Literature DB >> 33524027

Oscillating and stable genome topologies underlie hepatic physiological rhythms during the circadian cycle.

Jérôme Mermet1, Jake Yeung1, Felix Naef1.   

Abstract

The circadian clock drives extensive temporal gene expression programs controlling daily changes in behavior and physiology. In mouse liver, transcription factors dynamics, chromatin modifications, and RNA Polymerase II (PolII) activity oscillate throughout the 24-hour (24h) day, regulating the rhythmic synthesis of thousands of transcripts. Also, 24h rhythms in gene promoter-enhancer chromatin looping accompany rhythmic mRNA synthesis. However, how chromatin organization impinges on temporal transcription and liver physiology remains unclear. Here, we applied time-resolved chromosome conformation capture (4C-seq) in livers of WT and arrhythmic Bmal1 knockout mice. In WT, we observed 24h oscillations in promoter-enhancer loops at multiple loci including the core-clock genes Period1, Period2 and Bmal1. In addition, we detected rhythmic PolII activity, chromatin modifications and transcription involving stable chromatin loops at clock-output gene promoters representing key liver function such as glucose metabolism and detoxification. Intriguingly, these contacts persisted in clock-impaired mice in which both PolII activity and chromatin marks no longer oscillated. Finally, we observed chromatin interaction hubs connecting neighbouring genes showing coherent transcription regulation across genotypes. Thus, both clock-controlled and clock-independent chromatin topology underlie rhythmic regulation of liver physiology.

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Year:  2021        PMID: 33524027      PMCID: PMC7877755          DOI: 10.1371/journal.pgen.1009350

Source DB:  PubMed          Journal:  PLoS Genet        ISSN: 1553-7390            Impact factor:   5.917


  46 in total

Review 1.  Rhythms of the Genome: Circadian Dynamics from Chromatin Topology, Tissue-Specific Gene Expression, to Behavior.

Authors:  Jake Yeung; Felix Naef
Journal:  Trends Genet       Date:  2018-10-08       Impact factor: 11.639

2.  Circadian clock NAD+ cycle drives mitochondrial oxidative metabolism in mice.

Authors:  Clara Bien Peek; Alison H Affinati; Kathryn Moynihan Ramsey; Hsin-Yu Kuo; Wei Yu; Laura A Sena; Olga Ilkayeva; Biliana Marcheva; Yumiko Kobayashi; Chiaki Omura; Daniel C Levine; David J Bacsik; David Gius; Christopher B Newgard; Eric Goetzman; Navdeep S Chandel; John M Denu; Milan Mrksich; Joseph Bass
Journal:  Science       Date:  2013-09-19       Impact factor: 47.728

3.  Preferential associations between co-regulated genes reveal a transcriptional interactome in erythroid cells.

Authors:  Stefan Schoenfelder; Tom Sexton; Lyubomira Chakalova; Nathan F Cope; Alice Horton; Simon Andrews; Sreenivasulu Kurukuti; Jennifer A Mitchell; David Umlauf; Daniela S Dimitrova; Christopher H Eskiw; Yanquan Luo; Chia-Lin Wei; Yijun Ruan; James J Bieker; Peter Fraser
Journal:  Nat Genet       Date:  2009-12-13       Impact factor: 38.330

4.  Transcriptional architecture and chromatin landscape of the core circadian clock in mammals.

Authors:  Nobuya Koike; Seung-Hee Yoo; Hung-Chung Huang; Vivek Kumar; Choogon Lee; Tae-Kyung Kim; Joseph S Takahashi
Journal:  Science       Date:  2012-08-30       Impact factor: 47.728

5.  Genome-wide and phase-specific DNA-binding rhythms of BMAL1 control circadian output functions in mouse liver.

Authors:  Guillaume Rey; François Cesbron; Jacques Rougemont; Hans Reinke; Michael Brunner; Felix Naef
Journal:  PLoS Biol       Date:  2011-02-22       Impact factor: 8.029

