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Tonic signaling from O₂ sensors sets neural circuit activity and behavioral state.

机译:O 2传感器发出的滋补信号设定神经回路活动和行为状态。

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摘要

Tonic receptors convey stimulus duration and intensity and are implicated in homeostatic control. However, how tonic homeostatic signals are generated and how they reconfigure neural circuits and modify animal behavior is poorly understood. Here we show that Caenorhabditis elegans O(2)-sensing neurons are tonic receptors that continuously signal ambient [O(2)] to set the animal's behavioral state. Sustained signaling relied on a Ca(2+) relay involving L-type voltage-gated Ca(2+) channels, the ryanodine and the inositol-1,4,5-trisphosphate receptors. Tonic activity evoked continuous neuropeptide release, which helps elicit the enduring behavioral state associated with high [O(2)]. Sustained O(2) receptor signaling was propagated to downstream neural circuits, including the hub interneuron RMG. O(2) receptors evoked similar locomotory states at particular O(2) concentrations, regardless of previous d[O(2)]/dt. However, a phasic component of the URX receptors' response to high d[O(2)]/dt, as well as tonic-to-phasic transformations in downstream interneurons, enabled transient reorientation movements shaped by d[O(2)]/dt. Our results highlight how tonic homeostatic signals can generate both transient and enduring behavioral change.
机译:补剂受体传递刺激的持续时间和强度,并参与稳态控制。但是,如何产生补品稳态信号以及它们如何重新配置​​神经回路和改变动物行为却知之甚少。在这里,我们显示秀丽隐杆线虫O(2)感应神经元是滋补受体,不断向周围环境发出信号[O(2)]以设置动物的行为状态。持续的信号依赖于涉及L型电压门控Ca(2+)通道,ryanodine和肌醇-1,4,5-三磷酸受体的Ca(2+)中继。进补活动引起持续的神经肽释放,这有助于引起与高[O(2)]相关的持久行为状态。持续的O(2)受体信号传导到下游神经回路,包括枢纽interneuron RMG。 O(2)受体在特定O(2)浓度下诱发相似的机体状态,而与先前的d [O(2)] / dt无关。但是,URX受体对高d [O(2)] / dt的响应的相位成分以及下游中间神经元的强直相转换,使得由d [O(2)] /形成的瞬态重新定向运动成为可能。 dt。我们的结果突出了补品稳态信号如何产生瞬态和持久行为改变。

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