Krutki P, Pogrzebna M, Drzymała H, Raikova R, Celichowski J
Department of Neurobiology, University School of Physical Education, Poznań, Poland.
J Physiol Pharmacol. 2008 Mar;59(1):85-100.
During natural contractions of a muscle, motor units (MUs) are activated by irregular discharge patterns of motoneurones. The aim of this study was to analyze changes in contractile forces of MUs following patterns of stimulation at variable frequency. Experiments were performed on 33 functionally isolated MUs of the fast-type in the medial gastrocnemius (MG) muscle of adult Wistar rats, under pentobarbital anaesthesia. The MUs forces evoked at five different regular stimulation patterns of constant frequencies were compared to forces generated during five random patterns of irregular stimulation with the same mean values of interpulse intervals, between 10 and 75 ms, and variability of these intervals of +/- 50% in each case. These values cover the natural range of the preferred firing rates of the MG motoneurones from unfused to nearly fused tetanic contractions. Analysis of changes in tetanic forces indicated a linear relationship between the interpulse interval as well as the initial level of the force and the amplitude of the force increase of the next contraction. It was demonstrated that variability of the instantaneous tetanic force during the irregular discharge pattern depends on the level of tetanic fusion. Moreover, it was demonstrated that for low and moderately-fused tetani, effectiveness of a MU contraction (expressed as the force-time area) is considerably higher for contractions evoked by irregular stimulation patterns. On the basis of the results of this study it was supposed that during voluntary contractions, the influence of changes in the motoneuronal firing rate on the motor unit force depends on the initial level of force.
在肌肉自然收缩过程中,运动单位(MUs)由运动神经元的不规则放电模式激活。本研究的目的是分析可变频率刺激模式下运动单位收缩力的变化。实验在成年Wistar大鼠腓肠肌内侧(MG)的33个功能分离的快肌型运动单位上进行,采用戊巴比妥麻醉。将五种不同频率的恒定刺激模式诱发的运动单位力与五种随机不规则刺激模式产生的力进行比较,这些不规则刺激模式的平均脉冲间隔在10至75毫秒之间,且每种情况下这些间隔的变异性为±50%。这些值涵盖了MG运动神经元从非融合到几乎融合的强直收缩的首选放电率的自然范围。对强直力变化的分析表明,脉冲间隔以及力的初始水平与下一次收缩力增加的幅度之间存在线性关系。结果表明,不规则放电模式下瞬时强直力的变异性取决于强直融合水平。此外,研究表明,对于低融合和中等融合的强直收缩,不规则刺激模式诱发的运动单位收缩的有效性(以力-时间面积表示)要高得多。基于本研究结果推测,在自主收缩过程中,运动神经元放电率变化对运动单位力的影响取决于力的初始水平。