Functional independence of circadian clocks that regulate giant gene expression

被引:122
作者
Thain, SC [1 ]
Hall, A [1 ]
Millar, AJ [1 ]
机构
[1] Univ Warwick, Dept Biol Sci, Coventry CV4 7AL, W Midlands, England
基金
英国生物技术与生命科学研究理事会;
关键词
D O I
10.1016/S0960-9822(00)00630-8
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
Background: Circadian clocks regulate the gene expression, metabolism and behaviour of most eukaryotes, controlling an orderly succession of physiological processes that are synchronised with the environmental day/night cycle. Central circadian pacemakers that control animal behaviour are located in the brains of insects and rodents, but the location of such a pacemaker has not been determined in plants. Peripheral plant and animal tissues also maintain circadian rhythms when isolated in culture, indicating that these tissues contain circadian clocks. The degree of autonomy that the multiple, peripheral circadian clocks have in the intact organism is unclear. Results: We used the bioluminescent luciferase reporter gene to monitor rhythmic expression from three promoters in transgenic Arabidopsis and tobacco plants. The rhythmic expression of a single gene could be set at up to three phases in different anatomical locations of a single plant, by applying light/dark treatments to restricted tissue areas. The initial phases were stably maintained after the entraining treatments ended, indicating that the circadian oscillators in intact plants are autonomous. This result held for all the vegetative plant organs and for promoters expressed in all major cell types. The rhythms of one organ were unaffected by entrainment of the rest of the plant, indicating that phase-resetting signals are also autonomous. Conclusions: Higher plants contain a spatial array of autonomous circadian clocks that regulate gene expression without a localised pacemaker. Circadian timing in plants might be less accurate but more flexible than the vertebrate circadian system.
引用
收藏
页码:951 / 956
页数:6
相关论文
共 34 条
[1]   A serum shock induces circadian gene expression in mammalian tissue culture cells [J].
Balsalobre, A ;
Damiola, F ;
Schibler, U .
CELL, 1998, 93 (06) :929-937
[2]   Phytochrome-induced intercellular signalling activates cab:luciferase gene expression [J].
Bischoff, F ;
Millar, AJ ;
Kay, SA ;
Furuya, M .
PLANT JOURNAL, 1997, 12 (04) :839-849
[3]   BIOLOGICAL CLOCKS IN THE RETINA - CELLULAR MECHANISMS OF BIOLOGICAL TIMEKEEPING [J].
BLOCK, GD ;
KHALSA, SBS ;
MCMAHON, DG ;
MICHEL, S ;
GUESZ, M .
INTERNATIONAL REVIEW OF CYTOLOGY - A SURVEY OF CELL BIOLOGY, VOL 146, 1993, 146 :83-144
[4]   The circadian clock controls the expression pattern of the circadian input photoreceptor, phytochrome B [J].
Bognár, LK ;
Hall, A ;
Adám, É ;
Thain, SC ;
Nagy, F ;
Millar, AJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1999, 96 (25) :14652-14657
[5]   Molecular bases for circadian clocks [J].
Dunlap, JC .
CELL, 1999, 96 (02) :271-290
[6]   Rhythms of Drosophila period gene expression in culture [J].
Emery, IF ;
Noveral, JM ;
Jamison, CF ;
Siwicki, KK .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (08) :4092-4096
[7]   Phytochrome B and the regulation of circadian ethylene production in sorghum [J].
Finlayson, SA ;
Lee, IJ ;
Morgan, PW .
PLANT PHYSIOLOGY, 1998, 116 (01) :17-25
[8]   Transplanted Drosophila excretory tubules maintain circadian clock cycling out of phase with the host [J].
Giebultowicz, JM ;
Stanewsky, R ;
Hall, JC ;
Hege, DM .
CURRENT BIOLOGY, 2000, 10 (02) :107-110
[9]   EVIDENCE OF MULTIPLE CIRCADIAN OSCILLATORS IN BEAN-PLANTS [J].
HENNESSEY, TL ;
FIELD, CB .
JOURNAL OF BIOLOGICAL RHYTHMS, 1992, 7 (02) :105-113
[10]  
Johnson Carl Hirschie, 1992, P209