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大鼠腓肠肌内侧运动神经元与肌肉单位特性的匹配

Matching between motoneurone and muscle unit properties in rat medial gastrocnemius.

作者信息

Bakels R, Kernell D

机构信息

Department of Neurophysiology, University of Amsterdam, The Netherlands.

出版信息

J Physiol. 1993 Apr;463:307-24. doi: 10.1113/jphysiol.1993.sp019596.

Abstract
  1. Electrical and contractile (isometric) properties were studied for sixty-six motoneurone-muscle unit combinations from rat medial gastrocnemius (MG). The animals were anaesthetized with pentobarbitone. 2. The muscle units were classified into S (slow) and F (fast) on the basis of measurements of speed and fatigue resistance: the 'slow' category comprised units with an initial twitch contraction time exceeding those found among fatigue-sensitive units (border value 20 ms). 3. Twitch speed was assessed by three different measures: (i) contraction time (time to peak, range 11.4-28.0 ms), (ii) half-relaxation time (8.4-56.5 ms), and (iii) total twitch duration (34-116 ms). All three measures were mutually highly correlated and their respective values showed a continuous and unimodal distribution across the unit population. 4. The motoneurones were investigated with regard to their time course and amplitude of post-spike after-hyperpolarization (AHP; range of total durations 30-116 ms, amplitudes 0.9-8.0 mV), rheobase (0.8-17.1 nA), input resistance (0.8-5.1 M omega) and axonal conduction velocity (33-85 m/s). 5. Motoneurones of slow-twitch muscle units (type S) had, on average, a significantly slower time course of AHP, a smaller rheobase, a higher input resistance and more slowly conducting axons than those innervating fast-twitch muscle units. 6. Across the whole neuronal sample, input conductance (reciprocal of input resistance) correlated well with rheobase (r = 0.74). However, the differences in rheobase did not seem to be caused exclusively by the associated differences in input conductance. 7. Throughout the sampled population, the relative slowness of AHP showed a continuous and highly significant correlation with the relative slowness of the corresponding unit twitch. The absolute duration of AHP was close to that of the twitch. In the Discussion it is argued that this 'speed match' between motoneurone and muscle unit would help ensure that barely recruited motoneurones start firing at a frequency that is optimally suited for the subsequent rate gradation of force. 8. AHP amplitude was, on average, significantly smaller for fast-twitch than for slow-twitch motoneurones. Calculations indicated that these differences were almost completely caused by the associated differences in input resistance; the computed value for the conductance change underlying the AHP was nearly the same for fast- and slow-twitch motoneurones. 9. A simple neurone model was used to calculate the consequences of the differences in AHP amplitude and duration for repetitive discharge properties of fast and slow cell categories.(ABSTRACT TRUNCATED AT 400 WORDS)
摘要
  1. 对取自大鼠内侧腓肠肌(MG)的66个运动神经元 - 肌肉单位组合的电特性和收缩(等长)特性进行了研究。动物用戊巴比妥麻醉。2. 根据速度和抗疲劳性测量结果,将肌肉单位分为S(慢)和F(快)两类:“慢”类包括初始抽搐收缩时间超过疲劳敏感单位中发现的时间(边界值20毫秒)的单位。3. 通过三种不同方法评估抽搐速度:(i)收缩时间(达到峰值的时间,范围11.4 - 28.0毫秒),(ii)半松弛时间(8.4 - 56.5毫秒),以及(iii)总抽搐持续时间(34 - 116毫秒)。所有这三种测量方法相互之间高度相关,并且它们各自的值在整个单位群体中呈现连续且单峰分布。4. 研究了运动神经元的峰后超极化(AHP)的时间进程和幅度(总持续时间范围30 - 116毫秒,幅度0.9 - 8.0毫伏)、基强度(0.8 - 17.1纳安)、输入电阻(0.8 - 5.1兆欧)和轴突传导速度(33 - 85米/秒)。5. 慢抽搐肌肉单位(S型)的运动神经元,平均而言,与支配快抽搐肌肉单位的运动神经元相比,AHP的时间进程明显更慢,基强度更小,输入电阻更高,轴突传导更慢。6. 在整个神经元样本中,输入电导(输入电阻的倒数)与基强度相关性良好(r = 0.74)。然而,基强度的差异似乎并非完全由相关的输入电导差异引起。7. 在整个采样群体中,AHP的相对缓慢与相应单位抽搐的相对缓慢呈现连续且高度显著的相关性。AHP的绝对持续时间与抽搐的接近。在讨论中认为,运动神经元与肌肉单位之间的这种“速度匹配”将有助于确保刚刚被募集的运动神经元以最适合后续力的速率分级的频率开始放电。8. 快抽搐运动神经元的AHP幅度平均而言明显小于慢抽搐运动神经元。计算表明,这些差异几乎完全由相关的输入电阻差异引起;快抽搐和慢抽搐运动神经元的AHP基础电导变化的计算值几乎相同。9. 使用一个简单的神经元模型来计算AHP幅度和持续时间差异对快细胞和慢细胞类别重复放电特性的影响。(摘要截断于400字)

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