受乌龟抓挠启发的节奏生成网络的多功能性条件。

IF 2.3 4区 医学 Q1 Neuroscience Journal of Mathematical Neuroscience Pub Date : 2015-12-01 Epub Date: 2015-07-17 DOI:10.1186/s13408-015-0026-5
Abigail C Snyder, Jonathan E Rubin
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引用次数: 11

摘要

有节奏的行为,如呼吸、行走和抓挠,对许多物种都是至关重要的。在没有节奏输入的情况下,这种行为可以从被称为中枢模式生成器的神经元群中产生。在脊椎动物中,识别构成特定节律行为的中心模式发生器的细胞是困难的,而且通常,它的存在只是推断出来的。例如,在实验条件下,完整的海龟产生几种有节奏的抓挠运动模式,对应于不同身体部位的非节奏性刺激。这些模式以反复发生的运动神经元激活的交替阶段为特征,通过髋伸肌、髋屈肌和膝关节伸肌运动神经元活动的相对时间和持续时间来区分不同的模式。虽然负责这些输出的中央模式生成器网络尚未定位,但有希望使用运动神经元记录来推断其特性。为此,本研究提出了先前提出的中央模式生成器网络的模型,并分析了其从单个神经元池中产生两种不同划动节奏的能力,这些划动节奏由不同的音调驱动参数组合选择,但网络内的连接强度固定。我们通过模拟表明,所提出的网络可以实现所需的多功能,即使它依赖于髋关节单元生成器来招募适当时间的膝关节伸肌运动神经元活动,包括在吻侧划痕中相对于髋关节激活的延迟。此外,我们开发了一个相空间表示,重点关注膝关节伸肌运动神经元的输入和固有慢变量,我们使用它来推导网络实现每个节奏的充分条件,并说明了鞍节点分叉在实现膝关节伸肌延迟中的作用。这个框架被用来考虑双稳定性,并对划痕节奏对输入变化的反应做出预测,以供将来的实验测试。
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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Conditions for Multi-functionality in a Rhythm Generating Network Inspired by Turtle Scratching.

Rhythmic behaviors such as breathing, walking, and scratching are vital to many species. Such behaviors can emerge from groups of neurons, called central pattern generators, in the absence of rhythmic inputs. In vertebrates, the identification of the cells that constitute the central pattern generator for particular rhythmic behaviors is difficult, and often, its existence has only been inferred. For example, under experimental conditions, intact turtles generate several rhythmic scratch motor patterns corresponding to non-rhythmic stimulation of different body regions. These patterns feature alternating phases of motoneuron activation that occur repeatedly, with different patterns distinguished by the relative timing and duration of activity of hip extensor, hip flexor, and knee extensor motoneurons. While the central pattern generator network responsible for these outputs has not been located, there is hope to use motoneuron recordings to deduce its properties. To this end, this work presents a model of a previously proposed central pattern generator network and analyzes its capability to produce two distinct scratch rhythms from a single neuron pool, selected by different combinations of tonic drive parameters but with fixed strengths of connections within the network. We show through simulation that the proposed network can achieve the desired multi-functionality, even though it relies on hip unit generators to recruit appropriately timed knee extensor motoneuron activity, including a delay relative to hip activation in rostral scratch. Furthermore, we develop a phase space representation, focusing on the inputs to and the intrinsic slow variable of the knee extensor motoneuron, which we use to derive sufficient conditions for the network to realize each rhythm and which illustrates the role of a saddle-node bifurcation in achieving the knee extensor delay. This framework is harnessed to consider bistability and to make predictions about the responses of the scratch rhythms to input changes for future experimental testing.

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来源期刊
Journal of Mathematical Neuroscience
Journal of Mathematical Neuroscience Neuroscience-Neuroscience (miscellaneous)
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审稿时长
13 weeks
期刊介绍: The Journal of Mathematical Neuroscience (JMN) publishes research articles on the mathematical modeling and analysis of all areas of neuroscience, i.e., the study of the nervous system and its dysfunctions. The focus is on using mathematics as the primary tool for elucidating the fundamental mechanisms responsible for experimentally observed behaviours in neuroscience at all relevant scales, from the molecular world to that of cognition. The aim is to publish work that uses advanced mathematical techniques to illuminate these questions. It publishes full length original papers, rapid communications and review articles. Papers that combine theoretical results supported by convincing numerical experiments are especially encouraged. Papers that introduce and help develop those new pieces of mathematical theory which are likely to be relevant to future studies of the nervous system in general and the human brain in particular are also welcome.
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