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本文引用的文献

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A Functional Taxonomy of Bottom-Up Sensory Feedback Processing for Motor Actions.用于运动动作的自下而上感觉反馈处理的功能分类学。
Trends Neurosci. 2016 Aug;39(8):512-526. doi: 10.1016/j.tins.2016.06.001. Epub 2016 Jul 1.
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Long-Latency Feedback Coordinates Upper-Limb and Hand Muscles during Object Manipulation Tasks.长潜伏期反馈协调上肢和手部肌肉在物体操作任务中。
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A Rapid Tactile-Motor Reflex Automatically Guides Reaching toward Handheld Objects.一种快速触觉-运动反射自动引导伸向手持物体的动作。
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Surface strain measurements of fingertip skin under shearing.剪切力作用下指尖皮肤的表面应变测量
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Goal-dependent modulation of the long-latency stretch response at the shoulder, elbow, and wrist.肩部、肘部和腕部的长潜伏期牵张反应的目标依赖性调制。
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Human muscle spindle sensitivity reflects the balance of activity between antagonistic muscles.人类肌肉纺锤体敏感性反映了拮抗肌之间活动的平衡。
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Touch is a team effort: interplay of submodalities in cutaneous sensibility.触觉是团队协作的结果:皮肤感觉的亚模式相互作用。
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Dynamics of fingertip contact during the onset of tangential slip.切向滑动开始时指尖接触的动力学
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Edge-orientation processing in first-order tactile neurons.一级触觉神经元中的边缘定向处理。
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对指尖负载快速运动反应的多感官组成部分。

Multisensory components of rapid motor responses to fingertip loading.

作者信息

Crevecoeur F, Barrea A, Libouton X, Thonnard J-L, Lefèvre P

机构信息

Institute of Information and Communication Technologies, Electronics and Applied Mathematics (ICTEAM), Université catholique de Louvain, Louvain-la-Neuve, Belgium.

Institute of Neuroscience (IoNS), Université catholique de Louvain, Louvain-la-Neuve, Belgium.

出版信息

J Neurophysiol. 2017 Jul 1;118(1):331-343. doi: 10.1152/jn.00091.2017. Epub 2017 May 3.

DOI:10.1152/jn.00091.2017
PMID:28468992
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5498727/
Abstract

Tactile and muscle afferents provide critical sensory information for grasp control, yet the contribution of each sensory system during online control has not been clearly identified. More precisely, it is unknown how these two sensory systems participate in online control of digit forces following perturbations to held objects. To address this issue, we investigated motor responses in the context of fingertip loading, which parallels the impact of perturbations to held objects on finger motion and fingerpad deformation, and characterized surface recordings of intrinsic (first dorsal interosseous, FDI) and extrinsic (flexor digitorum superficialis, FDS) hand muscles based on statistical modeling. We designed a series of experiments probing the effects of peripheral stimulation with or without anesthesia of the finger, and of task instructions. Loading of the fingertip generated a motor response in FDI at ~60 ms following the perturbation onset, which was only driven by muscle stretch, as the ring-block anesthesia reduced the gain of the response occurring later than 90 ms, leaving responses occurring before this time unaffected. In contrast, the motor response in FDS was independent of the lateral motion of the finger. This response started at ~90 ms on average and was immediately adjusted to task demands. Altogether these results highlight how a rapid integration of partially distinct sensorimotor circuits supports rapid motor responses to fingertip loading. To grasp and manipulate objects, the brain uses touch signals related to skin deformation as well as sensory information about motion of the fingers encoded in muscle spindles. Here we investigated how these two sensory systems contribute to feedback responses to perturbation applied to the fingertip. We found distinct response components, suggesting that each sensory system engages separate sensorimotor circuits with distinct functions and latencies.

摘要

触觉和肌肉传入神经为抓握控制提供关键的感觉信息,但在在线控制过程中每个感觉系统的贡献尚未明确确定。更确切地说,尚不清楚这两个感觉系统在握持物体受到扰动后如何参与手指力量的在线控制。为了解决这个问题,我们在指尖加载的背景下研究了运动反应,指尖加载类似于握持物体受到的扰动对手指运动和指腹变形的影响,并基于统计建模对手部固有肌(第一背侧骨间肌,FDI)和外在肌(指浅屈肌,FDS)的表面记录进行了特征描述。我们设计了一系列实验,探究有无手指麻醉情况下的外周刺激以及任务指令的影响。指尖加载在扰动开始后约60毫秒时在FDI中产生运动反应,该反应仅由肌肉拉伸驱动,因为指根阻滞麻醉降低了90毫秒后出现的反应增益,而在此之前出现的反应不受影响。相比之下,FDS中的运动反应与手指的横向运动无关。该反应平均在约90毫秒开始,并立即根据任务需求进行调整。总之,这些结果突出了部分不同的感觉运动回路的快速整合如何支持对指尖加载的快速运动反应。为了抓握和操纵物体,大脑利用与皮肤变形相关的触觉信号以及肌肉纺锤体中编码的手指运动的感觉信息。在这里,我们研究了这两个感觉系统如何对施加到指尖的扰动产生反馈反应。我们发现了不同的反应成分,这表明每个感觉系统参与具有不同功能和潜伏期的独立感觉运动回路。