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CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock

Intracellular circadian clocks, composed of clock genes that act in transcription-translation feedback loops, drive global rhythmic expression of the mammalian transcriptome and allow an organism to anticipate to the momentum of the day. Using a novel clock-perturbing peptide, we established a pivot...

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Autores principales: Tamaru, Teruya, Hattori, Mitsuru, Honda, Kousuke, Nakahata, Yasukazu, Sassone-Corsi, Paolo, van der Horst, Gijsbertus T. J., Ozawa, Takeaki, Takamatsu, Ken
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4642984/
https://www.ncbi.nlm.nih.gov/pubmed/26562092
http://dx.doi.org/10.1371/journal.pbio.1002293
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author Tamaru, Teruya
Hattori, Mitsuru
Honda, Kousuke
Nakahata, Yasukazu
Sassone-Corsi, Paolo
van der Horst, Gijsbertus T. J.
Ozawa, Takeaki
Takamatsu, Ken
author_facet Tamaru, Teruya
Hattori, Mitsuru
Honda, Kousuke
Nakahata, Yasukazu
Sassone-Corsi, Paolo
van der Horst, Gijsbertus T. J.
Ozawa, Takeaki
Takamatsu, Ken
author_sort Tamaru, Teruya
collection PubMed
description Intracellular circadian clocks, composed of clock genes that act in transcription-translation feedback loops, drive global rhythmic expression of the mammalian transcriptome and allow an organism to anticipate to the momentum of the day. Using a novel clock-perturbing peptide, we established a pivotal role for casein kinase (CK)-2-mediated circadian BMAL1-Ser90 phosphorylation (BMAL1-P) in regulating central and peripheral core clocks. Subsequent analysis of the underlying mechanism showed a novel role of CRY as a repressor for protein kinase. Co-immunoprecipitation experiments and real-time monitoring of protein–protein interactions revealed that CRY-mediated periodic binding of CK2β to BMAL1 inhibits BMAL1-Ser90 phosphorylation by CK2α. The FAD binding domain of CRY1, two C-terminal BMAL1 domains, and particularly BMAL1-Lys537 acetylation/deacetylation by CLOCK/SIRT1, were shown to be critical for CRY-mediated BMAL1–CK2β binding. Reciprocally, BMAL1-Ser90 phosphorylation is prerequisite for BMAL1-Lys537 acetylation. We propose a dual negative-feedback model in which a CRY-dependent CK2-driven posttranslational BMAL1–P-BMAL1 loop is an integral part of the core clock oscillator.
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spelling pubmed-46429842015-11-18 CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock Tamaru, Teruya Hattori, Mitsuru Honda, Kousuke Nakahata, Yasukazu Sassone-Corsi, Paolo van der Horst, Gijsbertus T. J. Ozawa, Takeaki Takamatsu, Ken PLoS Biol Research Article Intracellular circadian clocks, composed of clock genes that act in transcription-translation feedback loops, drive global rhythmic expression of the mammalian transcriptome and allow an organism to anticipate to the momentum of the day. Using a novel clock-perturbing peptide, we established a pivotal role for casein kinase (CK)-2-mediated circadian BMAL1-Ser90 phosphorylation (BMAL1-P) in regulating central and peripheral core clocks. Subsequent analysis of the underlying mechanism showed a novel role of CRY as a repressor for protein kinase. Co-immunoprecipitation experiments and real-time monitoring of protein–protein interactions revealed that CRY-mediated periodic binding of CK2β to BMAL1 inhibits BMAL1-Ser90 phosphorylation by CK2α. The FAD binding domain of CRY1, two C-terminal BMAL1 domains, and particularly BMAL1-Lys537 acetylation/deacetylation by CLOCK/SIRT1, were shown to be critical for CRY-mediated BMAL1–CK2β binding. Reciprocally, BMAL1-Ser90 phosphorylation is prerequisite for BMAL1-Lys537 acetylation. We propose a dual negative-feedback model in which a CRY-dependent CK2-driven posttranslational BMAL1–P-BMAL1 loop is an integral part of the core clock oscillator. Public Library of Science 2015-11-12 /pmc/articles/PMC4642984/ /pubmed/26562092 http://dx.doi.org/10.1371/journal.pbio.1002293 Text en © 2015 Tamaru et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Tamaru, Teruya
Hattori, Mitsuru
Honda, Kousuke
Nakahata, Yasukazu
Sassone-Corsi, Paolo
van der Horst, Gijsbertus T. J.
Ozawa, Takeaki
Takamatsu, Ken
CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title_full CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title_fullStr CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title_full_unstemmed CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title_short CRY Drives Cyclic CK2-Mediated BMAL1 Phosphorylation to Control the Mammalian Circadian Clock
title_sort cry drives cyclic ck2-mediated bmal1 phosphorylation to control the mammalian circadian clock
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4642984/
https://www.ncbi.nlm.nih.gov/pubmed/26562092
http://dx.doi.org/10.1371/journal.pbio.1002293
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