Institute of Neurobiology, Ulm University Ulm, Germany.
Front Comput Neurosci. 2012 Mar 14;6:13. doi: 10.3389/fncom.2012.00013. eCollection 2012.
The perception of proprioceptive signals that report the internal state of the body is one of the essential tasks of the nervous system and helps to continuously adapt body movements to changing circumstances. Despite the impact of proprioceptive feedback on motor activity it has rarely been studied in conditions in which motor output and sensory activity interact as they do in behaving animals, i.e., in closed-loop conditions. The interaction of motor and sensory activities, however, can create emergent properties that may govern the functional characteristics of the system. We here demonstrate a method to use a well-characterized model system for central pattern generation, the stomatogastric nervous system, for studying these properties in vitro. We created a real-time computer model of a single-cell muscle tendon organ in the gastric mill of the crab foregut that uses intracellular current injections to control the activity of the biological proprioceptor. The resulting motor output of a gastric mill motor neuron is then recorded intracellularly and fed into a simple muscle model consisting of a series of low-pass filters. The muscle output is used to activate a one-dimensional Hodgkin-Huxley type model of the muscle tendon organ in real-time, allowing closed-loop conditions. Model properties were either hand tuned to achieve the best match with data from semi-intact muscle preparations, or an exhaustive search was performed to determine the best set of parameters. We report the real-time capabilities of our models, its performance and its interaction with the biological motor system.
感知报告身体内部状态的本体感觉信号是神经系统的基本任务之一,有助于不断适应身体运动变化的环境。尽管本体感觉反馈对运动活动有影响,但在运动输出和感觉活动相互作用的情况下,如在行为动物中,很少对其进行研究,即在闭环条件下。然而,运动和感觉活动的相互作用可以产生突现特性,这些特性可能支配系统的功能特征。我们在这里展示了一种使用经过充分表征的中央模式生成模型系统——口胃神经系统,在体外研究这些特性的方法。我们创建了一个单细胞肌肉肌腱器官的实时计算机模型,该模型在蟹前肠的胃磨中使用细胞内电流注入来控制生物本体感受器的活动。然后,通过细胞内记录胃磨运动神经元的运动输出,并将其输入到一个由一系列低通滤波器组成的简单肌肉模型中。肌肉输出用于实时激活肌肉肌腱器官的一维 Hodgkin-Huxley 型模型,从而实现闭环条件。模型特性要么手动调整以实现与半完整肌肉制剂数据的最佳匹配,要么进行详尽搜索以确定最佳参数集。我们报告了我们模型的实时能力、性能及其与生物运动系统的相互作用。