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Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles

Interactions of cell-autonomous circadian oscillators with diurnal cycles govern the temporal compartmentalization of cell physiology in mammals. To understand the transcriptional and epigenetic basis of diurnal rhythms in mouse liver genome-wide, we generated temporal DNA occupancy profiles by RNA...

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Autores principales: Le Martelot, Gwendal, Canella, Donatella, Symul, Laura, Migliavacca, Eugenia, Gilardi, Federica, Liechti, Robin, Martin, Olivier, Harshman, Keith, Delorenzi, Mauro, Desvergne, Béatrice, Herr, Winship, Deplancke, Bart, Schibler, Ueli, Rougemont, Jacques, Guex, Nicolas, Hernandez, Nouria, Naef, Felix
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507959/
https://www.ncbi.nlm.nih.gov/pubmed/23209382
http://dx.doi.org/10.1371/journal.pbio.1001442
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author Le Martelot, Gwendal
Canella, Donatella
Symul, Laura
Migliavacca, Eugenia
Gilardi, Federica
Liechti, Robin
Martin, Olivier
Harshman, Keith
Delorenzi, Mauro
Desvergne, Béatrice
Herr, Winship
Deplancke, Bart
Schibler, Ueli
Rougemont, Jacques
Guex, Nicolas
Hernandez, Nouria
Naef, Felix
author_facet Le Martelot, Gwendal
Canella, Donatella
Symul, Laura
Migliavacca, Eugenia
Gilardi, Federica
Liechti, Robin
Martin, Olivier
Harshman, Keith
Delorenzi, Mauro
Desvergne, Béatrice
Herr, Winship
Deplancke, Bart
Schibler, Ueli
Rougemont, Jacques
Guex, Nicolas
Hernandez, Nouria
Naef, Felix
author_sort Le Martelot, Gwendal
collection PubMed
description Interactions of cell-autonomous circadian oscillators with diurnal cycles govern the temporal compartmentalization of cell physiology in mammals. To understand the transcriptional and epigenetic basis of diurnal rhythms in mouse liver genome-wide, we generated temporal DNA occupancy profiles by RNA polymerase II (Pol II) as well as profiles of the histone modifications H3K4me3 and H3K36me3. We used these data to quantify the relationships of phases and amplitudes between different marks. We found that rhythmic Pol II recruitment at promoters rather than rhythmic transition from paused to productive elongation underlies diurnal gene transcription, a conclusion further supported by modeling. Moreover, Pol II occupancy preceded mRNA accumulation by 3 hours, consistent with mRNA half-lives. Both methylation marks showed that the epigenetic landscape is highly dynamic and globally remodeled during the 24-hour cycle. While promoters of transcribed genes had tri-methylated H3K4 even at their trough activity times, tri-methylation levels reached their peak, on average, 1 hour after Pol II. Meanwhile, rhythms in tri-methylation of H3K36 lagged transcription by 3 hours. Finally, modeling profiles of Pol II occupancy and mRNA accumulation identified three classes of genes: one showing rhythmicity both in transcriptional and mRNA accumulation, a second class with rhythmic transcription but flat mRNA levels, and a third with constant transcription but rhythmic mRNAs. The latter class emphasizes widespread temporally gated posttranscriptional regulation in the mouse liver.
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spelling pubmed-35079592012-12-03 Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles Le Martelot, Gwendal Canella, Donatella Symul, Laura Migliavacca, Eugenia Gilardi, Federica Liechti, Robin Martin, Olivier Harshman, Keith Delorenzi, Mauro Desvergne, Béatrice Herr, Winship Deplancke, Bart Schibler, Ueli Rougemont, Jacques Guex, Nicolas Hernandez, Nouria Naef, Felix PLoS Biol Research Article Interactions of cell-autonomous circadian oscillators with diurnal cycles govern the temporal compartmentalization of cell physiology in mammals. To understand the transcriptional and epigenetic basis of diurnal rhythms in mouse liver genome-wide, we generated temporal DNA occupancy profiles by RNA polymerase II (Pol II) as well as profiles of the histone modifications H3K4me3 and H3K36me3. We used these data to quantify the relationships of phases and amplitudes between different marks. We found that rhythmic Pol II recruitment at promoters rather than rhythmic transition from paused to productive elongation underlies diurnal gene transcription, a conclusion further supported by modeling. Moreover, Pol II occupancy preceded mRNA accumulation by 3 hours, consistent with mRNA half-lives. Both methylation marks showed that the epigenetic landscape is highly dynamic and globally remodeled during the 24-hour cycle. While promoters of transcribed genes had tri-methylated H3K4 even at their trough activity times, tri-methylation levels reached their peak, on average, 1 hour after Pol II. Meanwhile, rhythms in tri-methylation of H3K36 lagged transcription by 3 hours. Finally, modeling profiles of Pol II occupancy and mRNA accumulation identified three classes of genes: one showing rhythmicity both in transcriptional and mRNA accumulation, a second class with rhythmic transcription but flat mRNA levels, and a third with constant transcription but rhythmic mRNAs. The latter class emphasizes widespread temporally gated posttranscriptional regulation in the mouse liver. Public Library of Science 2012-11-27 /pmc/articles/PMC3507959/ /pubmed/23209382 http://dx.doi.org/10.1371/journal.pbio.1001442 Text en © 2012 Le Martelot 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
Le Martelot, Gwendal
Canella, Donatella
Symul, Laura
Migliavacca, Eugenia
Gilardi, Federica
Liechti, Robin
Martin, Olivier
Harshman, Keith
Delorenzi, Mauro
Desvergne, Béatrice
Herr, Winship
Deplancke, Bart
Schibler, Ueli
Rougemont, Jacques
Guex, Nicolas
Hernandez, Nouria
Naef, Felix
Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title_full Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title_fullStr Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title_full_unstemmed Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title_short Genome-Wide RNA Polymerase II Profiles and RNA Accumulation Reveal Kinetics of Transcription and Associated Epigenetic Changes During Diurnal Cycles
title_sort genome-wide rna polymerase ii profiles and rna accumulation reveal kinetics of transcription and associated epigenetic changes during diurnal cycles
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3507959/
https://www.ncbi.nlm.nih.gov/pubmed/23209382
http://dx.doi.org/10.1371/journal.pbio.1001442
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