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Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity

Human apurinic/apyrimidinic endonuclease 1 (APE1) participates in the DNA repair system. It is believed that the main biological function of APE1 is Mg(2+)-dependent hydrolysis of AP-sites in DNA. On the base of structural data, kinetic studies, and mutation analysis, the key stages of APE1 interact...

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Autores principales: Kuznetsova, A. A., Gavrilova, A. A., Novopashina, D. S., Fedorova, O. S., Kuznetsov, N. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Pleiades Publishing 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8083922/
https://www.ncbi.nlm.nih.gov/pubmed/33948042
http://dx.doi.org/10.1134/S0026893321020102
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author Kuznetsova, A. A.
Gavrilova, A. A.
Novopashina, D. S.
Fedorova, O. S.
Kuznetsov, N. A.
author_facet Kuznetsova, A. A.
Gavrilova, A. A.
Novopashina, D. S.
Fedorova, O. S.
Kuznetsov, N. A.
author_sort Kuznetsova, A. A.
collection PubMed
description Human apurinic/apyrimidinic endonuclease 1 (APE1) participates in the DNA repair system. It is believed that the main biological function of APE1 is Mg(2+)-dependent hydrolysis of AP-sites in DNA. On the base of structural data, kinetic studies, and mutation analysis, the key stages of APE1 interaction with damaged DNA were established. It has been shown recently that APE1 can act as an endoribonuclease that catalyzes mRNA hydrolysis at certain pyrimidine–purine sites and thus controls the level of certain transcripts. In addition, the presence of Mg(2+) ions was shown to be not required for the endoribonuclease activity of APE1, in contrast to the AP-endonuclease activity. This indicates differences in mechanisms of APE1 catalysis on RNA and DNA substrates, but the reasons for these differences remain unclear. Here, the analysis of endoribonuclease hydrolysis of model RNA substrates with wild type APE1 enzyme and its mutant forms Y171F, R177F, R181A, D210N, N212A, T268D, M270A, and D308A, was performed. It was shown that mutation of Asn212, Asp210, and Tyr171 residues leads to the decrease of AP-endonuclease activity while endoribonuclease activity is retained. Also, T268D and M270A APE1 mutants lose specificity to pyrimidine–purine sequences. R177F and R181A did not show a significant decrease in enzyme activity, whereas D308A demonstrated a decrease of endoribonuclease activity.
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spelling pubmed-80839222021-04-30 Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity Kuznetsova, A. A. Gavrilova, A. A. Novopashina, D. S. Fedorova, O. S. Kuznetsov, N. A. Mol Biol Enzymology of DNA Repair Systems Human apurinic/apyrimidinic endonuclease 1 (APE1) participates in the DNA repair system. It is believed that the main biological function of APE1 is Mg(2+)-dependent hydrolysis of AP-sites in DNA. On the base of structural data, kinetic studies, and mutation analysis, the key stages of APE1 interaction with damaged DNA were established. It has been shown recently that APE1 can act as an endoribonuclease that catalyzes mRNA hydrolysis at certain pyrimidine–purine sites and thus controls the level of certain transcripts. In addition, the presence of Mg(2+) ions was shown to be not required for the endoribonuclease activity of APE1, in contrast to the AP-endonuclease activity. This indicates differences in mechanisms of APE1 catalysis on RNA and DNA substrates, but the reasons for these differences remain unclear. Here, the analysis of endoribonuclease hydrolysis of model RNA substrates with wild type APE1 enzyme and its mutant forms Y171F, R177F, R181A, D210N, N212A, T268D, M270A, and D308A, was performed. It was shown that mutation of Asn212, Asp210, and Tyr171 residues leads to the decrease of AP-endonuclease activity while endoribonuclease activity is retained. Also, T268D and M270A APE1 mutants lose specificity to pyrimidine–purine sequences. R177F and R181A did not show a significant decrease in enzyme activity, whereas D308A demonstrated a decrease of endoribonuclease activity. Pleiades Publishing 2021-04-29 2021 /pmc/articles/PMC8083922/ /pubmed/33948042 http://dx.doi.org/10.1134/S0026893321020102 Text en © Pleiades Publishing, Inc. 2021, ISSN 0026-8933, Molecular Biology, 2021, Vol. 55, No. 2, pp. 211–224. © Pleiades Publishing, Inc., 2021.Russian Text © The Author(s), 2021, published in Molekulyarnaya Biologiya, 2021, Vol. 55, No. 2, pp. 243–257. This article is made available via the PMC Open Access Subset for unrestricted research re-use and secondary analysis in any form or by any means with acknowledgement of the original source. These permissions are granted for the duration of the World Health Organization (WHO) declaration of COVID-19 as a global pandemic.
spellingShingle Enzymology of DNA Repair Systems
Kuznetsova, A. A.
Gavrilova, A. A.
Novopashina, D. S.
Fedorova, O. S.
Kuznetsov, N. A.
Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title_full Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title_fullStr Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title_full_unstemmed Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title_short Mutational and Kinetic Analysis of APE1 Endoribonuclease Activity
title_sort mutational and kinetic analysis of ape1 endoribonuclease activity
topic Enzymology of DNA Repair Systems
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8083922/
https://www.ncbi.nlm.nih.gov/pubmed/33948042
http://dx.doi.org/10.1134/S0026893321020102
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