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果蝇生物钟基因 cycle 控制生物钟神经元的发育。

The Drosophila circadian clock gene cycle controls the development of clock neurons.

机构信息

Department of Neuroscience and Behavior, Barnard College, New York, New York, United States of America.

Department of Biology, Indiana University Bloomington, Bloomington, Indiana, United States of America.

出版信息

PLoS Genet. 2024 Oct 21;20(10):e1011441. doi: 10.1371/journal.pgen.1011441. eCollection 2024 Oct.

Abstract

Daily behavioral and physiological rhythms are controlled by the brain's circadian timekeeping system, a synchronized network of neurons that maintains endogenous molecular oscillations. These oscillations are based on transcriptional feedback loops of clock genes, which in Drosophila include the transcriptional activators Clock (Clk) and cycle (cyc). While the mechanisms underlying this molecular clock are very well characterized, the roles that the core clock genes play in neuronal physiology and development are much less understood. The Drosophila timekeeping center is composed of ~150 clock neurons, among which the four small ventral lateral neurons (sLNvs) are the most dominant pacemakers under constant conditions. Here, we show that downregulating the clock gene cyc specifically in the Pdf-expressing neurons leads to decreased fasciculation both in larval and adult brains. This effect is due to a developmental role of cyc, as both knocking down cyc or expressing a dominant negative form of cyc exclusively during development lead to defasciculation phenotypes in adult clock neurons. Clk downregulation also leads to developmental effects on sLNv morphology. Our results reveal a non-circadian role for cyc, shedding light on the additional functions of circadian clock genes in the development of the nervous system.

摘要

日常行为和生理节律受大脑的生物钟系统控制,这是一个同步的神经元网络,维持着内源性分子振荡。这些振荡基于时钟基因的转录反馈环,在果蝇中包括转录激活因子 Clock(Clk)和 cycle(cyc)。虽然这个分子钟的机制已经被很好地描述,但核心时钟基因在神经元生理和发育中的作用还知之甚少。果蝇的计时中心由大约 150 个时钟神经元组成,其中四个小的腹外侧神经元(sLNvs)在恒定条件下是最主要的起搏器。在这里,我们表明,特异性下调 Pdf 表达神经元中的时钟基因 cyc 会导致幼虫和成年大脑中的纤维束减少。这种效应是由于 cyc 的发育作用,因为在发育过程中敲低 cyc 或表达 cyc 的显性负形式都会导致成年时钟神经元的去纤维束化表型。Clk 的下调也会对 sLNv 的形态产生发育影响。我们的结果揭示了 cyc 的非生物钟作用,为生物钟基因在神经系统发育中的额外功能提供了线索。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea0e/11527286/4e94e3a2ab99/pgen.1011441.g001.jpg

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