强迫神经和相位振荡器链的夹带范围。

IF 2.3 4区 医学 Q1 Neuroscience Journal of Mathematical Neuroscience Pub Date : 2016-12-01 Epub Date: 2016-04-18 DOI:10.1186/s13408-016-0038-9
Nicole Massarelli, Geoffrey Clapp, Kathleen Hoffman, Tim Kiemel
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引用次数: 9

摘要

七鳃鳗中央模式发生器(CPG)运动的感觉输入在调节七鳃鳗游泳中起着重要作用。众所周知,七鳃鳗CPG具有弯曲刺激的能力,也就是说,在有节奏的信号存在时,CPG会改变其频率以匹配刺激频率。弯曲实验中,七鳃鳗的脊髓被移除,在一个点上机械地前后弯曲,以确定可以携带CPG节律的频率范围。首先,我们将七鳃鳗运动CPG建模为一个神经振荡链,其中有三类神经元和代表边缘细胞输入的正弦强迫。我们利用神经模型中描述的连接推导出相位模型。这导致了一个更简单的模型,但保持了神经模型的一些属性。对于神经模型和推导的相位模型,分别计算了在链上不同位置的力的夹带范围,同时改变了段间耦合强度和力与链之间的耦合强度。对于具有非均匀节段间耦合不对称的链,在链的中间施加力时,夹带范围比在任何一端施加力时都要大,这一结果在质量上与实验结果相似。在链的弱耦合极限下,神经模型的夹带结果接近于推导相模型的夹带结果。生物实验和非单调夹带范围的鲁棒性作为不同类型非均匀非对称耦合CPG模式强迫位置的函数表明,CPG的节段间耦合的特定性质是夹带的关键。
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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Entrainment Ranges for Chains of Forced Neural and Phase Oscillators.

Sensory input to the lamprey central pattern generator (CPG) for locomotion is known to have a significant role in modulating lamprey swimming. Lamprey CPGs are known to have the ability to entrain to a bending stimulus, that is, in the presence of a rhythmic signal, the CPG will change its frequency to match the stimulus frequency. Bending experiments in which the lamprey spinal cord has been removed and mechanically bent back and forth at a single point have been used to determine the range of frequencies that can entrain the CPG rhythm. First, we model the lamprey locomotor CPG as a chain of neural oscillators with three classes of neurons and sinusoidal forcing representing edge cell input. We derive a phase model using the connections described in the neural model. This results in a simpler model yet maintains some properties of the neural model. For both the neural model and the derived phase model, entrainment ranges are computed for forcing at different points along the chain while varying both intersegmental coupling strength and the coupling strength between the forcer and chain. Entrainment ranges for chains with nonuniform intersegmental coupling asymmetry are larger when forcing is applied to the middle of the chain than when it is applied to either end, a result that is qualitatively similar to the experimental results. In the limit of weak coupling in the chain, the entrainment results of the neural model approach the entrainment results for the derived phase model. Both biological experiments and the robustness of non-monotonic entrainment ranges as a function of the forcing position across different classes of CPG models with nonuniform asymmetric coupling suggest that a specific property of the intersegmental coupling of the CPG is key to entrainment.

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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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