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A positive feedback at the cellular level promotes robustness and modulation at the circuit level

机译:蜂窝级的正反馈可增强电路级的鲁棒性和调制能力

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摘要

This article highlights the role of a positive feedback gating mechanism at the cellular level in the robustness and modulation properties of rhythmic activities at the circuit level. The results are presented in the context of half-center oscillators, which are simple rhythmic circuits composed of two reciprocally connected inhibitory neuronal populations. Specifically, we focus on rhythms that rely on a particular excitability property, the postinhibitory rebound, an intrinsic cellular property that elicits transient membrane depolarization when released from hyperpolarization. Two distinct ionic currents can evoke this transient depolarization: a hyperpolarization-activated cation current and a low-threshold T-type calcium current. The presence of a slow activation is specific to the T-type calcium current and provides a slow positive feedback at the cellular level that is absent in the cation current. We show that this slow positive feedback is required to endow the network rhythm with physiological modulation and robustness properties. This study thereby identifies an essential cellular property to be retained at the network level in modeling network robustness and modulation.
机译:本文重点介绍了在细胞水平上正反馈门控机制在电路水平上节奏活动的鲁棒性和调制特性中的作用。在半中心振荡器的背景下给出了结果,该中心振荡器是由两个相互连接的抑制性神经元群体组成的简单节奏电路。具体而言,我们专注于依赖于特定兴奋性特性(抑制后反弹)的节律,抑制性反弹是一种固有的细胞特性,当从超极化状态释放时会引起短暂的膜去极化。两种不同的离子电流可引起这种瞬态去极化:超极化激活的阳离子电流和低阈值T型钙电流。缓慢激活的存在是特定于T型钙电流的,并且在阳离子电流所不存在的细胞水平上提供了缓慢的正反馈。我们表明,需要这种缓慢的正反馈来赋予网络节律以生理调制和鲁棒性。因此,这项研究确定了在建模网络健壮性和调制时要保留在网络级别的基本蜂窝属性。

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