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梭内肌运动神经元控制对肌梭敏感性的调节,影响关节角度的中枢和外周编码。

Fusimotor control of spindle sensitivity regulates central and peripheral coding of joint angles.

机构信息

School of Biomedical Engineering, Med-X Research Institute, Shanghai Jiao Tong University Shanghai, China.

出版信息

Front Comput Neurosci. 2012 Aug 30;6:66. doi: 10.3389/fncom.2012.00066. eCollection 2012.

Abstract

Proprioceptive afferents from muscle spindles encode information about peripheral joint movements for the central nervous system (CNS). The sensitivity of muscle spindle is nonlinearly dependent on the activation of gamma (γ) motoneurons in the spinal cord that receives inputs from the motor cortex. How fusimotor control of spindle sensitivity affects proprioceptive coding of joint position is not clear. Furthermore, what information is carried in the fusimotor signal from the motor cortex to the muscle spindle is largely unknown. In this study, we addressed the issue of communication between the central and peripheral sensorimotor systems using a computational approach based on the virtual arm (VA) model. In simulation experiments within the operational range of joint movements, the gamma static commands (γ(s)) to the spindles of both mono-articular and bi-articular muscles were hypothesized (1) to remain constant, (2) to be modulated with joint angles linearly, and (3) to be modulated with joint angles nonlinearly. Simulation results revealed a nonlinear landscape of Ia afferent with respect to both γ(s) activation and joint angle. Among the three hypotheses, the constant and linear strategies did not yield Ia responses that matched the experimental data, and therefore, were rejected as plausible strategies of spindle sensitivity control. However, if γ(s) commands were quadratically modulated with joint angles, a robust linear relation between Ia afferents and joint angles could be obtained in both mono-articular and bi-articular muscles. With the quadratic strategy of spindle sensitivity control, γ(s) commands may serve as the CNS outputs that inform the periphery of central coding of joint angles. The results suggest that the information of joint angles may be communicated between the CNS and muscles via the descending γ(s) efferent and Ia afferent signals.

摘要

肌梭本体传入纤维为中枢神经系统(CNS)编码外周关节运动的信息。肌梭的敏感性与脊髓中的γ(γ)运动神经元的激活呈非线性相关,而γ运动神经元接收来自运动皮层的输入。梭内肌传入纤维的牵张反射控制对关节位置本体感觉编码的影响尚不清楚。此外,从运动皮层到肌梭的牵张反射信号携带了什么信息在很大程度上是未知的。在这项研究中,我们使用基于虚拟臂(VA)模型的计算方法来解决中枢和外周感觉运动系统之间的通信问题。在关节运动的操作范围内进行模拟实验,假设肌梭的γ静态命令(γ(s))(1)保持不变,(2)与关节角度线性调制,(3)与关节角度非线性调制。模拟结果显示,Ia 传入纤维与 γ(s)激活和关节角度之间存在非线性关系。在这三个假设中,常数和线性策略都没有产生与实验数据匹配的 Ia 反应,因此被拒绝为可行的肌梭敏感性控制策略。然而,如果 γ(s)命令与关节角度呈二次调制,那么在单关节和双关节肌肉中都可以获得 Ia 传入纤维与关节角度之间的强线性关系。采用肌梭敏感性控制的二次策略,γ(s)命令可以作为 CNS 输出,将关节角度的中枢编码信息告知外周。研究结果表明,关节角度的信息可能通过下行 γ(s)传出和 Ia 传入信号在 CNS 和肌肉之间进行传递。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c65f/3431011/e029b3d5ead1/fncom-06-00066-g0001.jpg

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