Literature DB >> 32357113

Differential effects of REV-ERBα/β agonism on cardiac gene expression, metabolism, and contractile function in a mouse model of circadian disruption.

Sobuj Mia1, Mariame S Kane1,2, Mary N Latimer1, Cristine J Reitz3, Ravi Sonkar4, Gloria A Benavides2, Samuel R Smith1, Stuart J Frank4,5, Tami A Martino3, Jianhua Zhang2, Victor M Darley-Usmar2, Martin E Young1.   

Abstract

Cell-autonomous circadian clocks have emerged as temporal orchestrators of numerous biological processes. For example, the cardiomyocyte circadian clock modulates transcription, translation, posttranslational modifications, ion homeostasis, signaling cascades, metabolism, and contractility of the heart over the course of the day. Circadian clocks are composed of more than 10 interconnected transcriptional modulators, all of which have the potential to influence the cardiac transcriptome (and ultimately cardiac processes). These transcriptional modulators include BMAL1 and REV-ERBα/β; BMAL1 induces REV-ERBα/β, which in turn feeds back to inhibit BMAL1. Previous studies indicate that cardiomyocyte-specific BMAL1-knockout (CBK) mice exhibit a dysfunctional circadian clock (including decreased REV-ERBα/β expression) in the heart associated with abnormalities in cardiac mitochondrial function, metabolism, signaling, and contractile function. Here, we hypothesized that decreased REV-ERBα/β activity is responsible for distinct phenotypical alterations observed in CBK hearts. To test this hypothesis, CBK (and littermate control) mice were administered with the selective REV-ERBα/β agonist SR-9009 (100 mg·kg-1·day-1 for 8 days). SR-9009 administration was sufficient to normalize cardiac glycogen synthesis rates, cardiomyocyte size, interstitial fibrosis, and contractility in CBK hearts (without influencing mitochondrial complex activities, nor normalizing substrate oxidation and Akt/mTOR/GSK3β signaling). Collectively, these observations highlight a role for REV-ERBα/β as a mediator of a subset of circadian clock-controlled processes in the heart.

Entities:  

Keywords:  chronobiology; gene expression; heart; metabolism; mitochondria

Mesh:

Substances:

Year:  2020        PMID: 32357113      PMCID: PMC7311693          DOI: 10.1152/ajpheart.00709.2019

Source DB:  PubMed          Journal:  Am J Physiol Heart Circ Physiol        ISSN: 0363-6135            Impact factor:   4.733


  55 in total

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Journal:  Science       Date:  2001-07-05       Impact factor: 47.728

2.  A novel method for real time quantitative RT-PCR.

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Journal:  Genome Res       Date:  1996-10       Impact factor: 9.043

3.  Genetic disruption of the cardiomyocyte circadian clock differentially influences insulin-mediated processes in the heart.

Authors:  Graham R McGinnis; Yawen Tang; Rachel A Brewer; Manoja K Brahma; Haley L Stanley; Gobinath Shanmugam; Namakkal Soorappan Rajasekaran; Glenn C Rowe; Stuart J Frank; Adam R Wende; E Dale Abel; Heinrich Taegtmeyer; Silvio Litovsky; Victor Darley-Usmar; Jianhua Zhang; John C Chatham; Martin E Young
Journal:  J Mol Cell Cardiol       Date:  2017-07-20       Impact factor: 5.000

4.  Rev-erbα and Rev-erbβ coordinately protect the circadian clock and normal metabolic function.

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Journal:  Genes Dev       Date:  2012-04-01       Impact factor: 11.361

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Authors:  L P Shearman; S Sriram; D R Weaver; E S Maywood; I Chaves; B Zheng; K Kume; C C Lee; G T van der Horst; M H Hastings; S M Reppert
Journal:  Science       Date:  2000-05-12       Impact factor: 47.728

Review 6.  Circadian clock control of endocrine factors.

Authors:  Karen L Gamble; Ryan Berry; Stuart J Frank; Martin E Young
Journal:  Nat Rev Endocrinol       Date:  2014-05-27       Impact factor: 43.330

7.  The cardiomyocyte molecular clock, regulation of Scn5a, and arrhythmia susceptibility.

Authors:  Elizabeth A Schroder; Mellani Lefta; Xiping Zhang; Daniel C Bartos; Han-Zhong Feng; Yihua Zhao; Abhijit Patwardhan; Jian-Ping Jin; Karyn A Esser; Brian P Delisle
Journal:  Am J Physiol Cell Physiol       Date:  2013-01-30       Impact factor: 4.249

8.  The orphan nuclear receptor REV-ERBalpha controls circadian transcription within the positive limb of the mammalian circadian oscillator.

