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Covalent Aurora A regulation by the metabolic integrator coenzyme A

Aurora A kinase is a master mitotic regulator whose functions are controlled by several regulatory interactions and post-translational modifications. It is frequently dysregulated in cancer, making Aurora A inhibition a very attractive antitumor target. However, recently uncovered links between Auro...

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Autores principales: Tsuchiya, Yugo, Byrne, Dominic P., Burgess, Selena G., Bormann, Jenny, Baković, Jovana, Huang, Yueyang, Zhyvoloup, Alexander, Yu, Bess Yi Kun, Peak-Chew, Sew, Tran, Trang, Bellany, Fiona, Tabor, Alethea B., Chan, AW Edith, Guruprasad, Lalitha, Garifulin, Oleg, Filonenko, Valeriy, Vonderach, Matthias, Ferries, Samantha, Eyers, Claire E., Carroll, John, Skehel, Mark, Bayliss, Richard, Eyers, Patrick A., Gout, Ivan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6812009/
https://www.ncbi.nlm.nih.gov/pubmed/31546169
http://dx.doi.org/10.1016/j.redox.2019.101318
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author Tsuchiya, Yugo
Byrne, Dominic P.
Burgess, Selena G.
Bormann, Jenny
Baković, Jovana
Huang, Yueyang
Zhyvoloup, Alexander
Yu, Bess Yi Kun
Peak-Chew, Sew
Tran, Trang
Bellany, Fiona
Tabor, Alethea B.
Chan, AW Edith
Guruprasad, Lalitha
Garifulin, Oleg
Filonenko, Valeriy
Vonderach, Matthias
Ferries, Samantha
Eyers, Claire E.
Carroll, John
Skehel, Mark
Bayliss, Richard
Eyers, Patrick A.
Gout, Ivan
author_facet Tsuchiya, Yugo
Byrne, Dominic P.
Burgess, Selena G.
Bormann, Jenny
Baković, Jovana
Huang, Yueyang
Zhyvoloup, Alexander
Yu, Bess Yi Kun
Peak-Chew, Sew
Tran, Trang
Bellany, Fiona
Tabor, Alethea B.
Chan, AW Edith
Guruprasad, Lalitha
Garifulin, Oleg
Filonenko, Valeriy
Vonderach, Matthias
Ferries, Samantha
Eyers, Claire E.
Carroll, John
Skehel, Mark
Bayliss, Richard
Eyers, Patrick A.
Gout, Ivan
author_sort Tsuchiya, Yugo
collection PubMed
description Aurora A kinase is a master mitotic regulator whose functions are controlled by several regulatory interactions and post-translational modifications. It is frequently dysregulated in cancer, making Aurora A inhibition a very attractive antitumor target. However, recently uncovered links between Aurora A, cellular metabolism and redox regulation are not well understood. In this study, we report a novel mechanism of Aurora A regulation in the cellular response to oxidative stress through CoAlation. A combination of biochemical, biophysical, crystallographic and cell biology approaches revealed a new and, to our knowledge, unique mode of Aurora A inhibition by CoA, involving selective binding of the ADP moiety of CoA to the ATP binding pocket and covalent modification of Cys290 in the activation loop by the thiol group of the pantetheine tail. We provide evidence that covalent CoA modification (CoAlation) of Aurora A is specific, and that it can be induced by oxidative stress in human cells. Oxidising agents, such as diamide, hydrogen peroxide and menadione were found to induce Thr 288 phosphorylation and DTT-dependent dimerization of Aurora A. Moreover, microinjection of CoA into fertilized mouse embryos disrupts bipolar spindle formation and the alignment of chromosomes, consistent with Aurora A inhibition. Altogether, our data reveal CoA as a new, rather selective, inhibitor of Aurora A, which locks this kinase in an inactive state via a “dual anchor” mechanism of inhibition that might also operate in cellular response to oxidative stress. Finally and most importantly, we believe that these novel findings provide a new rationale for developing effective and irreversible inhibitors of Aurora A, and perhaps other protein kinases containing appropriately conserved Cys residues.
