水蚤 I1/I3 卷缩肌复合体的全希尔型肌肉模型。

IF 1.7 4区 工程技术 Q3 COMPUTER SCIENCE, CYBERNETICS
Biological Cybernetics Pub Date : 2024-08-01 Epub Date: 2024-06-26 DOI:10.1007/s00422-024-00990-3
Ravesh Sukhnandan, Qianxue Chen, Jiayi Shen, Samantha Pao, Yu Huan, Gregory P Sutton, Jeffrey P Gill, Hillel J Chiel, Victoria A Webster-Wood
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引用次数: 0

摘要

复杂行为的协调需要神经动力学和外周力学两方面的知识。由于实验的可操作性,水蚤的摄食系统是研究软体系统神经力学问题的绝佳模型。之前的工作试图通过希尔型肌肉模型来阐明外围的机械特性,该模型描述了负责将水蚤的抓取器向前方移动的关键量角器肌肉(I2肌肉)的发力能力。然而,I1/I3肌肉是驱动plysia抓握器缩回的主要动力,但其特性尚未得到描述。由于肌肉特性在产生功能行为方面的重要性,了解 I1/I3 复合肌等肌肉的特性可能有助于创建更逼真的臀足类摄食行为模拟,从而有助于更好地理解软体系统的神经力学。为了弥补这一差距,本研究利用力-频率、长度-张力和力-速度实验对I1/I3肌肉复合体进行了表征,结果表明希尔型模型可以准确预测其发力特性。此外,研究还发现该肌肉的峰值等长力和刚度超过了 I2 肌肉,并结合之前对 I1/I3 复合体体内运动学的研究对这些结果进行了分析。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Full Hill-type muscle model of the I1/I3 retractor muscle complex in Aplysia californica.

Full Hill-type muscle model of the I1/I3 retractor muscle complex in Aplysia californica.

The coordination of complex behavior requires knowledge of both neural dynamics and the mechanics of the periphery. The feeding system of Aplysia californica is an excellent model for investigating questions in soft body systems' neuromechanics because of its experimental tractability. Prior work has attempted to elucidate the mechanical properties of the periphery by using a Hill-type muscle model to characterize the force generation capabilities of the key protractor muscle responsible for moving Aplysia's grasper anteriorly, the I2 muscle. However, the I1/I3 muscle, which is the main driver of retractions of Aplysia's grasper, has not been characterized. Because of the importance of the musculature's properties in generating functional behavior, understanding the properties of muscles like the I1/I3 complex may help to create more realistic simulations of the feeding behavior of Aplysia, which can aid in greater understanding of the neuromechanics of soft-bodied systems. To bridge this gap, in this work, the I1/I3 muscle complex was characterized using force-frequency, length-tension, and force-velocity experiments and showed that a Hill-type model can accurately predict its force-generation properties. Furthermore, the muscle's peak isometric force and stiffness were found to exceed those of the I2 muscle, and these results were analyzed in the context of prior studies on the I1/I3 complex's kinematics in vivo.

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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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