Baudry Stéphane, Enoka Roger M
Department of Integrative Physiology, University of Colorado, Boulder, CO, 80309-0354, USA.
Exp Brain Res. 2009 Oct;199(1):83-8. doi: 10.1007/s00221-009-1951-x. Epub 2009 Jul 29.
The present work was designed to investigate presynaptic modulation of Ia afferents in the extensor (ECR) and flexor carpi radialis (FCR) when the two muscles acted as synergists during radial deviation to either support an inertial load (position task) or exert an equivalent constant torque against a rigid restraint (force task). H reflexes were evoked in the ECR and FCR by stimulating at the elbow level (1-ms duration) the radial and median nerves, respectively. Conditioning stimulation was applied to the median and radial nerves at the elbow level to assess presynaptic inhibition of homonymous Ia afferent input (D1 inhibition) from the ECR and FCR, respectively. The ongoing presynaptic inhibition of heteronymous Ia afferents that converges onto ECR and FCR motor neuron pools (heteronymous Ia facilitation) was assessed by stimulating the median nerve at the wrist level (palmar branch) prior to the stimulus applied over the radial or median nerve. The heteronymous monosynaptic Ia facilitation was greater (P < 0.05) during the position task (ECR 121%; FCR 147%) compared with the force task (ECR 115%; FCR 132%), and was paralleled by the depression of D1 inhibition (P < 0.05) during the position task (ECR 75.4%; FCR 79.0%) compared with force task (ECR 58.7%; FCR 58.8%). These data indicate that Ia presynaptic inhibition is reduced during the position task relative to the force task. Such differential modulation of Ia afferent input onto the motor neuron pool likely reflects the requirement to heighten reflex responsiveness during the unstable task of maintaining limb position.
本研究旨在探究在桡偏过程中,当肱桡肌(ECR)和桡侧腕屈肌(FCR)这两块肌肉作为协同肌以支撑惯性负荷(定位任务)或对抗刚性约束施加等效恒定扭矩(测力任务)时,Ia传入纤维的突触前调制情况。分别在肘部水平刺激桡神经和正中神经(持续时间1毫秒),以诱发ECR和FCR中的H反射。在肘部水平对正中神经和桡神经施加条件刺激,以分别评估来自ECR和FCR的同名Ia传入输入的突触前抑制(D1抑制)。通过在桡神经或正中神经刺激之前,在腕部水平(掌支)刺激正中神经,评估汇聚到ECR和FCR运动神经元池的异名Ia传入纤维的持续突触前抑制(异名Ia易化)。与测力任务(ECR 115%;FCR 132%)相比,定位任务期间(ECR 121%;FCR 147%)异名单突触Ia易化作用更强(P<0.05),并且与定位任务期间(ECR 75.4%;FCR 79.0%)相比测力任务期间(ECR 58.7%;FCR 58.8%)D1抑制的减弱情况相平行。这些数据表明,相对于测力任务,定位任务期间Ia突触前抑制作用减弱。运动神经元池上Ia传入输入的这种差异调制可能反映了在维持肢体位置的不稳定任务期间增强反射反应性的需求。