miR-124 acts During Drosophila Development to Determine the Phase of Adult Circadian Behavior.

IF 2.1 3区 生物学 Q2 BIOLOGY
Yongliang Xia, Chenghao Chen, Patrick Emery
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引用次数: 0

Abstract

The circadian clock enables organisms to optimize their metabolism, physiology, and behavior with the time-of-day. However, circadian rhythms benefit organisms only if they are properly synchronized with the day/night cycle; circadian misalignment can have detrimental effects on animals' wellbeing and survival. We previously showed that in Drosophila, loss of the microRNA miR-124 advances the phase of circadian evening locomotor activity by several hours under constant darkness conditions. Interestingly, we now report that loss of miR-124 also delays morning activity under a light/dark cycle with a short photoperiod. We recapitulated these opposite phase phenotypes by eliminating miR-124 during larval development, but not when this microRNA is lost during pupation to adulthood. The loss of miR-124 results in significant miswiring within the circadian neural network and severely alters neural activity rhythms in the ventral Lateral Neurons (s-LNvs) and the posterior Dorsal Neurons 1 (DN1ps), which control the timing of morning and evening activity. Silencing the s-LNvs in miR-124 mutant flies restores the phase of evening activity, while activating the DN1ps rescues the phases of both morning and evening activities. Our findings thus reveal the pivotal role of miR-124 in sculpting the Drosophila circadian neural network during development and its long-lasting impact on circuit activity and adult circadian behavior.

miR-124在果蝇发育过程中决定成虫昼夜节律行为的阶段。
生物钟使生物体能够根据一天中的时间优化它们的新陈代谢、生理和行为。然而,昼夜节律只有在与昼夜周期适当同步时才对生物体有益;昼夜节律失调会对动物的健康和生存产生不利影响。我们之前的研究表明,在果蝇中,在恒定的黑暗条件下,microRNA miR-124的缺失将昼夜节律夜间运动活动的阶段提前了几个小时。有趣的是,我们现在报告说,在短光周期的光/暗周期下,miR-124的缺失也会延迟早晨的活动。我们通过在幼虫发育过程中消除miR-124来重现这些相反阶段的表型,但在化蛹到成虫过程中这种microRNA丢失时却没有。miR-124的缺失导致昼夜节律神经网络内的严重错误连接,并严重改变控制早晚活动时间的腹侧外侧神经元(s-LNvs)和后背侧神经元1 (DN1ps)的神经活动节律。沉默miR-124突变果蝇中的s-LNvs恢复了夜间活动的阶段,而激活DN1ps则恢复了早晨和夜间活动的阶段。因此,我们的研究结果揭示了miR-124在发育过程中塑造果蝇昼夜神经网络的关键作用及其对回路活动和成年昼夜行为的长期影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.10
自引率
8.60%
发文量
48
审稿时长
>12 weeks
期刊介绍: Journal of Biological Rhythms is the official journal of the Society for Research on Biological Rhythms and offers peer-reviewed original research in all aspects of biological rhythms, using genetic, biochemical, physiological, behavioral, epidemiological & modeling approaches, as well as clinical trials. Emphasis is on circadian and seasonal rhythms, but timely reviews and research on other periodicities are also considered. The journal is a member of the Committee on Publication Ethics (COPE).
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