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  Guidelines for Genome-Scale Analysis of Biological Rhythms

Hughes, M. E., Abruzzi, K. C., Allada, R., Anafi, R., Arpat, A. B., Asher, G., et al. (2017). Guidelines for Genome-Scale Analysis of Biological Rhythms. Journal of Biological Rhythms, 32(5), 380-393. doi:10.1177/0748730417728663.

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 Creators:
Hughes, Michael E.1, Author
Abruzzi, Katherine C.1, Author
Allada, Ravi1, Author
Anafi, Ron1, Author
Arpat, Alaaddin Bulak1, Author
Asher, Gad1, Author
Baldi, Pierre1, Author
de Bekker, Charissa1, Author
Bell-Pedersen, Deborah1, Author
Blau, Justin1, Author
Brown, Steve1, Author
Ceriani, M. Fernanda1, Author
Chen, Zheng1, Author
Chiu, Joanna C.1, Author
Cox, Juergen2, Author           
Crowell, Alexander M.1, Author
DeBruyne, Jason P.1, Author
Dijk, Derk-Jan1, Author
DiTacchio, Luciano1, Author
Doyle, Francis J.1, Author
Duffield, Giles E.1, AuthorDunlap, Jay C.1, AuthorEckel-Mahan, Kristin1, AuthorEsser, Karyn A.1, AuthorFitzGerald, Garret A.1, AuthorForger, Daniel B.1, AuthorFrancey, Lauren J.1, AuthorFu, Ying-Hui1, AuthorGachon, Frederic1, AuthorGatfield, David1, Authorde Goede, Paul1, AuthorGolden, Susan S.1, AuthorGreen, Carla1, AuthorHarer, John1, AuthorHarmer, Stacey1, AuthorHaspel, Jeff1, AuthorHastings, Michael H.1, AuthorHerzel, Hanspeter1, AuthorHerzog, Erik D.1, AuthorHoffmann, Christy1, AuthorHong, Christian1, AuthorHughey, Jacob J.1, AuthorHurley, Jennifer M.1, Authorde la Iglesia, Horacio O.1, AuthorJohnson, Carl1, AuthorKay, Steve A.1, AuthorKoike, Nobuya1, AuthorKornacker, Karl1, AuthorKramer, Achim1, AuthorLamia, Katja1, AuthorLeise, Tanya1, AuthorLewis, Scott A.1, AuthorLi, Jiajia1, AuthorLi, Xiaodong1, AuthorLiu, Andrew C.1, AuthorLoros, Jennifer J.1, AuthorMartino, Tami A.1, AuthorMenet, Jerome S.1, AuthorMerrow, Martha1, AuthorMillar, Andrew J.1, AuthorMockler, Todd1, AuthorNaef, Felix1, AuthorNagoshi, Emi1, AuthorNitabach, Michael N.1, AuthorOlmedo, Maria1, AuthorNusinow, Dmitri A.1, AuthorPtacek, Louis J.1, AuthorRand, David1, AuthorReddy, Akhilesh B.1, AuthorRobles, Maria S.1, AuthorRoenneberg, Till1, AuthorRosbash, Michael1, AuthorRuben, Marc D.1, AuthorRund, Samuel S. C.1, AuthorSancar, Aziz1, AuthorSassone-Corsi, Paolo1, AuthorSehgal, Amita1, AuthorSherrill-Mix, Scott1, AuthorSkene, Debra J.1, AuthorStorch, Kai-Florian1, AuthorTakahashi, Joseph S.1, AuthorUeda, Hiroki R.1, AuthorWang, Han1, AuthorWeitz, Charles1, AuthorWestermark, Pal O.1, AuthorWijnen, Herman1, AuthorXu, Ying1, AuthorWu, Gang1, AuthorYoo, Seung-Hee1, AuthorYoung, Michael1, AuthorZhang, Eric Erquan1, AuthorZielinski, Tomasz1, AuthorHogenesch, John B.1, Author more..
Affiliations:
1external, ou_persistent22              
2Cox, Jürgen / Computational Systems Biochemistry, Max Planck Institute of Biochemistry, Max Planck Society, ou_2063284              

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Free keywords: GENE-EXPRESSION; CIRCADIAN CLOCK; TIME-SERIES; MICROARRAY; TRANSCRIPTOMICS; MECHANISM; REVEALS; MAMMALS; SETLife Sciences & Biomedicine - Other Topics; Physiology; circadian rhythms; diurnal rhythms; computational biology; functional genomics; systems biology; guidelines; biostatistics; RNA-seq; ChIP-seq; proteomics; metabolomics;
 Abstract: Genome biology approaches have made enormous contributions to our understanding of biological rhythms, particularly in identifying outputs of the clock, including RNAs, proteins, and metabolites, whose abundance oscillates throughout the day. These methods hold significant promise for future discovery, particularly when combined with computational modeling. However, genome-scale experiments are costly and laborious, yielding big data that are conceptually and statistically difficult to analyze. There is no obvious consensus regarding design or analysis. Here we discuss the relevant technical considerations to generate reproducible, statistically sound, and broadly useful genome-scale data. Rather than suggest a set of rigid rules, we aim to codify principles by which investigators, reviewers, and readers of the primary literature can evaluate the suitability of different experimental designs for measuring different aspects of biological rhythms. We introduce CircaInSilico, a web-based application for generating synthetic genome biology data to benchmark statistical methods for studying biological rhythms. Finally, we discuss several unmet analytical needs, including applications to clinical medicine, and suggest productive avenues to address them.

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Language(s): eng - English
 Dates: 2017
 Publication Status: Issued
 Pages: 14
 Publishing info: -
 Table of Contents: -
 Rev. Type: -
 Identifiers: ISI: 000415283900002
DOI: 10.1177/0748730417728663
 Degree: -

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Title: Journal of Biological Rhythms
  Other : J. Biol. Rhythms
Source Genre: Journal
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Publ. Info: Sage Publications, Inc.
Pages: - Volume / Issue: 32 (5) Sequence Number: - Start / End Page: 380 - 393 Identifier: ISSN: 0748-7304
CoNE: https://pure.mpg.de/cone/journals/resource/954925543214