THE ROLE OF IONS AND 2ND MESSENGERS IN CIRCADIAN CLOCK FUNCTION

被引:14
作者
EDMUNDS, LN
CARRE, IA
TAMPONNET, C
TONG, J
机构
[1] Department of Anatomical Sciences, State University of New York, Stony Brook, NY
关键词
ADENYL CYCLASE; CALCIUM ION; CELL DIVISION; CIRCADIAN CLOCK; CIRCADIAN RHYTHM; CYCLIC AMP; EUGLENA; OSCILLATOR; PHOSPHODIESTERASE; 2ND MESSENGER;
D O I
10.3109/07420529209064529
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The fact that single cells can exhibit circadian rhythmicity simultaneously in quite different processes, such as those of photosynthesis, bioluminescence, and cell division, suggests that membrane-bound compartmentalization is important for temporal organization. Since these rhythms, as well as others, are known to be affected by changes in the ionic environment and are probably membrane-bound systems, it is not surprising that transmembrane ion transport or flux has been proposed to be a key feature of the underlying circadian oscillator(s). Likewise, signal transduction along the entrainment pathway leading to the clock, among the elements, or "gears," of the timing loop itself, and within the output pathway between the oscillator and its "hands" likely is mediated by ions and second messengers. In this overview, we examine the theoretical and experimental evidence supporting the possible roles of intracellular free calcium and cyclic AMP in these capacities, particularly in view of the fact that oscillations in the concentrations of both species have been proposed to form the basis of pacemaker activity and other biological rhythms.
引用
收藏
页码:180 / 200
页数:21
相关论文
共 105 条
[31]  
Cote G.G., Type 2 resetting of the Euglena gracilis circadian rhythm?, J Biol Rhythms, 6, pp. 367-369, (1991)
[32]  
Khalsa S.B.S., Block G.D., Calcium channels mediate phase shifts of the Bulla circadian pacemaker, J Comp Physiol A, 164, pp. 195-206, (1988)
[33]  
Khalsa S.B.S., Block G.D., The Bulla ocular circadian pacemaker is phase shifted by pentylenetetrazole independently of extracellular calcium concentration, Soc Neurosci Abstr, 12, (1986)
[34]  
Earnest D.J., Sladek C.D., Circadian vasopressin release from perifused rat suprachiasmatic explants in vitro: effects of acute stimulation, Brain Res, 422, pp. 398-402, (1986)
[35]  
Shibata S., Newman G.C., Moore R.Y., Effects of calcium ions on 2-deoxyglucose uptake in the suprachiasmatic nucleus in vitro, Brain Res, 426, pp. 332-338, (1986)
[36]  
Mayer W.E., Sherer L., Phase shifting effect of caffeine in the circadian rhythm of Phaseolus coccineus L, Z Naturforsch Teil C, 30, pp. 855-856, (1975)
[37]  
Mayer W.E., Gruner R., Strubel H., Periodenverlangerung und Phasenverschiebungen der circadianen Rhythmik von Phaseolus coccineus L. durch Theophyllin, Planla, 125, pp. 141-148, (1975)
[38]  
Morse M.J., Crain R.C., Satter R.L., Light-stimulated inositol phospholipid turnover in Samanea saman leaf pulvini, Proc Natl Acad Sci USA, 84, pp. 7075-7078, (1987)
[39]  
Lakin-Thomas P.L., Biochemical genetics of the circadian rhythm in Neurospora crassa: studies on the eel strain., (1985)
[40]  
Kippert F., Endocytobiotic coordination: intracellular calcium signalling and the origin of endogenous rhythms, Ann NY Acad Sci, 503, pp. 476-495, (1986)