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大鼠视交叉上核和松果体中生物钟节律及Clock基因转录的不同光反应

Circadian rhythms and different photoresponses of Clock gene transcription in the rat suprachiasmatic nucleus and pineal gland.

作者信息

Wang Guo-Qing, Fu Chun-Ling, Li Jian-Xiang, Du Yu-Zhen, Tong Jian

机构信息

Department of Physiology, Soochow University, Suzhou, China.

出版信息

Sheng Li Xue Bao. 2006 Aug 25;58(4):359-64.

Abstract

The aim of this study was to observe and compare the endogenous circadian rhythm and photoresponse of Clock gene transcription in the suprachiasmatic nucleus (SCN) and pineal gland (PG) of rats. With free access to food and water in special darkrooms, Sprague-Dawley rats were housed under the light regime of constant darkness (DD) for 8 weeks (n=36) or 12 hour-light: 12 hour-dark cycle (LD) for 4 weeks (n=36), respectively. Then, their SCN and PG were dissected out every 4 h in a circadian day, 6 rats at each time (n=6). All animal treatments and sampling during the dark phases were conducted under red dim light (<0.1 lux). The total RNA was extracted from each sample and the semi-quantitative RT-PCR was used to determine the temporal mRNA changes of Clock gene in the SCN and PG at different circadian times (CT) or zeitgeber times (ZT). The grayness ratio of Clock/H3.3 bands was served as the relative estimation of Clock gene expression. The experimental data were analyzed by the Cosine method and the Clock Lab software to fit original results measured at 6 time points and to simulate a circadian rhythmic curve which was then examined for statistical difference by the amplitude F test. The main results are as follows: (1) The mRNA levels of Clock gene in the SCN under DD regime displayed the circadian oscillation (P<0.05). The endogenous rhythmic profiles of Clock gene transcription in the PG were similar to those in the SCN (P>0.05) throughout the day with the peak at the subjective night (CT15 in the SCN or CT18 in the PG) and the trough during the subjective day (CT3 in the SCN or CT6 in the PG). (2) Clock gene transcription in the SCN under LD cycle also showed the circadian oscillation (P<0.05), and the rhythmic profile was anti-phasic to that under DD condition (P<0.05). The amplitude and the mRNA level at the peak of Clock gene transcription in the SCN under LD were significantly increased compared with that under DD (P<0.05), while the value of corresponding rhythmic parameters in the PG under LD were remarkably decreased (P<0.05). (3) Under LD cycle, the circadian profiles of Clock gene transcription induced by light in the PG were quite different from those in the SCN (P<0.05). Their Clock transcription rhythms were anti-phasic, i.e., showing peaks at the light phase ZT10 in the SCN or at the dark time ZT17 in the PG and troughs during the dark time ZT22 in the SCN or during the light phase ZT5 in the PG. The findings of the present study indicate a synchronous endogenous nature of the Clock gene circadian transcriptions in the SCN and PG, and different roles of light regime in modulating the circadian transcriptions of Clock gene in these two central nuclei.

摘要

本研究旨在观察和比较大鼠视交叉上核(SCN)和松果体(PG)中Clock基因转录的内源性昼夜节律和光反应。在特殊暗室中自由进食和饮水的条件下,将Sprague-Dawley大鼠分别置于持续黑暗(DD)光照条件下8周(n = 36)或12小时光照:12小时黑暗循环(LD)条件下4周(n = 36)。然后,在一个昼夜周期内每隔4小时解剖出它们的SCN和PG,每次6只大鼠(n = 6)。在黑暗阶段进行的所有动物处理和取样均在暗红色灯光(<0.1勒克斯)下进行。从每个样本中提取总RNA,并使用半定量RT-PCR来确定在不同昼夜时间(CT)或授时因子时间(ZT)时SCN和PG中Clock基因的mRNA随时间的变化。Clock/H3.3条带灰度比值用作Clock基因表达的相对估计。通过余弦法和Clock Lab软件分析实验数据,以拟合在6个时间点测量的原始结果并模拟昼夜节律曲线,然后通过振幅F检验检查统计学差异。主要结果如下:(1)DD条件下SCN中Clock基因的mRNA水平呈现昼夜振荡(P<0.05)。PG中Clock基因转录的内源性节律模式与SCN中的相似(P>0.05),全天在主观夜间达到峰值(SCN中为CT15或PG中为CT18),在主观白天出现谷值(SCN中为CT3或PG中为CT6)。(2)LD循环下SCN中Clock基因转录也表现出昼夜振荡(P<0.05),且节律模式与DD条件下相反(P<0.05)。与DD条件相比,LD条件下SCN中Clock基因转录峰值的振幅和mRNA水平显著增加(P<0.05),而LD条件下PG中相应节律参数的值显著降低(P<0.05)。(3)在LD循环下,PG中光诱导的Clock基因转录的昼夜模式与SCN中的有很大不同(P<0.05)。它们的Clock转录节律相反,即在SCN中光照阶段ZT10或PG中黑暗时间ZT17达到峰值,在SCN中黑暗时间ZT22或PG中光照阶段ZT5出现谷值。本研究结果表明SCN和PG中Clock基因昼夜转录具有同步的内源性本质,并且光照条件在调节这两个中枢核中Clock基因昼夜转录方面具有不同作用。

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