Variational and phase response analysis for limit cycles with hard boundaries, with applications to neuromechanical control problems.

IF 1.7 4区 工程技术 Q3 COMPUTER SCIENCE, CYBERNETICS
Biological Cybernetics Pub Date : 2022-12-01 Epub Date: 2022-11-18 DOI:10.1007/s00422-022-00951-8
Yangyang Wang, Jeffrey P Gill, Hillel J Chiel, Peter J Thomas
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引用次数: 0

Abstract

Motor systems show an overall robustness, but because they are highly nonlinear, understanding how they achieve robustness is difficult. In many rhythmic systems, robustness against perturbations involves response of both the shape and the timing of the trajectory. This makes the study of robustness even more challenging. To understand how a motor system produces robust behaviors in a variable environment, we consider a neuromechanical model of motor patterns in the feeding apparatus of the marine mollusk Aplysia californica (Shaw et al. in J Comput Neurosci 38(1):25-51, 2015; Lyttle et al. in Biol Cybern 111(1):25-47, 2017). We established in (Wang et al. in SIAM J Appl Dyn Syst 20(2):701-744, 2021. https://doi.org/10.1137/20M1344974 ) the tools for studying combined shape and timing responses of limit cycle systems under sustained perturbations and here apply them to study robustness of the neuromechanical model against increased mechanical load during swallowing. Interestingly, we discover that nonlinear biomechanical properties confer resilience by immediately increasing resistance to applied loads. In contrast, the effect of changed sensory feedback signal is significantly delayed by the firing rates' hard boundary properties. Our analysis suggests that sensory feedback contributes to robustness in swallowing primarily by shifting the timing of neural activation involved in the power stroke of the motor cycle (retraction). This effect enables the system to generate stronger retractor muscle forces to compensate for the increased load, and hence achieve strong robustness. The approaches that we are applying to understanding a neuromechanical model in Aplysia, and the results that we have obtained, are likely to provide insights into the function of other motor systems that encounter changing mechanical loads and hard boundaries, both due to mechanical and neuronal firing properties.

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具有硬边界的极限循环的变量和相位响应分析,并应用于神经机械控制问题。
运动系统显示出整体稳健性,但由于它们是高度非线性的,因此很难理解它们是如何实现稳健性的。在许多节律系统中,对扰动的稳健性涉及对轨迹的形状和时间的响应。这使得鲁棒性研究更具挑战性。为了了解运动系统如何在多变的环境中产生稳健行为,我们考虑了海洋软体动物 Aplysia californica 摄食装置中运动模式的神经机械模型(Shaw 等人,发表于《计算神经科学》(J Comput Neurosci)38(1):25-51, 2015;Lyttle 等人,发表于《生物网络》(Biol Cybern)111(1):25-47, 2017)。我们在(Wang 等人在 SIAM J Appl Dyn Syst 20(2):701-744, 2021. https://doi.org/10.1137/20M1344974 )中建立了研究极限循环系统在持续扰动下的形状和时间综合响应的工具,并在此将其应用于研究吞咽过程中神经机械模型对机械负荷增加的鲁棒性。有趣的是,我们发现非线性生物力学特性通过立即增加对外加载荷的阻力来赋予复原力。与此相反,感觉反馈信号变化的影响却因发射率的硬边界特性而明显延迟。我们的分析表明,感觉反馈主要通过改变参与运动循环动力冲程(缩回)的神经激活时间来提高吞咽的稳健性。这种效应使系统能够产生更强的牵张肌力,以补偿增加的负荷,从而实现强大的稳健性。我们正在应用的用于理解臀足纲动物神经机械模型的方法以及我们所获得的结果,很有可能为其他运动系统的功能提供启示,这些系统在遇到不断变化的机械负荷和硬边界时,都会受到机械和神经元发射特性的影响。
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来源期刊
Biological Cybernetics
Biological Cybernetics 工程技术-计算机:控制论
CiteScore
3.50
自引率
5.30%
发文量
38
审稿时长
6-12 weeks
期刊介绍: Biological Cybernetics is an interdisciplinary medium for theoretical and application-oriented aspects of information processing in organisms, including sensory, motor, cognitive, and ecological phenomena. Topics covered include: mathematical modeling of biological systems; computational, theoretical or engineering studies with relevance for understanding biological information processing; and artificial implementation of biological information processing and self-organizing principles. Under the main aspects of performance and function of systems, emphasis is laid on communication between life sciences and technical/theoretical disciplines.
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