Suppr超能文献

生理性震颤的神经元机制。

Neuronal mechanisms underlying physiological tremor.

作者信息

Allum J H, Dietz V, Freund H J

出版信息

J Neurophysiol. 1978 May;41(3):557-71. doi: 10.1152/jn.1978.41.3.557.

Abstract
  1. Tremor force was recorded during stationary isometric contractions of intrinsic hand muscles of normal subjects. Subjects maintained a steady force level between their thumb and forefinger for 30 s. The force level varied from weak (0.2 kg) to strong contractions (7 kg). These experimental conditions were the same as those in two preceding studies, where single motor-unit activity (14) and the correlation between the discharges of two simultaneously recorded motor units and physiological tremor (11) have been investigated. 2. Two alterations of the power spectra were observed at successively stronger contractions: increase of tremor amplitude and changes in the shape of the power spectrum. At all force levels, the power spectra of tremor force show the well-known decay of tremor amplitude from the lower to the higher frequencies with a local peak at 6--10 Hz. This peak does not show a significant change with respect to frequency when the force level is varied. It is shifted toward lower frequencies in a pathological condition (Parkinsonism) where the recruitment firing rates of the motor units are significantly lower than in the normal. 3. Higher frequencies (greater than 20 Hz) are barely present in the power spectrum during the very weak contractions. They become significant as the contractions become stronger. 4. The steep decay of the power spectrum toward higher frequencies has a similar slope (--43 dB/decade) as the reduction in amplitude of the unfused part of the muscle contractions with increasing stimulus rates (--38 dB/decade). The cutoff of the power spectrum above 25 Hz parallels the achievement of total fusion of muscle twitches above this rate. 5. The results are consistent with the hypothesis that the power spectrum over the range of 6--25 Hz is mainly caused by the unfused parts of the twitch contractions of motor units firing between recruitment (6--8/s) and total fusion of the twitches (25--30/s). The decline of the power spectrum toward higher frequencies can be explained by mechanical damping, which results from increasing fusion of the twitch contractions. The low-frequency part of the power spectrum is assumed to be the result of the slow force deviations produced by changes in the net output of the motoneuron pool. 6. These assumptions were supported by additional animal experiments where the number and rate of force-producing elements could be controlled. Bundles of ventral root filaments innervating cat soleus and gastrocnemius muscles were stimulated synchronously and asynchronously at a number of different rates. The force output of the strain gauge was recorded, filtered, and analyzed in the same way as the human force records. 7. Stimualtion of one nerve bundle at one fixed frequency led to a sharp peak in the power spectrum at that frequency plus peaks of decreasing height representing the harmonics of the stimulation frequency. The height of the peaks decreased at --37 dB/decade. 8...
摘要
  1. 在正常受试者手部固有肌的静止等长收缩过程中记录震颤力。受试者在拇指和食指之间维持稳定的力水平30秒。力水平从弱(0.2千克)到强收缩(7千克)不等。这些实验条件与之前的两项研究相同,在那两项研究中,对单运动单位活动(14)以及同时记录的两个运动单位的放电与生理震颤之间的相关性(11)进行了研究。2. 在相继更强的收缩过程中观察到功率谱的两种变化:震颤幅度增加和功率谱形状改变。在所有力水平下,震颤力的功率谱均显示出震颤幅度从低频到高频的众所周知的衰减,在6 - 10赫兹处有一个局部峰值。当力水平变化时,该峰值在频率方面没有显著变化。在运动单位募集放电率明显低于正常的病理状态(帕金森病)下,它会向低频方向移动。3. 在非常弱的收缩过程中,功率谱中几乎不存在高于20赫兹的频率。随着收缩变强,它们变得显著。4. 功率谱向高频方向的陡峭衰减具有与肌肉收缩未融合部分的幅度随刺激率增加而降低(-38分贝/十倍频程)相似的斜率(-43分贝/十倍频程)。功率谱在25赫兹以上的截止与肌肉抽搐在该频率以上实现完全融合相对应。5. 这些结果与以下假设一致,即6 - 25赫兹范围内的功率谱主要由运动单位在募集(6 - 8次/秒)和抽搐完全融合(25 - 30次/秒)之间放电的抽搐收缩的未融合部分引起。功率谱向高频方向的下降可以用机械阻尼来解释,这是由抽搐收缩融合增加导致的。功率谱的低频部分被认为是运动神经元池净输出变化产生的缓慢力偏差的结果。6. 这些假设得到了额外动物实验的支持,在这些实验中,可以控制产生力的元件的数量和速率。以多种不同速率同步和异步刺激支配猫比目鱼肌和腓肠肌的腹根细丝束。应变仪的力输出以与人类力记录相同的方式进行记录、滤波和分析。7. 以一个固定频率刺激一个神经束会导致功率谱在该频率处出现一个尖锐峰值,加上代表刺激频率谐波的高度逐渐降低的峰值。峰值高度以-37分贝/十倍频程下降。8...

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验