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12-h clock regulation of genetic information flow by XBP1s

Our group recently characterized a cell-autonomous mammalian 12-h clock independent from the circadian clock, but its function and mechanism of regulation remain poorly understood. Here, we show that in mouse liver, transcriptional regulation significantly contributes to the establishment of 12-h rh...

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Autores principales: Pan, Yinghong, Ballance, Heather, Meng, Huan, Gonzalez, Naomi, Kim, Sam-Moon, Abdurehman, Leymaan, York, Brian, Chen, Xi, Schnytzer, Yisrael, Levy, Oren, Dacso, Clifford C., McClung, Colleen A., O’Malley, Bert W., Liu, Silvia, Zhu, Bokai
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6959563/
https://www.ncbi.nlm.nih.gov/pubmed/31935211
http://dx.doi.org/10.1371/journal.pbio.3000580
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author Pan, Yinghong
Ballance, Heather
Meng, Huan
Gonzalez, Naomi
Kim, Sam-Moon
Abdurehman, Leymaan
York, Brian
Chen, Xi
Schnytzer, Yisrael
Levy, Oren
Dacso, Clifford C.
McClung, Colleen A.
O’Malley, Bert W.
Liu, Silvia
Zhu, Bokai
author_facet Pan, Yinghong
Ballance, Heather
Meng, Huan
Gonzalez, Naomi
Kim, Sam-Moon
Abdurehman, Leymaan
York, Brian
Chen, Xi
Schnytzer, Yisrael
Levy, Oren
Dacso, Clifford C.
McClung, Colleen A.
O’Malley, Bert W.
Liu, Silvia
Zhu, Bokai
author_sort Pan, Yinghong
collection PubMed
description Our group recently characterized a cell-autonomous mammalian 12-h clock independent from the circadian clock, but its function and mechanism of regulation remain poorly understood. Here, we show that in mouse liver, transcriptional regulation significantly contributes to the establishment of 12-h rhythms of mRNA expression in a manner dependent on Spliced Form of X-box Binding Protein 1 (XBP1s). Mechanistically, the motif stringency of XBP1s promoter binding sites dictates XBP1s’s ability to drive 12-h rhythms of nascent mRNA transcription at dawn and dusk, which are enriched for basal transcription regulation, mRNA processing and export, ribosome biogenesis, translation initiation, and protein processing/sorting in the Endoplasmic Reticulum (ER)-Golgi in a temporal order consistent with the progressive molecular processing sequence described by the central dogma information flow (CEDIF). We further identified GA-binding proteins (GABPs) as putative novel transcriptional regulators driving 12-h rhythms of gene expression with more diverse phases. These 12-h rhythms of gene expression are cell autonomous and evolutionarily conserved in marine animals possessing a circatidal clock. Our results demonstrate an evolutionarily conserved, intricate network of transcriptional control of the mammalian 12-h clock that mediates diverse biological pathways. We speculate that the 12-h clock is coopted to accommodate elevated gene expression and processing in mammals at the two rush hours, with the particular genes processed at each rush hour regulated by the circadian and/or tissue-specific pathways.
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spelling pubmed-69595632020-01-26 12-h clock regulation of genetic information flow by XBP1s Pan, Yinghong Ballance, Heather Meng, Huan Gonzalez, Naomi Kim, Sam-Moon Abdurehman, Leymaan York, Brian Chen, Xi Schnytzer, Yisrael Levy, Oren Dacso, Clifford C. McClung, Colleen A. O’Malley, Bert W. Liu, Silvia Zhu, Bokai PLoS Biol Research Article Our group recently characterized a cell-autonomous mammalian 12-h clock independent from the circadian clock, but its function and mechanism of regulation remain poorly understood. Here, we show that in mouse liver, transcriptional regulation significantly contributes to the establishment of 12-h rhythms of mRNA expression in a manner dependent on Spliced Form of X-box Binding Protein 1 (XBP1s). Mechanistically, the motif stringency of XBP1s promoter binding sites dictates XBP1s’s ability to drive 12-h rhythms of nascent mRNA transcription at dawn and dusk, which are enriched for basal transcription regulation, mRNA processing and export, ribosome biogenesis, translation initiation, and protein processing/sorting in the Endoplasmic Reticulum (ER)-Golgi in a temporal order consistent with the progressive molecular processing sequence described by the central dogma information flow (CEDIF). We further identified GA-binding proteins (GABPs) as putative novel transcriptional regulators driving 12-h rhythms of gene expression with more diverse phases. These 12-h rhythms of gene expression are cell autonomous and evolutionarily conserved in marine animals possessing a circatidal clock. Our results demonstrate an evolutionarily conserved, intricate network of transcriptional control of the mammalian 12-h clock that mediates diverse biological pathways. We speculate that the 12-h clock is coopted to accommodate elevated gene expression and processing in mammals at the two rush hours, with the particular genes processed at each rush hour regulated by the circadian and/or tissue-specific pathways. Public Library of Science 2020-01-14 /pmc/articles/PMC6959563/ /pubmed/31935211 http://dx.doi.org/10.1371/journal.pbio.3000580 Text en © 2020 Pan 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 (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Pan, Yinghong
Ballance, Heather
Meng, Huan
Gonzalez, Naomi
Kim, Sam-Moon
Abdurehman, Leymaan
York, Brian
Chen, Xi
Schnytzer, Yisrael
Levy, Oren
Dacso, Clifford C.
McClung, Colleen A.
O’Malley, Bert W.
Liu, Silvia
Zhu, Bokai
12-h clock regulation of genetic information flow by XBP1s
title 12-h clock regulation of genetic information flow by XBP1s
title_full 12-h clock regulation of genetic information flow by XBP1s
title_fullStr 12-h clock regulation of genetic information flow by XBP1s
title_full_unstemmed 12-h clock regulation of genetic information flow by XBP1s
title_short 12-h clock regulation of genetic information flow by XBP1s
title_sort 12-h clock regulation of genetic information flow by xbp1s
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6959563/
https://www.ncbi.nlm.nih.gov/pubmed/31935211
http://dx.doi.org/10.1371/journal.pbio.3000580
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