Modulation of environmental responses of plants by circadian clocks

被引:191
作者
Hotta, Carlos T. [1 ]
Gardner, Michael J. [1 ]
Hubbard, Katharine E. [1 ]
Baek, Seong Jin [1 ]
Dalchau, Neil [1 ]
Suhita, Dontamala [1 ]
Dodd, Antony N. [1 ]
Webb, Alex A. R. [1 ]
机构
[1] Univ Cambridge, Dept Plant Sci, Cambridge CB2 3EA, England
基金
英国生物技术与生命科学研究理事会;
关键词
abscisic acid; Arabidopsis; circadian gating; cold; light; signalling; stomata;
D O I
10.1111/j.1365-3040.2006.01627.x
中图分类号
Q94 [植物学];
学科分类号
071001 ;
摘要
Circadian clocks are signalling networks that enhance an organism's relationship with the rhythmic environment. The plant circadian clock modulates a wide range of physiological and biochemical events, such as stomatal and organ movements, photosynthesis and induction of flowering. Environmental signals regulate the phase and period of the plant circadian clock, which results in an approximate synchronization of clock outputs with external events. One of the consequences of circadian control is that stimuli of the same strength applied at different times of the day can result in responses of different intensities. This is known as 'gating'. Gating of a signal may allow plants to better process and react to the wide range and intensities of environmental signals to which they are constantly subjected. Light signalling, stomatal movements and low-temperature responses are examples of signalling pathways that are gated by the circadian clock. In this review, we describe the many levels at which the circadian clock interacts with responses to the environment. We discuss how environmental rhythms of temperature and light intensity entrain the circadian clock, how photoperiodism may be regulated by the relationship between environmental rhythms and the phasing of clock outputs, and how gating modulates the sensitivity of the clock and other responses to environmental and physiological signals. Finally, we describe evidence that the circadian clock can increase plant fitness.
引用
收藏
页码:333 / 349
页数:17
相关论文
共 161 条
[1]   Critical role for CCA1 and LHY in maintaining circadian rhythmicity in Arabidopsis [J].
Alabadí, D ;
Yanovsky, MJ ;
Más, P ;
Harmer, SL ;
Kay, SA .
CURRENT BIOLOGY, 2002, 12 (09) :757-761
[2]   Reciprocal regulation between TOC1 and LHY/CCA1 within the Arabidopsis circadian clock [J].
Alabadí, D ;
Oyama, T ;
Yanovsky, MJ ;
Harmon, FG ;
Más, P ;
Kay, SA .
SCIENCE, 2001, 293 (5531) :880-883
[3]   Arabidopsis FHY3 specifically gates phytochrome signaling to the circadian clock [J].
Allen, Trudie ;
Koustenis, Athanasios ;
Theodorou, George ;
Somers, David E. ;
Kay, Steve A. ;
Whitelam, Garry C. ;
Devlin, Paul F. .
PLANT CELL, 2006, 18 (10) :2506-2516
[4]   Rhythmic nature of thigmomorphogenesis and thermal stress of Phaseolus vulgaris L shoots [J].
AndersonBernadas, C ;
Cornelissen, G ;
Turner, CM ;
Koukkari, WL .
JOURNAL OF PLANT PHYSIOLOGY, 1997, 151 (05) :575-580
[5]  
ASCHOFF J, 1979, Z TIERPSYCHOL, V49, P225
[6]   The timing of developmental transitions in plants [J].
Baurle, Isabel ;
Dean, Caroline .
CELL, 2006, 125 (04) :655-664
[7]   Synchronization of metabolic processes in plants with Crassulacean acid metabolism [J].
Borland, AM ;
Taybi, T .
JOURNAL OF EXPERIMENTAL BOTANY, 2004, 55 (400) :1255-1265
[8]   Conservation and divergence of circadian clock operation in a stress-inducible crassulacean acid metabolism species reveals clock compensation against stress [J].
Boxall, SF ;
Foster, JM ;
Bohnert, HJ ;
Cushman, JC ;
Nimmo, HG ;
Hartwell, J .
PLANT PHYSIOLOGY, 2005, 137 (03) :969-982
[9]   ELF3:: a circadian safeguard to buffer effects of light [J].
Carré, IA .
TRENDS IN PLANT SCIENCE, 2002, 7 (01) :4-6
[10]   ABA XYLEM CONCENTRATIONS DETERMINE MAXIMUM DAILY LEAF CONDUCTANCE OF FIELD-GROWN VITIS-VINIFERA L PLANTS [J].
CORREIA, MJ ;
PEREIRA, JS ;
CHAVES, MM ;
RODRIGUES, ML ;
PACHECO, CA .
PLANT CELL AND ENVIRONMENT, 1995, 18 (05) :511-521