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A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation

The localization of NQO1 near acetylated microtubules has led to the hypothesis that NQO1 may work in concert with the NAD(+)-dependent deacetylase SIRT2 to regulate acetyl α-tubulin (K(40)) levels on microtubules. NQO1 catalyzes the oxidation of NADH to NAD(+) and may supplement levels of NAD(+) ne...

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Autores principales: Siegel, David, Bersie, Stephanie, Harris, Peter, Di Francesco, Andrea, Armstrong, Michael, Reisdorph, Nichole, Bernier, Michel, de Cabo, Rafael, Fritz, Kristofer, Ross, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7772575/
https://www.ncbi.nlm.nih.gov/pubmed/33360352
http://dx.doi.org/10.1016/j.redox.2020.101840
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author Siegel, David
Bersie, Stephanie
Harris, Peter
Di Francesco, Andrea
Armstrong, Michael
Reisdorph, Nichole
Bernier, Michel
de Cabo, Rafael
Fritz, Kristofer
Ross, David
author_facet Siegel, David
Bersie, Stephanie
Harris, Peter
Di Francesco, Andrea
Armstrong, Michael
Reisdorph, Nichole
Bernier, Michel
de Cabo, Rafael
Fritz, Kristofer
Ross, David
author_sort Siegel, David
collection PubMed
description The localization of NQO1 near acetylated microtubules has led to the hypothesis that NQO1 may work in concert with the NAD(+)-dependent deacetylase SIRT2 to regulate acetyl α-tubulin (K(40)) levels on microtubules. NQO1 catalyzes the oxidation of NADH to NAD(+) and may supplement levels of NAD(+) near microtubules to aid SIRT2 deacetylase activity. While HDAC6 has been shown to regulate the majority of microtubule acetylation at K(40), SIRT2 is also known to modulate microtubule acetylation (K(40)) in the perinuclear region. In this study we examined the potential roles NQO1 may play in modulating acetyl α-tubulin levels. Knock-out or knock-down of NQO1 or SIRT2 did not change the levels of acetyl α-tubulin in 16HBE human bronchial epithelial cells and 3T3-L1 fibroblasts; however, treatment with a mechanism-based inhibitor of NQO1 (MI2321) led to a short-lived temporal increase in acetyl α-tubulin levels in both cell lines without impacting the intracellular pools of NADH or NAD(+). Inactivation of NQO1 by MI2321 resulted in lower levels of NQO1 immunostaining on microtubules, consistent with redox-dependent changes in NQO1 conformation as evidenced by the use of redox-specific, anti-NQO1 antibodies in immunoprecipitation studies. Given the highly dynamic nature of acetylation-deacetylation reactions at α-tubulin K(40) and the crowded protein environment surrounding this site, disruption in the binding of NQO1 to microtubules may temporally disturb the physical interactions of enzymes responsible for maintaining the microtubule acetylome.
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spelling pubmed-77725752020-12-30 A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation Siegel, David Bersie, Stephanie Harris, Peter Di Francesco, Andrea Armstrong, Michael Reisdorph, Nichole Bernier, Michel de Cabo, Rafael Fritz, Kristofer Ross, David Redox Biol Research Paper The localization of NQO1 near acetylated microtubules has led to the hypothesis that NQO1 may work in concert with the NAD(+)-dependent deacetylase SIRT2 to regulate acetyl α-tubulin (K(40)) levels on microtubules. NQO1 catalyzes the oxidation of NADH to NAD(+) and may supplement levels of NAD(+) near microtubules to aid SIRT2 deacetylase activity. While HDAC6 has been shown to regulate the majority of microtubule acetylation at K(40), SIRT2 is also known to modulate microtubule acetylation (K(40)) in the perinuclear region. In this study we examined the potential roles NQO1 may play in modulating acetyl α-tubulin levels. Knock-out or knock-down of NQO1 or SIRT2 did not change the levels of acetyl α-tubulin in 16HBE human bronchial epithelial cells and 3T3-L1 fibroblasts; however, treatment with a mechanism-based inhibitor of NQO1 (MI2321) led to a short-lived temporal increase in acetyl α-tubulin levels in both cell lines without impacting the intracellular pools of NADH or NAD(+). Inactivation of NQO1 by MI2321 resulted in lower levels of NQO1 immunostaining on microtubules, consistent with redox-dependent changes in NQO1 conformation as evidenced by the use of redox-specific, anti-NQO1 antibodies in immunoprecipitation studies. Given the highly dynamic nature of acetylation-deacetylation reactions at α-tubulin K(40) and the crowded protein environment surrounding this site, disruption in the binding of NQO1 to microtubules may temporally disturb the physical interactions of enzymes responsible for maintaining the microtubule acetylome. Elsevier 2020-12-18 /pmc/articles/PMC7772575/ /pubmed/33360352 http://dx.doi.org/10.1016/j.redox.2020.101840 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Siegel, David
Bersie, Stephanie
Harris, Peter
Di Francesco, Andrea
Armstrong, Michael
Reisdorph, Nichole
Bernier, Michel
de Cabo, Rafael
Fritz, Kristofer
Ross, David
A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title_full A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title_fullStr A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title_full_unstemmed A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title_short A redox-mediated conformational change in NQO1 controls binding to microtubules and α-tubulin acetylation
title_sort redox-mediated conformational change in nqo1 controls binding to microtubules and α-tubulin acetylation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7772575/
https://www.ncbi.nlm.nih.gov/pubmed/33360352
http://dx.doi.org/10.1016/j.redox.2020.101840
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