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Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB

The mutagenic APOBEC3B (A3B) cytosine deaminase is frequently over-expressed in cancer and promotes tumour heterogeneity and therapy resistance. Hence, understanding the mechanisms that underlie A3B over-expression is important, especially for developing therapeutic approaches to reducing A3B levels...

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Autores principales: Periyasamy, Manikandan, Singh, Anup K, Gemma, Carolina, Farzan, Raed, Allsopp, Rebecca C, Shaw, Jacqueline A, Charmsaz, Sara, Young, Leonie S, Cunnea, Paula, Coombes, R Charles, Győrffy, Balázs, Buluwela, Lakjaya, Ali, Simak
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116738/
https://www.ncbi.nlm.nih.gov/pubmed/33323971
http://dx.doi.org/10.1038/s41388-020-01583-7
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author Periyasamy, Manikandan
Singh, Anup K
Gemma, Carolina
Farzan, Raed
Allsopp, Rebecca C
Shaw, Jacqueline A
Charmsaz, Sara
Young, Leonie S
Cunnea, Paula
Coombes, R Charles
Győrffy, Balázs
Buluwela, Lakjaya
Ali, Simak
author_facet Periyasamy, Manikandan
Singh, Anup K
Gemma, Carolina
Farzan, Raed
Allsopp, Rebecca C
Shaw, Jacqueline A
Charmsaz, Sara
Young, Leonie S
Cunnea, Paula
Coombes, R Charles
Győrffy, Balázs
Buluwela, Lakjaya
Ali, Simak
author_sort Periyasamy, Manikandan
collection PubMed
description The mutagenic APOBEC3B (A3B) cytosine deaminase is frequently over-expressed in cancer and promotes tumour heterogeneity and therapy resistance. Hence, understanding the mechanisms that underlie A3B over-expression is important, especially for developing therapeutic approaches to reducing A3B levels, and consequently limiting cancer mutagenesis. We previously demonstrated that A3B is repressed by p53 and p53 mutation increases A3B expression. Here, we investigate A3B expression upon treatment with chemotherapeutic drugs that activate p53, including 5-fluorouracil, etoposide and cisplatin. Contrary to expectation, these drugs induced A3B expression and concomitant cellular cytosine deaminase activity. A3B induction was p53-independent, as chemotherapy drugs stimulated A3B expression in p53 mutant cells. These drugs commonly activate ATM, ATR and DNA-PKcs. Using specific inhibitors and gene knockdowns, we show that activation of DNA-PKcs and ATM by chemotherapeutic drugs promotes NF-kB activity, with consequent recruitment of NF-kB to the A3B gene promoter to drive A3B expression. Further, we find that A3B knockdown re-sensitises resistant cells to cisplatin, and A3B knockout enhances sensitivity to chemotherapy drugs. Our data highlight a role for A3B in resistance to chemotherapy and indicate that stimulation of A3B expression by activation of DNA repair and NF-kB pathways could promote cancer mutations and expedite chemoresistance.
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spelling pubmed-71167382021-06-15 Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB Periyasamy, Manikandan Singh, Anup K Gemma, Carolina Farzan, Raed Allsopp, Rebecca C Shaw, Jacqueline A Charmsaz, Sara Young, Leonie S Cunnea, Paula Coombes, R Charles Győrffy, Balázs Buluwela, Lakjaya Ali, Simak Oncogene Article The mutagenic APOBEC3B (A3B) cytosine deaminase is frequently over-expressed in cancer and promotes tumour heterogeneity and therapy resistance. Hence, understanding the mechanisms that underlie A3B over-expression is important, especially for developing therapeutic approaches to reducing A3B levels, and consequently limiting cancer mutagenesis. We previously demonstrated that A3B is repressed by p53 and p53 mutation increases A3B expression. Here, we investigate A3B expression upon treatment with chemotherapeutic drugs that activate p53, including 5-fluorouracil, etoposide and cisplatin. Contrary to expectation, these drugs induced A3B expression and concomitant cellular cytosine deaminase activity. A3B induction was p53-independent, as chemotherapy drugs stimulated A3B expression in p53 mutant cells. These drugs commonly activate ATM, ATR and DNA-PKcs. Using specific inhibitors and gene knockdowns, we show that activation of DNA-PKcs and ATM by chemotherapeutic drugs promotes NF-kB activity, with consequent recruitment of NF-kB to the A3B gene promoter to drive A3B expression. Further, we find that A3B knockdown re-sensitises resistant cells to cisplatin, and A3B knockout enhances sensitivity to chemotherapy drugs. Our data highlight a role for A3B in resistance to chemotherapy and indicate that stimulation of A3B expression by activation of DNA repair and NF-kB pathways could promote cancer mutations and expedite chemoresistance. 2021-02-01 2020-12-15 /pmc/articles/PMC7116738/ /pubmed/33323971 http://dx.doi.org/10.1038/s41388-020-01583-7 Text en Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Periyasamy, Manikandan
Singh, Anup K
Gemma, Carolina
Farzan, Raed
Allsopp, Rebecca C
Shaw, Jacqueline A
Charmsaz, Sara
Young, Leonie S
Cunnea, Paula
Coombes, R Charles
Győrffy, Balázs
Buluwela, Lakjaya
Ali, Simak
Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title_full Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title_fullStr Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title_full_unstemmed Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title_short Induction of APOBEC3B expression by chemotherapy drugs is mediated by DNA-PK directed activation of NF-κB
title_sort induction of apobec3b expression by chemotherapy drugs is mediated by dna-pk directed activation of nf-κb
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7116738/
https://www.ncbi.nlm.nih.gov/pubmed/33323971
http://dx.doi.org/10.1038/s41388-020-01583-7
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