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本文引用的文献

1
Partial-Hand Prosthesis Users Show Improved Reach-to-Grasp Behaviour Compared to Transradial Prosthesis Users with Increased Task Complexity.部分手假肢使用者在增加任务复杂性时表现出比经桡骨假肢使用者更好的伸手抓握行为。
J Mot Behav. 2022;54(6):706-718. doi: 10.1080/00222895.2022.2070122. Epub 2022 Apr 29.
2
Neurorehabilitation in Adults With Traumatic Upper Extremity Amputation: A Scoping Review.成人创伤性上肢截肢后的神经康复:范围综述。
Neurorehabil Neural Repair. 2022 Mar;36(3):208-216. doi: 10.1177/15459683211070277. Epub 2021 Dec 30.
3
A scoping review of the application of motor learning principles to optimize myoelectric prosthetic hand control.应用运动学习原理优化肌电假肢手控制的范围综述。
Prosthet Orthot Int. 2022 Jun 1;46(3):274-281. doi: 10.1097/PXR.0000000000000083. Epub 2021 Dec 17.
4
Brain Processes Involved in Motor Planning Are a Dominant Factor for Inducing Event-Related Desynchronization.参与运动规划的脑过程是诱发事件相关去同步化的主要因素。
Front Hum Neurosci. 2021 Nov 11;15:764281. doi: 10.3389/fnhum.2021.764281. eCollection 2021.
5
Emergence of perceptuomotor relationships during paleolithic stone toolmaking learning: intersections of observation and practice.旧石器时代石器制造学习过程中感知运动关系的出现:观察与实践的交集。
Commun Biol. 2021 Nov 11;4(1):1278. doi: 10.1038/s42003-021-02768-w.
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Evidence and Urgency Related EEG Signals during Dynamic Decision-Making in Humans.人类动态决策过程中的证据和紧迫性相关脑电图信号。
J Neurosci. 2021 Jun 30;41(26):5711-5722. doi: 10.1523/JNEUROSCI.2551-20.2021. Epub 2021 May 25.
7
Pre-movement changes in sensorimotor beta oscillations predict motor adaptation drive.运动前感觉运动β振荡的变化预测运动适应驱动器。
Sci Rep. 2020 Oct 21;10(1):17946. doi: 10.1038/s41598-020-74833-z.
8
Movement speed effects on beta-band oscillations in sensorimotor cortex during voluntary activity.运动速度对自愿活动中感觉运动皮层β波段振荡的影响。
J Neurophysiol. 2020 Aug 1;124(2):352-359. doi: 10.1152/jn.00238.2020. Epub 2020 Jun 24.
9
Spatially Distinct Beta-Band Activities Reflect Implicit Sensorimotor Adaptation and Explicit Re-aiming Strategy.空间分离的β波段活动反映了内隐感觉运动适应和外显重新瞄准策略。
J Neurosci. 2020 Mar 18;40(12):2498-2509. doi: 10.1523/JNEUROSCI.1862-19.2020. Epub 2020 Feb 7.
10
Event-Related Desynchronization/Synchronization in Spinocerebellar Ataxia Type 3.脊髓小脑性共济失调3型中的事件相关去同步化/同步化
Front Neurol. 2019 Jul 31;10:822. doi: 10.3389/fneur.2019.00822. eCollection 2019.

抓握姿势变化导致模拟使用假肢时对侧感觉运动β波活动增加。

Grasp Posture Variability Leads to Greater Ipsilateral Sensorimotor Beta Activation During Simulated Prosthesis Use.

机构信息

School of Biological Sciences, Georgia Institute of Technology, Atlanta, GA, USA.

出版信息

J Mot Behav. 2024;56(5):579-591. doi: 10.1080/00222895.2024.2364657. Epub 2024 Jul 23.

DOI:10.1080/00222895.2024.2364657
PMID:39041372
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11343659/
Abstract

Motor behaviour using upper-extremity prostheses of different levels is greatly variable, leading to challenges interpreting ideal rehabilitation strategies. Elucidating the underlying neural control mechanisms driving variability benefits our understanding of adaptation after limb loss. In this follow-up study, non-amputated participants completed simple and complex reach-to-grasp motor tasks using a body-powered transradial or partial-hand prosthesis simulator. We hypothesised that under complex task constraints, individuals employing variable grasp postures will show greater sensorimotor beta activation compared to individuals relying on uniform grasping, and activation will occur later in variable compared to uniform graspers. In the simple task, partial-hand variable and transradial users showed increased neural activation from the early to late phase of the reach, predominantly in the hemisphere ipsilateral to device use. In the complex task, only partial-hand variable graspers showed a significant increase in neural activation of the sensorimotor cortex from the early to the late phase of the reach. These results suggest that grasp variability may be a crucial component in the mechanism of neural adaptation to prosthesis use, and may be mediated by device level and task complexity, with implications for rehabilitation after amputation.

摘要

使用不同水平上肢假肢的运动行为差异很大,这给解释理想的康复策略带来了挑战。阐明驱动变异性的潜在神经控制机制有助于我们理解肢体丧失后的适应。在这项后续研究中,非截肢参与者使用身体动力的经桡骨或部分手假肢模拟器完成了简单和复杂的伸手抓握运动任务。我们假设,在复杂任务的约束下,与依赖统一抓握的个体相比,采用可变抓握姿势的个体在传感器运动β激活方面表现出更大的变异性,并且在可变抓握者中比在统一抓握者中出现得更晚。在简单任务中,部分手可变和经桡骨使用者在到达的早期到晚期阶段表现出神经激活的增加,主要发生在与装置使用同侧的半球中。在复杂任务中,只有部分手可变抓握者在到达的早期到晚期阶段表现出传感器运动皮层的神经激活显著增加。这些结果表明,抓握的可变性可能是神经适应假肢使用机制的关键组成部分,并且可能受到设备水平和任务复杂性的影响,这对截肢后的康复有影响。