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果蝇幼虫光感知缺陷突变体中的昼夜节律同步性和节律性。

Circadian synchronization and rhythmicity in larval photoperception-defective mutants of Drosophila.

作者信息

Malpel Sébastien, Klarsfeld André, Rouyer François

机构信息

Institut de Neurobiologie Alfred Fessard, CNRS UPR 2216 (NGI), 91198 Gif-sur-Yvette, France.

出版信息

J Biol Rhythms. 2004 Feb;19(1):10-21. doi: 10.1177/0748730403260621.

Abstract

A single light episode during the first larval stage can set the phase of adult Drosophila activity rhythms, showing that a light-sensitive circadian clock is functional in larvae and is capable of keeping time throughout development. These behavioral data are supported by the finding that neurons expressing clock proteins already exist in the larval brain and appear to be connected to the larval visual system. To define the photoreceptive pathways of the larval clock, the authors investigated circadian synchronization during larval stages in various visual systems and/or cryptochrome-defective strains. They show that adult activity rhythms cannot be entrained by light applied to larvae lacking both cryptochrome and the visual system, although such rhythms were entrained by larval stage-restricted temperature cycles. Larvae lacking either pathway alone were light entrainable, but the phase of the resulting adult rhythm was advanced relative to wild-type flies. Unexpectedly, adult behavioral rhythms of the glass60j and norpAP24 visual system mutants that were entrained in the same conditions were found to be severely impaired, in contrast to those of the wild type. Extension of the entrainment until the adult stage restored close to wild-type behavioral rhythms in the mutants. The results show that both cryptochrome and the larval visual system participate to circadian photoreception in larvae and that mutations affecting the visual system can impair behavioral rhythmicity.

摘要

在果蝇幼虫的第一个阶段,单次短暂光照就能设定成年果蝇活动节律的相位,这表明幼虫中存在对光敏感的昼夜节律时钟,并且该时钟在整个发育过程中都能保持时间。这些行为学数据得到了以下发现的支持:表达时钟蛋白的神经元已经存在于幼虫大脑中,并且似乎与幼虫视觉系统相连。为了确定幼虫时钟的光感受通路,作者研究了各种视觉系统和/或隐花色素缺陷型品系在幼虫阶段的昼夜节律同步情况。他们发现,对于同时缺乏隐花色素和视觉系统的幼虫,光照无法使其成年活动节律产生同步,尽管这种节律可被幼虫阶段受限的温度循环所同步。仅缺乏其中一条通路的幼虫可被光同步,但由此产生的成年果蝇节律的相位相对于野生型果蝇提前。出乎意料的是,在相同条件下被同步的glass60j和norpAP24视觉系统突变体的成年行为节律与野生型相比严重受损。将同步延长至成年阶段可使突变体的行为节律恢复到接近野生型。结果表明,隐花色素和幼虫视觉系统都参与了幼虫的昼夜光感受,并且影响视觉系统的突变会损害行为节律性。

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