Authors:  Nicolas Preitner; Francesca Damiola; Luis Lopez-Molina; Joszef Zakany; Denis Duboule; Urs Albrecht; Ueli Schibler
Journal:  Cell       Date:  2002-07-26       Impact factor: 41.582

9.  A novel approach to measure mitochondrial respiration in frozen biological samples.

Authors:  Rebeca Acin-Perez; Linsey Stiles; Orian S Shirihai; Ilan Y Benador; Anton Petcherski; Michaela Veliova; Gloria A Benavides; Sylviane Lagarrigue; Arianne Caudal; Laurent Vergnes; Anne N Murphy; Georgios Karamanlidis; Rong Tian; Karen Reue; Jonathan Wanagat; Harold Sacks; Francesca Amati; Victor M Darley-Usmar; Marc Liesa; Ajit S Divakaruni
Journal:  EMBO J       Date:  2020-05-20       Impact factor: 11.598

10.  Determining cell type abundance and expression from bulk tissues with digital cytometry.

Authors:  Aaron M Newman; Chloé B Steen; Chih Long Liu; Andrew J Gentles; Aadel A Chaudhuri; Florian Scherer; Michael S Khodadoust; Mohammad S Esfahani; Bogdan A Luca; David Steiner; Maximilian Diehn; Ash A Alizadeh
Journal:  Nat Biotechnol       Date:  2019-05-06       Impact factor: 54.908

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  8 in total

Review 1.  Circadian Governance of Cardiac Growth.

Authors:  Mary N Latimer; Martin E Young
Journal:  Cells       Date:  2022-04-29       Impact factor: 7.666

2.  Circadian rhythms in cardiac metabolic flexibility.

Authors:  Martin E Young; Mary N Latimer
Journal:  Chronobiol Int       Date:  2021-06-23       Impact factor: 2.877

Review 3.  Circadian Rhythm: Potential Therapeutic Target for Atherosclerosis and Thrombosis.

Authors:  Andy W C Man; Huige Li; Ning Xia
Journal:  Int J Mol Sci       Date:  2021-01-12       Impact factor: 5.923

4.  Hydrogen Sulfide Restored the Diurnal Variation in Cardiac Function of Aging Mice.

Authors:  Huaxing Zhang; Jing Dai; Danyang Tian; Lin Xiao; Hongmei Xue; Qi Guo; Xiangjian Zhang; Xu Teng; Sheng Jin; Yuming Wu
Journal:  Oxid Med Cell Longev       Date:  2021-03-02       Impact factor: 6.543

5.  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

6.  Myocardial Rev-erb-Mediated Diurnal Metabolic Rhythm and Obesity Paradox.

Authors:  Shiyang Song; Chih-Liang Tien; Hao Cui; Paul Basil; Ningxia Zhu; Yingyun Gong; Wenbo Li; Hui Li; Qiying Fan; Jong Min Choi; Weijia Luo; Yanfeng Xue; Rui Cao; Wenjun Zhou; Andrea R Ortiz; Brittany Stork; Vatsala Mundra; Nagireddy Putluri; Brian York; Maoping Chu; Jiang Chang; Sung Yun Jung; Liang Xie; Jiangping Song; Lilei Zhang; Zheng Sun
Journal:  Circulation       Date:  2022-01-17       Impact factor: 29.690

7.  Augmented Cardiac Growth Hormone Signaling Contributes to Cardiomyopathy Following Genetic Disruption of the Cardiomyocyte Circadian Clock.

Authors:  Ravi Sonkar; Ryan Berry; Mary N Latimer; Sumanth D Prabhu; Martin E Young; Stuart J Frank
Journal:  Front Pharmacol       Date:  2022-02-16       Impact factor: 5.810

Review 8.  Circadian control of human cardiovascular function.

Authors:  Saurabh S Thosar; Steven A Shea
Journal:  Curr Opin Pharmacol       Date:  2021-02-19       Impact factor: 5.547

  8 in total

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