High-resolution time course analysis of gene expression from pituitary

被引:51
作者
Hughes, M. [1 ]
DeHaro, L. [2 ]
Pulivarthy, S. R. [2 ]
Gu, J. [1 ]
Hayes, K. [1 ]
Panda, S. [2 ]
Hogenesch, J. B. [1 ]
机构
[1] Univ Penn, Sch Med, Inst Translat Med & Therapeut, Dept Pharmacol, Philadelphia, PA 19104 USA
[2] Salk Inst Biol Studies, San Diego, CA 92186 USA
关键词
D O I
10.1101/sqb.2007.72.011
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In both the suprachiasmatic nucleus (SCN) and peripheral tissues, the circadian oscillator drives rhythmic transcription of downstream target genes. Recently, a number of Studies have used DNA microarrays to systematically identify oscillating transcripts in plants, fruit flies, rats, and mice. These studies have identified several dozen to many hundred rhythmically expressed genes by sampling tissues every 4 hours for 1, 2, or more days. To extend this work, we have performed DNA microarray analysis on RNA derived from the mouse Pituitary sampled every hour for 2 days. COSOPT and Fisher's G-test were used at a false-discovery rate of less than 5% to identify more than 250 genes in the Pituitary that oscillate with a 24-hour period length. We found that increasing the frequency of sampling across the circadian day dramatically increased the statistical power of both COSOPT and Fisher's G-test, resulting in considerably more high-confidence identifications of rhythmic transcripts than previously described. Finally, to extend the utility of these data sets, a Web-based resource has been constructed (at http://wasabi.itmat.upenn.edu/circa/mouse) that is freely available to the research community.
引用
收藏
页码:381 / 386
页数:6
相关论文
共 31 条
  • [1] Circadian cycling of the mouse liver transcriptome, as revealed by cDNA microarray, is driven by the suprachiasmatic nucleus
    Akhtar, RA
    Reddy, AB
    Maywood, ES
    Clayton, JD
    King, VM
    Smith, AG
    Gant, TW
    Hastings, MH
    Kyriacou, CP
    [J]. CURRENT BIOLOGY, 2002, 12 (07) : 540 - 550
  • [2] Circadian clock genes as modulators of sensitivity to genotoxic stress
    Antoch, MP
    Kondratov, RV
    Takahashi, JS
    [J]. CELL CYCLE, 2005, 4 (07) : 901 - 907
  • [3] Genome-wide expression analysis in Drosophila reveals genes controlling circadian behavior
    Ceriani, MF
    Hogenesch, JB
    Yanovsky, M
    Panda, S
    Straume, M
    Kay, SA
    [J]. JOURNAL OF NEUROSCIENCE, 2002, 22 (21) : 9305 - 9319
  • [4] Environmental stimulus perception and control of circadian clocks
    Cermakian, N
    Sassone-Corsi, P
    [J]. CURRENT OPINION IN NEUROBIOLOGY, 2002, 12 (04) : 359 - 365
  • [5] Circadian regulation of gene expression systems in the Drosophila head
    Claridge-Chang, A
    Wijnen, H
    Naef, F
    Boothroyd, C
    Rajewsky, N
    Young, MW
    [J]. NEURON, 2001, 32 (04) : 657 - 671
  • [6] Central and peripheral clocks in cardiovascular and metabolic function
    Curtis, Anne M.
    Fitzgerald, Garret A.
    [J]. ANNALS OF MEDICINE, 2006, 38 (08) : 552 - 559
  • [7] Circadian programs of transcriptional activation, signaling, and protein turnover revealed by microarray analysis of mammalian cells
    Duffield, GE
    Best, JD
    Meurers, BH
    Bittner, A
    Loros, JJ
    Dunlap, JC
    [J]. CURRENT BIOLOGY, 2002, 12 (07) : 551 - 557
  • [8] DNA microarray analyses of circadian timing: The genomic basis of biological time
    Duffield, GE
    [J]. JOURNAL OF NEUROENDOCRINOLOGY, 2003, 15 (10) : 991 - 1002
  • [9] The ups and downs of daily life:: profiling circadian gene expression in Drosophila
    Etter, PD
    Ramaswami, M
    [J]. BIOESSAYS, 2002, 24 (06) : 494 - 498
  • [10] Gianoulakis C, 1998, ALCOHOL HEALTH RES W, V22, P202