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人类触觉检测阈值:特定触觉感受器类别的输入对其的调节

Human tactile detection thresholds: modification by inputs from specific tactile receptor classes.

作者信息

Ferrington D G, Nail B S, Rowe M

出版信息

J Physiol. 1977 Nov;272(2):415-33. doi: 10.1113/jphysiol.1977.sp012052.

Abstract
  1. Human detection thresholds for a vibratory stimulus applied to the volar surface of the index finger were examined under conditions where afferents from specific tactile receptor classes were simultaneously activated from the thenar eminence. The experiments were designed to test whether stimuli which have been shown previously to induce afferent inhibition of ;tactile' neurones in the cuneate nucleus of the cat could modify human subjective performance in a tactile detection task. Conditioning stimuli to the thenar eminence were usually of three forms; steady indentation to engage slowly adapting tactile receptors; 300 Hz vibration to engage Pacinian corpuscles; and 30 Hz vibration to engage the intradermal, rapidly adapting tactile receptors which are thought to be Meissner's corpuscles.2. In ten subjects the mean detection threshold for a 30 Hz test stimulus in the absence of conditioning stimulation was 8.6 +/- 1.0 mum (S.E.). Detection thresholds were increased substantially in the presence of a 300 Hz, 100 mum conditioning stimulus (mean increase 11.1 +/- 2.0 mum), whereas minor or insignificant effects were seen with conditioning stimuli consisting of (a) 30 Hz, 100 mum (mean increase 1.4 +/- 0.8 mum), (b) steady indentation, 1.5 mm in amplitude (mean increase 1.3 +/- 0.7 mum) or (c) 300 Hz, 100 mum to the contralateral thenar eminence (mean increase 0.4 +/- 0.5 mum).3. The 300 Hz conditioning stimulus to the ipsilateral thenar eminence caused a marked increase in detection thresholds at all test stimulus frequencies over the range 10-450 Hz. The effects of the conditioning stimulation therefore operated on inputs from Pacinian corpuscles, which are responsible for vibration detection at 80-450 Hz, and on inputs from the intradermal, rapidly adapting receptors which are responsible for vibration detection at 10-80 Hz.4. The band width of conditioning vibratory frequencies which was effective at amplitudes of 100 mum in bringing about increases in detection threshold extended from 50-80 Hz to 300 Hz, the maximum tested.5. Whereas amplitudes of 1-2 mum produced clear increases in detection thresholds with conditioning stimuli of 300 Hz, amplitudes of > 200 mum were needed at 30 Hz.6. The observed elevations in detection threshold are consistent with an afferent-induced inhibitory action exerted at synaptic relays of the sensory pathway by tactile inputs arising exclusively or predominantly from Pacinian corpuscles.
摘要
  1. 在来自特定触觉感受器类别的传入神经同时从鱼际隆起被激活的条件下,检测了施加于食指掌面的振动刺激的人体检测阈值。这些实验旨在测试先前已证明能在猫的楔状核中诱导对“触觉”神经元传入抑制的刺激是否能改变人体在触觉检测任务中的主观表现。对鱼际隆起的条件刺激通常有三种形式:持续压痕以激活慢适应触觉感受器;300赫兹振动以激活帕西尼小体;以及30赫兹振动以激活真皮内快速适应触觉感受器,据认为这些感受器是迈斯纳小体。

  2. 在10名受试者中,在没有条件刺激的情况下,30赫兹测试刺激的平均检测阈值为8.6±1.0微米(标准误)。在存在300赫兹、100微米的条件刺激时,检测阈值大幅增加(平均增加11.1±2.0微米),而由以下条件刺激产生的影响较小或不显著:(a) 30赫兹、100微米(平均增加1.4±0.8微米),(b) 持续压痕,振幅1.5毫米(平均增加1.3±0.7微米),或(c) 对侧鱼际隆起施加300赫兹、100微米(平均增加0.4±0.5微米)。

  3. 对同侧鱼际隆起施加300赫兹的条件刺激导致在10 - 450赫兹范围内所有测试刺激频率下检测阈值显著增加。因此,条件刺激的作用是作用于帕西尼小体的输入,帕西尼小体负责80 - 450赫兹的振动检测,以及作用于真皮内快速适应感受器的输入,这些感受器负责10 - 80赫兹的振动检测。

  4. 在100微米振幅下有效导致检测阈值增加的条件振动频率带宽从50 - 80赫兹扩展到测试的最大值300赫兹。

  5. 虽然1 - 2微米的振幅在300赫兹的条件刺激下能使检测阈值明显增加,但在30赫兹时需要大于200微米的振幅。

  6. 观察到的检测阈值升高与仅或主要来自帕西尼小体的触觉输入在感觉通路的突触中继处施加的传入诱导抑制作用一致。

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Response of Pacinian corpuscles to sinusoidal vibration.帕西尼小体对正弦振动的反应。
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