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果蝇季节性适应早晚活动的四振荡器模型。

A four-oscillator model of seasonally adapted morning and evening activities in Drosophila melanogaster.

机构信息

Graduate School of Natural Science and Technology, Okayama University, Tsushima-Naka 3-1, Kita-ku, Okayama, 700-8530, Japan.

出版信息

J Comp Physiol A Neuroethol Sens Neural Behav Physiol. 2024 Jul;210(4):527-534. doi: 10.1007/s00359-023-01639-5. Epub 2023 May 23.

Abstract

The fruit fly Drosophila melanogaster exhibits two activity peaks, one in the morning and another in the evening. Because the two peaks change phase depending on the photoperiod they are exposed to, they are convenient for studying responses of the circadian clock to seasonal changes. To explain the phase determination of the two peaks, Drosophila researchers have employed the two-oscillator model, in which two oscillators control the two peaks. The two oscillators reside in different subsets of neurons in the brain, which express clock genes, the so-called clock neurons. However, the mechanism underlying the activity of the two peaks is complex and requires a new model for mechanistic exploration. Here, we hypothesize a four-oscillator model that controls the bimodal rhythms. The four oscillators that reside in different clock neurons regulate activity in the morning and evening and sleep during the midday and at night. In this way, bimodal rhythms are formed by interactions among the four oscillators (two activity and two sleep oscillators), which may judiciously explain the flexible waveform of activity rhythms under different photoperiod conditions. Although still hypothetical, this model would provide a new perspective on the seasonal adaptation of the two activity peaks.

摘要

果蝇果蝇表现出两个活动高峰,一个在早上,另一个在晚上。由于这两个高峰随它们所暴露的光周期而改变相位,因此它们便于研究生物钟对季节性变化的反应。为了解释这两个高峰的相位确定,果蝇研究人员采用了双振荡器模型,其中两个振荡器控制两个高峰。这两个振荡器存在于大脑中表达生物钟基因的不同神经元亚群中,即所谓的生物钟神经元中。然而,两个高峰的活动机制很复杂,需要一个新的模型来进行机制探索。在这里,我们假设了一个控制双峰节律的四振荡器模型。存在于不同时钟神经元中的四个振荡器调节上午和晚上的活动以及中午和晚上的睡眠。通过这种方式,双峰节律是由四个振荡器(两个活动振荡器和两个睡眠振荡器)之间的相互作用形成的,这可能明智地解释了在不同光周期条件下活动节律的灵活波形。虽然这仍然是假设,但该模型将为两个活动高峰的季节性适应提供一个新的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1812/11226490/7583c28129e7/359_2023_1639_Fig1_HTML.jpg

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