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spelling pubmed-68120092019-10-30 Covalent Aurora A regulation by the metabolic integrator coenzyme A Tsuchiya, Yugo Byrne, Dominic P. Burgess, Selena G. Bormann, Jenny Baković, Jovana Huang, Yueyang Zhyvoloup, Alexander Yu, Bess Yi Kun Peak-Chew, Sew Tran, Trang Bellany, Fiona Tabor, Alethea B. Chan, AW Edith Guruprasad, Lalitha Garifulin, Oleg Filonenko, Valeriy Vonderach, Matthias Ferries, Samantha Eyers, Claire E. Carroll, John Skehel, Mark Bayliss, Richard Eyers, Patrick A. Gout, Ivan Redox Biol Research Paper Aurora A kinase is a master mitotic regulator whose functions are controlled by several regulatory interactions and post-translational modifications. It is frequently dysregulated in cancer, making Aurora A inhibition a very attractive antitumor target. However, recently uncovered links between Aurora A, cellular metabolism and redox regulation are not well understood. In this study, we report a novel mechanism of Aurora A regulation in the cellular response to oxidative stress through CoAlation. A combination of biochemical, biophysical, crystallographic and cell biology approaches revealed a new and, to our knowledge, unique mode of Aurora A inhibition by CoA, involving selective binding of the ADP moiety of CoA to the ATP binding pocket and covalent modification of Cys290 in the activation loop by the thiol group of the pantetheine tail. We provide evidence that covalent CoA modification (CoAlation) of Aurora A is specific, and that it can be induced by oxidative stress in human cells. Oxidising agents, such as diamide, hydrogen peroxide and menadione were found to induce Thr 288 phosphorylation and DTT-dependent dimerization of Aurora A. Moreover, microinjection of CoA into fertilized mouse embryos disrupts bipolar spindle formation and the alignment of chromosomes, consistent with Aurora A inhibition. Altogether, our data reveal CoA as a new, rather selective, inhibitor of Aurora A, which locks this kinase in an inactive state via a “dual anchor” mechanism of inhibition that might also operate in cellular response to oxidative stress. Finally and most importantly, we believe that these novel findings provide a new rationale for developing effective and irreversible inhibitors of Aurora A, and perhaps other protein kinases containing appropriately conserved Cys residues. Elsevier 2019-09-05 /pmc/articles/PMC6812009/ /pubmed/31546169 http://dx.doi.org/10.1016/j.redox.2019.101318 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Paper
Tsuchiya, Yugo
Byrne, Dominic P.
Burgess, Selena G.
Bormann, Jenny
Baković, Jovana
Huang, Yueyang
Zhyvoloup, Alexander
Yu, Bess Yi Kun
Peak-Chew, Sew
Tran, Trang
Bellany, Fiona
Tabor, Alethea B.
Chan, AW Edith
Guruprasad, Lalitha
Garifulin, Oleg
Filonenko, Valeriy
Vonderach, Matthias
Ferries, Samantha
Eyers, Claire E.
Carroll, John
Skehel, Mark
Bayliss, Richard
Eyers, Patrick A.
Gout, Ivan
Covalent Aurora A regulation by the metabolic integrator coenzyme A
title Covalent Aurora A regulation by the metabolic integrator coenzyme A
title_full Covalent Aurora A regulation by the metabolic integrator coenzyme A
title_fullStr Covalent Aurora A regulation by the metabolic integrator coenzyme A
title_full_unstemmed Covalent Aurora A regulation by the metabolic integrator coenzyme A
title_short Covalent Aurora A regulation by the metabolic integrator coenzyme A
title_sort covalent aurora a regulation by the metabolic integrator coenzyme a
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6812009/
https://www.ncbi.nlm.nih.gov/pubmed/31546169
http://dx.doi.org/10.1016/j.redox.2019.101318
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