昼夜节律输出神经元中神经肽依赖性尖峰时间精度和可塑性。

Bryan Chong, Vipin Kumar, Dieu Linh Nguyen, Makenzie A Hopkins, Faith S Ferry, Lucia K Spera, Elizabeth M Paul, Anelise N Hutson, Masashi Tabuchi
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摘要

昼夜节律影响着睡眠-觉醒周期、激素分泌和新陈代谢等各种生理和行为过程。昼夜节律输出神经元是一组神经元,它们接收来自哺乳动物大脑上核中央昼夜节律钟的输入,并将定时信息传递到大脑和身体的不同区域,协调各种生理过程的昼夜节律。在果蝇中,一组重要的昼夜节律输出神经元被称为间脑旁(PI)神经元,它们接收来自称为 DN1 的特定时钟神经元的输入。这些神经元可进一步细分为功能和解剖学上不同的前部(DN1a)和后部(DN1p)神经元群。神经肽利尿激素 31(Dh31)和 44(Dh44)是已知能激活 PI 神经元以控制活动节律的昆虫神经肽。然而,Dh31 和 Dh44 如何影响果蝇睡眠的昼夜节律神经编码机制的神经生理学基础尚不十分清楚。在这里,我们确定了 PI 神经元中依赖 Dh31/Dh44 的尖峰时间精度和可塑性。我们发现,合成的 Dh31 和 Dh44 通过协同作用影响 PI 神经元的膜电位动态,从而影响神经元发射的精确时间,这可能是由钙激活的钾通道传导介导的。此外,我们还发现 Dh31/Dh44 能增强突触后电位。总之,这些结果表明,多路神经肽依赖的尖峰时间精确性和可塑性是果蝇睡眠的昼夜节律神经编码机制的基础。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neuropeptide-dependent spike time precision and plasticity in circadian output neurons.

Circadian rhythms influence various physiological and behavioral processes such as sleep-wake cycles, hormone secretion, and metabolism. In Drosophila, an important set of circadian output neurons are called pars intercerebralis (PI) neurons, which receive input from specific clock neurons called DN1. These DN1 neurons can further be subdivided into functionally and anatomically distinctive anterior (DN1a) and posterior (DN1p) clusters. The neuropeptide diuretic hormones 31 (Dh31) and 44 (Dh44) are the insect neuropeptides known to activate PI neurons to control activity rhythms. However, the neurophysiological basis of how Dh31 and Dh44 affect circadian clock neural coding mechanisms underlying sleep in Drosophila is not well understood. Here, we identify Dh31/Dh44-dependent spike time precision and plasticity in PI neurons. We first find that a mixture of Dh31 and Dh44 enhanced the firing of PI neurons, compared to the application of Dh31 alone and Dh44 alone. We next find that the application of synthesized Dh31 and Dh44 affects membrane potential dynamics of PI neurons in the precise timing of the neuronal firing through their synergistic interaction, possibly mediated by calcium-activated potassium channel conductance. Further, we characterize that Dh31/Dh44 enhances postsynaptic potentials in PI neurons. Together, these results suggest multiplexed neuropeptide-dependent spike time precision and plasticity as circadian clock neural coding mechanisms underlying sleep in Drosophila.

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