic alterations and many cancers accumulate thousands of nucleotide sequence variations. A prominent fraction of these mutations arises as a consequence of the off-target activity of DNA/RNA editing cytosine deaminases followed by the replication/repair of edited sites by DNA polymerases (pol), as deduced from the analysis of the DNA sequence context of mutations in different tumor tissues. We have used the weight matrix (sequence profile) approach to analyze mutagenesis due to Activation Induced Deaminase (AID) and two error-prone DNA polymerases. Control experiments using shuffled weight matrices and somatic mutations in immunoglobulin genes confirmed the power of this method. Analysis of somatic mutations in various cancers suggested that AID and DNA polymerases η and θ contribute to mutagenesis in contexts that almost universally correlate with the context of mutations in A:T and G:C sites during the affinity maturation of immunoglobulin genes. Previously, we demonstrated that AID contributes to mutagenesis in (de)methylated genomic DNA in various cancers. Our current analysis of methylation data from malignant lymphomas suggests that driver genes are subject to different (de)methylation processes than non-driver genes and, in addition to AID, the activity of pols η and θ contributes to the establishment of methylation-dependent mutation profiles. This may reflect the functional importance of interplay between mutagenesis in cancer and (de)methylation processes in different groups of genes. The resulting changes in CpG methylation levels and chromatin modifications are likely to cause changes in the expression levels of driver genes that may affect cancer initiation and/or progression. Frontiers Media S.A. 2021-05-19 /pmc/articles/PMC8170131/ /pubmed/34093666 http://dx.doi.org/10.3389/fgene.2021.671866 Text en Copyright © 2021 Rogozin, Roche-Lima, Tyryshkin, Carrasquillo-Carrión, Lada, Poliakov, Schwartz, Saura, Yurchenko, Cooper, Panchenko and Pavlov. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Genetics
Rogozin, Igor B.
Roche-Lima, Abiel
Tyryshkin, Kathrin
Carrasquillo-Carrión, Kelvin
Lada, Artem G.
Poliakov, Lennard Y.
Schwartz, Elena
Saura, Andreu
Yurchenko, Vyacheslav
Cooper, David N.
Panchenko, Anna R.
Pavlov, Youri I.
DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title_full DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title_fullStr DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title_full_unstemmed DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title_short DNA Methylation, Deamination, and Translesion Synthesis Combine to Generate Footprint Mutations in Cancer Driver Genes in B-Cell Derived Lymphomas and Other Cancers
title_sort dna methylation, deamination, and translesion synthesis combine to generate footprint mutations in cancer driver genes in b-cell derived lymphomas and other cancers
topic Genetics
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8170131/
https://www.ncbi.nlm.nih.gov/pubmed/34093666
http://dx.doi.org/10.3389/fgene.2021.671866
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