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腿部力编码为昆虫腿部运动控制划定了参考系。

Force encoding in stick insect legs delineates a reference frame for motor control.

机构信息

Dept. of Anatomy and Pathology, Joan C. Edwards School of Medicine, Marshall Univ., Huntington, WV 25704, USA.

出版信息

J Neurophysiol. 2012 Sep;108(5):1453-72. doi: 10.1152/jn.00274.2012. Epub 2012 Jun 6.

Abstract

The regulation of forces is integral to motor control. However, it is unclear how information from sense organs that detect forces at individual muscles or joints is incorporated into a frame of reference for motor control. Campaniform sensilla are receptors that monitor forces by cuticular strains. We studied how loads and muscle forces are encoded by trochanteral campaniform sensilla in stick insects. Forces were applied to the middle leg to emulate loading and/or muscle contractions. Selective sensory ablations limited activities recorded in the main leg nerve to specific receptor groups. The trochanteral campaniform sensilla consist of four discrete groups. We found that the dorsal groups (Groups 3 and 4) encoded force increases and decreases in the plane of movement of the coxo-trochanteral joint. Group 3 receptors discharged to increases in dorsal loading and decreases in ventral load. Group 4 showed the reverse directional sensitivities. Vigorous, directional responses also occurred to contractions of the trochanteral depressor muscle and to forces applied at the muscle insertion. All sensory discharges encoded the amplitude and rate of loading or muscle force. Stimulation of the receptors produced reflex effects in the depressor motoneurons that could reverse in sign during active movements. These data, in conjunction with findings of previous studies, support a model in which the trochanteral receptors function as an array that can detect forces in all directions relative to the intrinsic plane of leg movement. The array could provide requisite information about forces and simplify the control and adaptation of posture and walking.

摘要

力的调节是运动控制的一个组成部分。然而,目前尚不清楚来自检测单个肌肉或关节力的感觉器官的信息如何被纳入运动控制的参考框架中。Campaniform 感受器是通过表皮应变来监测力的感受器。我们研究了棒状昆虫的转节 campaniform 感受器如何编码负载和肌肉力。通过对中间腿施加力来模拟加载和/或肌肉收缩。选择性感觉消融将主要腿部神经中记录的活动限制在特定的受体群。转节 campaniform 感受器由四个离散的组组成。我们发现,背侧组(第 3 组和第 4 组)在 coxo-trochanteral 关节的运动平面上编码力的增加和减少。第 3 组受体对背侧加载的增加和腹侧负载的减少放电。第 4 组显示出相反的方向敏感性。对转节降压器肌肉的强烈、定向收缩以及在肌肉插入处施加的力也会产生定向反应。所有感觉放电都编码了加载或肌肉力的幅度和速率。刺激感受器会在降压器运动神经元中产生反射效应,这些效应在主动运动过程中可能会改变符号。这些数据结合以前研究的结果,支持了一个模型,即转节感受器作为一个可以检测相对于腿部运动固有平面的所有方向力的阵列起作用。该阵列可以提供有关力的必要信息,并简化姿势和行走的控制和适应。

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