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食物调控和甲基苯丙胺敏感的生物钟振荡器的周期测定。

Period determination in the food-entrainable and methamphetamine-sensitive circadian oscillator(s).

机构信息

Department of Biological Sciences, Vanderbilt University, Nashville, TN 37235-1634, USA.

出版信息

Proc Natl Acad Sci U S A. 2012 Aug 28;109(35):14218-23. doi: 10.1073/pnas.1206213109. Epub 2012 Aug 13.

Abstract

Daily rhythmic processes are coordinated by circadian clocks, which are present in numerous central and peripheral tissues. In mammals, two circadian clocks, the food-entrainable oscillator (FEO) and methamphetamine-sensitive circadian oscillator (MASCO), are "black box" mysteries because their anatomical loci are unknown and their outputs are not expressed under normal physiological conditions. In the current study, the investigation of the timekeeping mechanisms of the FEO and MASCO in mice with disruption of all three paralogs of the canonical clock gene, Period, revealed unique and convergent findings. We found that both the MASCO and FEO in Per1(-/-)/Per2(-/-)/Per3(-/-) mice are circadian oscillators with unusually short (∼21 h) periods. These data demonstrate that the canonical Period genes are involved in period determination in the FEO and MASCO, and computational modeling supports the hypothesis that the FEO and MASCO use the same timekeeping mechanism or are the same circadian oscillator. Finally, these studies identify Per1(-/-)/Per2(-/-)/Per3(-/-) mice as a unique tool critical to the search for the elusive anatomical location(s) of the FEO and MASCO.

摘要

昼夜节律过程由生物钟协调,生物钟存在于众多中枢和外周组织中。在哺乳动物中,两种生物钟,即食物可诱导振荡器(FEO)和甲基苯丙胺敏感的生物钟(MASCO),是“黑箱”之谜,因为它们的解剖位置未知,并且在正常生理条件下其输出不表达。在本研究中,通过破坏经典时钟基因 Period 的所有三个同源基因,对小鼠中 FEO 和 MASCO 的计时机制进行了研究,揭示了独特而趋同的发现。我们发现,Per1(-/-)/Per2(-/-)/Per3(-/-) 小鼠中的 MASCO 和 FEO 都是具有异常短(约 21 h)周期的生物钟振荡器。这些数据表明,经典的 Period 基因参与了 FEO 和 MASCO 的周期确定,计算模型支持这样的假设,即 FEO 和 MASCO 使用相同的计时机制或为相同的生物钟振荡器。最后,这些研究确定了 Per1(-/-)/Per2(-/-)/Per3(-/-) 小鼠作为一种独特的工具,对于寻找 FEO 和 MASCO 难以捉摸的解剖位置至关重要。

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Tissue-specific function of Period3 in circadian rhythmicity.Period3 在昼夜节律中的组织特异性功能。
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Lesion studies targeting food-anticipatory activity.针对食物预期活动的损伤研究。
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Robust food anticipatory activity in BMAL1-deficient mice.Bmal1基因缺陷小鼠中强大的食物预期活动。
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