Effects of preparation time on phase of cultured tissues reveal complexity of circadian organization

被引:67
作者
Yoshikawa, T [1 ]
Yamazaki, S [1 ]
Menaker, M [1 ]
机构
[1] Univ Virginia, Dept Biol, Charlottesville, VA 22903 USA
关键词
circadian organization; Period1; constant light; SCN; pineal; pituitary; cornea; culture;
D O I
10.1177/0748730405280775
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The phases of central (SCN) and peripheral circadian oscillators are held in specific relationships under LD cycles but, in the absence of external rhythmic input, may damp or drift out of phase with each other. Rats exposed to prolonged constant light become behaviorally arrhythmic, perhaps as a consequence of dissociation of phases among SCN cells. The authors asked whether individual central and peripheral circadian oscillators were rhythmic in LL-treated arrhythmic rats and, if rhythmic, what were the phase relationships between them. The authors prepared SCN, pineal gland, pituitary, and cornea cultures from transgenic Period1-luciferase rats whose body temperature and locomotor activity were arrhythmic and from several groups of rhythmic rats held in LD, DD, and short-term LL. The authors measured mPer1 gene expression by recording light output with sensitive photomultipliers. Most of the cultures from all groups displayed circadian rhythms. This could reflect persistent rhythmicity in vivo prior to culture or, alternatively, rhythmicity that may have been initiated by the culture procedure. To test this, the authors cultured tissues at 2 different times 12 h apart and asked whether phase of the rhythm was related to culture time. The pineal, pituitary, and SCN cultures showed partial or complete dependence of phase on culture time, while peak phases of the cornea cultures were independent of culture time in rhythmic rats and were randomly distributed regardless of culture time in arrhythmic animals. These results suggest that in behaviorally arrhythmic rats, oscillators in the pineal, pituitary, and SCN had been arrhythmic or severely damped in vivo, while the cornea oscillator was free running. The peak phases of the SCN cultures were particularly sensitive to some aspect of the culture procedure since rhythmicity of SCN cultures from robustly rhythmic LD-entrained rats was strongly influenced when the procedure was carried out at any time except the 2nd half of the day.
引用
收藏
页码:500 / 512
页数:13
相关论文
共 37 条
[1]   Circadian rhythms in isolated brain regions [J].
Abe, M ;
Herzog, ED ;
Yamazaki, S ;
Straume, M ;
Tei, H ;
Sakaki, Y ;
Menaker, M ;
Block, GD .
JOURNAL OF NEUROSCIENCE, 2002, 22 (01) :350-356
[2]   A circadian rhythm in the expression of PERIOD2 protein reveals a novel SCN-controlled oscillator in the oval nucleus of the bed nucleus of the stria terminalis [J].
Amir, S ;
Lamont, EW ;
Robinson, B ;
Stewart, J .
JOURNAL OF NEUROSCIENCE, 2004, 24 (04) :781-790
[3]   Circadian profile of Per gene mRNA expression in the suprachiasmatic nucleus, paraventricular nucleus, and pineal body of aged rats [J].
Asai, M ;
Yoshinobu, Y ;
Kaneko, S ;
Mori, A ;
Nikaido, T ;
Moriya, T ;
Akiyama, M ;
Shibata, S .
JOURNAL OF NEUROSCIENCE RESEARCH, 2001, 66 (06) :1133-1139
[4]   Expression profiles of PER2 immunoreactivity within the shell and core regions of the rat suprachiasmatic nucleus -: Lack of photic entrainment and disruption by constant light [J].
Beaulé, C ;
Houle, LM ;
Amir, S .
JOURNAL OF MOLECULAR NEUROSCIENCE, 2003, 21 (02) :133-147
[5]   Circadian rhythms of body temperature and motor activity in rodents -: Their relationships with the light-dark cycle [J].
Benstaali, C ;
Mailloux, A ;
Bogdan, A ;
Auzéby, A ;
Touitou, Y .
LIFE SCIENCES, 2001, 68 (24) :2645-2656
[6]   The biological clock tunes the organs of the body: timing by hormones and the autonomic nervous system [J].
Buijs, RM ;
van Eden, CG ;
Goncharuk, VD ;
Kalsbeek, A .
JOURNAL OF ENDOCRINOLOGY, 2003, 177 (01) :17-26
[7]   Bright light during lactation alters the functioning of the circadian system of adult rats [J].
Canal-Corretger, MM ;
Cambras, T ;
Vilaplana, J ;
Díez-Noguera, A .
AMERICAN JOURNAL OF PHYSIOLOGY-REGULATORY INTEGRATIVE AND COMPARATIVE PHYSIOLOGY, 2000, 278 (01) :R201-R208
[8]   Is the food-entrainable circadian oscillator in the digestive system? [J].
Davidson, AJ ;
Poole, AS ;
Yamazaki, S ;
Menaker, M .
GENES BRAIN AND BEHAVIOR, 2003, 2 (01) :32-39
[9]  
Davidson AJ, 2003, NOVART FDN SYMP, V253, P121
[10]  
Davidson AJ, 2003, NOVART FDN SYMP, V253, P281