Transcriptional feedback oscillators: Maybe, maybe not . . .

被引:90
作者
Lakin-Thomas, PL [1 ]
机构
[1] York Univ, Dept Biol, N York, ON M3J 1P3, Canada
关键词
circadian; rhythm; Acetabularia; Synechococcus; Drosophila; Neurospora; mouse;
D O I
10.1177/0748730405286102
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The molecular mechanism of circadian rhythmicity is usually modeled by a transcription/translation feedback oscillator in which clock proteins negatively feed back on their own transcription to produce rhythmic levels of clock protein mRNAs, which in turn cause the production of rhythmic levels of clock proteins. This mechanism has been applied to all model organisms for which molecular data are available. This review summarizes the increasing number of anomalous observations that do not fit the standard molecular mechanism for the model organisms Acetabidaria, Synechococcus, Drosophila, Neurospora, and mouse. The anomalies fall into 2 classes: observations of rhythmicity in the organism when transcription of clock genes is held constant, and rhythmicity in the organism when clock gene function is missing in knockout mutants. It is concluded that the weight of anomalies is now so large that the standard transcription/translation mechanism is no longer an adequate model for circadian oscillators. Rhythmic transcription may have other functions in the circadian system, such as participating in input and output pathways and providing robustness to the oscillations. It may be most useful to think in terms of a circadian system that uses a noncircadian oscillator consisting of metabolic feedback loops, which acquires its circadian properties from additional regulatory molecules such as the products of canonical clock genes.
引用
收藏
页码:83 / 92
页数:10
相关论文
共 59 条
[1]   CIRCADIAN CLOCK LOCUS FREQUENCY - PROTEIN ENCODED BY A SINGLE OPEN READING FRAME DEFINES PERIOD LENGTH AND TEMPERATURE COMPENSATION [J].
ARONSON, BD ;
JOHNSON, KA ;
DUNLAP, JC .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1994, 91 (16) :7683-7687
[2]   Differential functions of mPer1, mPer2, and mPer3 in the SCN circadian clock [J].
Bae, K ;
Jin, XW ;
Maywood, ES ;
Hastings, MH ;
Reppert, SM ;
Weaver, DR .
NEURON, 2001, 30 (02) :525-536
[3]   Circadian rhythms from multiple oscillators: Lessons from diverse organisms [J].
Bell-Pedersen, D ;
Cassone, VM ;
Earnest, DJ ;
Golden, SS ;
Hardin, PE ;
Thomas, TL ;
Zoran, MJ .
NATURE REVIEWS GENETICS, 2005, 6 (07) :544-556
[4]   Mop3 is an essential component of the master circadian pacemaker in mammals [J].
Bunger, MK ;
Wilsbacher, LD ;
Moran, SM ;
Clendenin, C ;
Radcliffe, LA ;
Hogenesch, JB ;
Simon, MC ;
Takahashi, JS ;
Bradfield, CA .
CELL, 2000, 103 (07) :1009-1017
[5]  
Cheng YZ, 1998, J NEUROSCI, V18, P741
[6]   A nitrate-induced frq-less oscillator in Neurospora crassa [J].
Christensen, MK ;
Falkeid, G ;
Loros, JJ ;
Dunlap, JC ;
Lillo, C ;
Ruoff, P .
JOURNAL OF BIOLOGICAL RHYTHMS, 2004, 19 (04) :280-286
[7]   Disruption of cryptochrome partially restores circadian rhythmicity to the arrhythmic period mutant of Drosophila [J].
Collins, BH ;
Dissel, S ;
Gaten, E ;
Rosato, E ;
Kyriacou, CP .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2005, 102 (52) :19021-19026
[8]   Multiple oscillators regulate circadian gene expression in Neurospora [J].
Correa, A ;
Lewis, AZ ;
Greene, AV ;
March, IJ ;
Gomer, RH ;
Bell-Pedersen, D .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2003, 100 (23) :13597-13602
[9]   A cyanobacterial circadian timing mechanism [J].
Ditty, JL ;
Williams, SB ;
Golden, SS .
ANNUAL REVIEW OF GENETICS, 2003, 37 :513-543
[10]   Light reception and circadian behavior in 'blind' and 'clock-less' mutants of Neurospora crassa [J].
Dragovic, Z ;
Tan, Y ;
Görl, M ;
Roenneberg, T ;
Merrow, M .
EMBO JOURNAL, 2002, 21 (14) :3643-3651