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本文引用的文献

1
Coding and use of tactile signals from the fingertips in object manipulation tasks.在物体操纵任务中指尖触觉信号的编码与运用。
Nat Rev Neurosci. 2009 May;10(5):345-59. doi: 10.1038/nrn2621. Epub 2009 Apr 8.
2
The collagenic structure of human digital skin seen by scanning electron microscopy after Ohtani maceration technique.大谷浸渍技术处理后,通过扫描电子显微镜观察到的人类手指皮肤的胶原结构。
Ann Anat. 2005 Mar;187(1):13-22. doi: 10.1016/j.aanat.2004.06.001.
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[Fingertip injuries in children: 81 cases with at least one year follow-up].[儿童指尖损伤:81例至少随访一年的病例]
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Sensory signals in neural populations underlying tactile perception and manipulation.触觉感知与操作背后神经群体中的感觉信号。
Annu Rev Neurosci. 2004;27:53-77. doi: 10.1146/annurev.neuro.26.041002.131032.
5
First spikes in ensembles of human tactile afferents code complex spatial fingertip events.人类触觉传入神经集群中的首个峰值编码复杂的指尖空间事件。
Nat Neurosci. 2004 Feb;7(2):170-7. doi: 10.1038/nn1177. Epub 2004 Jan 18.
6
Influence of object shape on responses of human tactile afferents under conditions characteristic of manipulation.在操作特征条件下物体形状对人类触觉传入神经反应的影响。
Eur J Neurosci. 2003 Jul;18(1):164-76. doi: 10.1046/j.1460-9568.2003.02721.x.
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Distal replantation, nail bed, and nail problems in musicians.音乐家的远端再植、甲床及指甲问题
Hand Clin. 2003 May;19(2):259-72, vi. doi: 10.1016/s0749-0712(02)00135-x.
8
Paucity of presumptive ruffini corpuscles in the index finger pad of humans.人类食指指腹中假定的鲁菲尼小体数量稀少。
J Comp Neurol. 2003 Feb 10;456(3):260-6. doi: 10.1002/cne.10519.
9
Anatomy and physiology of the perionychium.甲周组织的解剖学与生理学
Clin Anat. 2003 Jan;16(1):1-8. doi: 10.1002/ca.10078.
10
Modulation of ongoing EMG by different classes of low-threshold mechanoreceptors in the human hand.人手不同类型低阈值机械感受器对肌电图的调制作用。
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人类指甲边缘的慢适应性机械感受器可编码指尖所受的力。

Slowly adapting mechanoreceptors in the borders of the human fingernail encode fingertip forces.

作者信息

Birznieks Ingvars, Macefield Vaughan G, Westling Göran, Johansson Roland S

机构信息

Prince of Wales Medical Research Institute, Sydney, New South Wales 2031, Australia.

出版信息

J Neurosci. 2009 Jul 22;29(29):9370-9. doi: 10.1523/JNEUROSCI.0143-09.2009.

DOI:10.1523/JNEUROSCI.0143-09.2009
PMID:19625527
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6665555/
Abstract

There are clusters of slowly adapting (SA) mechanoreceptors in the skin folds bordering the nail. These "SA-IInail" afferents, which constitute nearly one fifth of the tactile afferents innervating the fingertip, possess the general discharge characteristics of slowly adapting type II (SA-II) tactile afferents located elsewhere in the glabrous skin of the human hand. Little is known about the signals in the SA-IInail afferents when the fingertips interact with objects. Here we show that SA-IInail afferents reliably respond to fingertip forces comparable to those arising in everyday manipulations. Using a flat stimulus surface, we applied forces to the finger pad while recording impulse activity in 17 SA-IInail afferents. Ramp-and-hold forces (amplitude 4 N, rate 10 N/s) were applied normal to the skin, and at 10, 20, or 30 degrees from the normal in eight radial directions with reference to the primary site of contact (25 force directions in total). All afferents responded to the force stimuli, and the responsiveness of all but one afferents was broadly tuned to a preferred direction of force. The preferred directions among afferents were distributed all around the angular space, suggesting that the population of SA-IInail afferents could encode force direction. We conclude that signals in the population of SA-IInail afferents terminating in the nail walls contain vectorial information about fingertip forces. The particular tactile features of contacted surfaces would less influence force-related signals in SA-IInail afferents than force-related signals present in afferents terminating in the volar skin areas that directly contact objects.

摘要

在指甲边缘的皮肤褶皱处存在着成簇的慢适应性(SA)机械感受器。这些“SA-II指甲”传入神经,占支配指尖触觉传入神经的近五分之一,具有与位于人手无毛皮肤其他部位的慢适应性II型(SA-II)触觉传入神经相同的一般放电特征。对于指尖与物体相互作用时SA-II指甲传入神经中的信号,人们了解甚少。在这里,我们表明SA-II指甲传入神经能可靠地响应与日常操作中产生的力相当的指尖力。我们使用一个平坦的刺激表面,在记录17条SA-II指甲传入神经的冲动活动时,向指腹施加力。以垂直于皮肤的方向,以及相对于主要接触点在八个径向方向上与垂直方向成10度、20度或30度的方向(总共25个力的方向)施加斜坡-保持力(幅度4 N,速率10 N/s)。所有传入神经都对力刺激做出反应,除一条传入神经外,其他所有传入神经的反应都广泛地调谐到一个偏好的力方向。传入神经之间的偏好方向分布在整个角度空间,这表明SA-II指甲传入神经群体可以编码力的方向。我们得出结论,终止于指甲壁的SA-II指甲传入神经群体中的信号包含有关指尖力的矢量信息。与终止于直接接触物体的手掌皮肤区域的传入神经中存在的力相关信号相比,被接触表面的特定触觉特征对SA-II指甲传入神经中力相关信号的影响较小。