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Responses of human mechanoreceptive afferents to embossed dot arrays scanned across fingerpad skin

机译:人体机械感受传入对跨指板皮肤扫描的浮雕点阵列的响应

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摘要

The spatial resolving capacities of the four classes of mechanoreceptive afferents innervating human fingerpad skin were investigated to determine which class sets the limit of tactile spatial resolution for scanning stimuli. The stimulus consisted of an array of embossed dots (0.7 mm diameter, 0.5 mm high) arranged in a tetragonal pattern with dot spacing decreasing linearly from 6.4 mm at one end of the array to 0.87 mm at the other. The pattern was wrapped around a drum and repeatedly scanned across the receptive field of single afferents by continuously rotating the drum. Responses to many closely spaced scans were obtained by imposing a lateral shift of the pattern between each revolution. Impulses were recorded microneurographically. Responses were plotted in raster form to produce a neural image of the pattern. Responses of rapidly and slowly adapting type I (FAI and SAI) afferents resolved dots down to a spacing of about 1.5 mm. Responses of type II (FAII and SAII) afferents resolved dots down to a spacing of about 3.5 mm. Variation in scanning speed (range, 20–90 mm/sec) and contact force (range, 0.4–1.0 N) had minimal effects on spatial resolution of all afferents. The response clusters associated with individual widely spaced dots were used to investigate receptive field structure. FAI and SAI fields (mean areas, 6.1 and 4.8 mm2, respectively) each contained several zones of maximal sensitivity. FAI fields had five to eight such zones, whereas SAI fields had three to five such zones. As dot spacing decreased, neighboring dots interacted to affect the responses associated with the individual zones within a field. Initially, one or more zones were deactivated, effectively reducing receptive field size and allowing representation of finer spatial detail than would be predicted from the overall area of the receptive field. At very close dot spacings responses were only obtained when more than one sensitive zone within a field were simultaneously activated by different dots.
机译:研究了四类支配人类指板皮肤的机械感受传入空间的空间分辨能力,以确定哪一类为扫描刺激设定了触觉空间分辨率的极限。刺激包括以四角形图案排列的压花点阵列(直径0.7毫米,高0.5毫米),点间距从阵列一端的6.4 mm线性减小到另一端的0.87 mm。将图案缠绕在鼓上,并通过连续旋转鼓在单个传入的接收区域上反复扫描。通过在每次旋转之间强加图案的横向偏移,可以获得对许多间距很小的扫描的响应。脉冲通过微神经记录。以光栅形式绘制响应,以产生图案的神经图像。快速和缓慢适应的I型(FAI和SAI)的响应将点分解为大约1.5毫米的间距。 II型(FAII和SAII)的响应传入点的分辨率降低到大约3.5毫米。扫描速度(范围为20–90 mm / sec)和接触力(范围为0.4–1.0 N)的变化对所有传入空间分辨率的影响最小。与各个较宽间隔的点相关的响应簇用于研究感受野结构。 FAI和SAI场(平均面积分别为6.1和4.8 mm2)包含几个具有最高灵敏度的区域。 FAI领域有5到8个这样的区域,而SAI领域有3到5个这样的区域。随着点间距的减小,相邻点相互作用以影响与场内各个区域相关的响应。最初,一个或多个区域被停用,有效地减小了接收场的大小,并允许表示比从接收场的整个区域所预测的更精细的空间细节。在非常近的点间距下,只有当一个场中的多个敏感区域同时被不同的点激活时,才能获得响应。

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