6.  Topological domains in mammalian genomes identified by analysis of chromatin interactions.

Authors:  Jesse R Dixon; Siddarth Selvaraj; Feng Yue; Audrey Kim; Yan Li; Yin Shen; Ming Hu; Jun S Liu; Bing Ren
Journal:  Nature       Date:  2012-04-11       Impact factor: 49.962

7.  Circadian and Feeding Rhythms Orchestrate the Diurnal Liver Acetylome.

Authors:  Daniel Mauvoisin; Florian Atger; Loïc Dayon; Antonio Núñez Galindo; Jingkui Wang; Eva Martin; Laetitia Da Silva; Ivan Montoliu; Sebastiano Collino; Francois-Pierre Martin; Joanna Ratajczak; Carles Cantó; Martin Kussmann; Felix Naef; Frédéric Gachon
Journal:  Cell Rep       Date:  2017-08-15       Impact factor: 9.423

8.  Circadian clock-dependent and -independent posttranscriptional regulation underlies temporal mRNA accumulation in mouse liver.

Authors:  Jingkui Wang; Laura Symul; Jake Yeung; Cédric Gobet; Jonathan Sobel; Sarah Lück; Pål O Westermark; Nacho Molina; Felix Naef
Journal:  Proc Natl Acad Sci U S A       Date:  2018-02-05       Impact factor: 11.205

9.  The long-range interaction landscape of gene promoters.

Authors:  Amartya Sanyal; Bryan R Lajoie; Gaurav Jain; Job Dekker
Journal:  Nature       Date:  2012-09-06       Impact factor: 49.962

10.  HTSstation: a web application and open-access libraries for high-throughput sequencing data analysis.

Authors:  Fabrice P A David; Julien Delafontaine; Solenne Carat; Frederick J Ross; Gregory Lefebvre; Yohan Jarosz; Lucas Sinclair; Daan Noordermeer; Jacques Rougemont; Marion Leleu
Journal:  PLoS One       Date:  2014-01-27       Impact factor: 3.240

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  4 in total

1.  Mammalian PERIOD2 regulates H2A.Z incorporation in chromatin to orchestrate circadian negative feedback.

Authors:  Kevin Tartour; Francesca Andriani; Eric G Folco; Dominika Letkova; Raphael Schneider; Isahak Saidi; Tomoki Sato; Patrick-Simon Welz; Salvador Aznar Benitah; Cédric Allier; Kiran Padmanabhan
Journal:  Nat Struct Mol Biol       Date:  2022-05-23       Impact factor: 18.361

2.  Circadian REV-ERBs repress E4bp4 to activate NAMPT-dependent NAD+ biosynthesis and sustain cardiac function.

Authors:  Pieterjan Dierickx; Kun Zhu; Bryce J Carpenter; Chunjie Jiang; Marit W Vermunt; Yang Xiao; Timothy S Luongo; Tsunehisa Yamamoto; Íngrid Martí-Pàmies; Sobuj Mia; Mary Latimer; Abhinav Diwan; Juanjuan Zhao; Amy K Hauck; Brianna Krusen; Hoang C B Nguyen; Gerd A Blobel; Daniel P Kelly; Liming Pei; Joseph A Baur; Martin E Young; Mitchell A Lazar
Journal:  Nat Cardiovasc Res       Date:  2021-12-23

3.  The global and promoter-centric 3D genome organization temporally resolved during a circadian cycle.

Authors:  Masami Ando-Kuri; Rodrigo G Arzate-Mejía; Mayra Furlan-Magaril; Jörg Morf; Jonathan Cairns; Abraham Román-Figueroa; Luis Tenorio-Hernández; A César Poot-Hernández; Simon Andrews; Csilla Várnai; Boo Virk; Steven W Wingett; Peter Fraser
Journal:  Genome Biol       Date:  2021-06-08       Impact factor: 13.583

Review 4.  The Clock Takes Shape-24 h Dynamics in Genome Topology.

Authors:  Kévin Tartour; Kiran Padmanabhan
Journal:  Front Cell Dev Biol       Date:  2022-01-03
  4 in total

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