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Effects of Motor Imagery and Action Observation on Electromyographic Activity and Intramuscular Oxygenation in the Hand Gripping Gesture

2017年10月26日 更新者:Roy La Touche Arbizu、Universidad Autonoma de Madrid
Motor imagery is defined as a dynamic mental process of an action, without its real motor execution. Action observation training consists of watching an action performed by someone else. The primary objective of this study was to evaluate the effects of motor imagery and action observation combined with a hand grip strength program on strength gains in asymptomatic participants. The secondary objective was to assess the influence of motor imagery and action observation training combined with a hand grip strength program on electromyographic activity and intramuscular oxygenation of the forearm muscles.

研究概览

详细说明

Motor imagery is defined as a dynamic mental process of an action, without its real motor execution. Action observation training consists of watching an action performed by someone else. Both motor imagery and action observation have been shown to produce a neurophysiological activation of the brain areas related to the planning and execution of voluntary movement in a manner that resembles how the action is performed in reality.

Several studies have shown that patients can report a significant improvement in strength with motor imagery training. There is also evidence regarding the improvements in motor skills in participants who perform motor imagery training combined with mirror therapy. Motor imagery is recognized as one of the most popular and effective forms of training to improve learning strategies and to increase the capacity to perfect sports movements, as has been observed in rhythmic gymnastics athletes.

In addition to the previously mentioned adaptations, a recent research proved that motor imagery and action observation provoke an activation of the sympathetic-excitatory nervous system. Changes in respiration, heart rate and skin temperature are produced, as well as an increase in electrodermal activity.

Both motor imagery and action observation are interventions that can generate adaptive neuroplastic changes on a cortical level, leading to a decrease in chronic pain. These rehabilitation techniques are used in pain treatment and impaired movement injuries that could be due to a nervous system alteration.

Action observation effectively facilitates motor learning, and is a tool for rehabilitation in neurological and musculoskeletal diseases. Action observation training leads to significant improvements in static balance and helps improve gait in patients with hemiparesis after an ictus.

A recent study showed that the patient's functionality loss is lessened if motor imagery and action observation are applied after an immobilization process, reducing the loss of wrist mobility, strength and muscle mass.

The effectiveness of motor imagery is controversial; several studies have presented unfavorable outcomes from this technique. Some variables, such as the duration of the sessions, the time employed the type of motor task or the number of sessions can influence the outcomes of these studies. Thus, it is necessary to clarify the controversial aspects of motor imagery, which lead us to perform this study.

This study evaluates variables that have not yet shown conclusive results: intramuscular oxygenation and electromyography. Focusing principally on the effectiveness of the treatment and the adaptations that are generated on an intramuscular level leads to a better understanding of what occurs as a result of training with motor imagery and action observation, and also whether these variables influence the effectiveness of the treatment.

Therefore, the primary objective of this study was to evaluate the effects of motor imagery and action observation combined with a hand grip strength program on strength gains in asymptomatic participants. The secondary objective was to assess the influence of motor imagery and action observation training combined with a hand grip strength program on electromyographic activity and intramuscular oxygenation of the forearm muscles.

研究类型

介入性

注册 (实际的)

60

阶段

  • 不适用

联系人和位置

本节提供了进行研究的人员的详细联系信息,以及有关进行该研究的地点的信息。

学习地点

      • Madrid、西班牙、28023
        • CSEU La Salle

参与标准

研究人员寻找符合特定描述的人,称为资格标准。这些标准的一些例子是一个人的一般健康状况或先前的治疗。

资格标准

适合学习的年龄

18年 至 65年 (成人、年长者)

接受健康志愿者

有资格学习的性别

全部

描述

Inclusion Criteria:

  • asymptomatic participants;
  • men and women aged 18 to 65 years.

Exclusion Criteria:

  • participants who had any knowledge of physical therapy;
  • underage participants;
  • participants with pain at the time of the study;
  • participants with any type of neurological disease.

学习计划

本节提供研究计划的详细信息,包括研究的设计方式和研究的衡量标准。

研究是如何设计的?

设计细节

  • 主要用途:基础科学
  • 分配:随机化
  • 介入模型:并行分配
  • 屏蔽:单身的

武器和干预

参与者组/臂
干预/治疗
实验性的:Motor Imagery Group
The participants in the motor imagery group were given instructions to perform a daily training composed of two sets of activities. The main set consisted of 10 isometric hand grip contractions for 3 seconds each with a tennis ball, leaving a 20-second break between contractions. In the first set, the participant only had to imagine that he was performing that task, placed in the standard position with the tennis ball in the hand. Once the first set was completed, the participant had to take a 2-minute break before starting the second set, in which they had to complete the set both imagining and actively performing the isometric contractions with the tennis ball.
They made a mental task to produce a neurophysiological activation of the brain areas related to the planning and execution of voluntary movement in a manner that resembles how the action is performed in reality in combination with real exercises.
其他名称:
  • Mental Task
实验性的:Action Observation Group
The participants in the action observation group were given instructions to perform a daily training comprised of two sets of activities. The main set consisted of 10 isometric hand grip contractions for 3 seconds each with a tennis ball, leaving a 20-second break between contractions. In the first set, the participant simply watched a video that showed a forearm performing the task, placed in the standard position and with the tennis ball in the hand. Once that first set was completed, the participant took a 2-minute break before starting the second set, in which they performed the 10 isometric contractions with the tennis ball while they watched the video.
They made a mental task to produce a neurophysiological activation of the brain areas related to the planning and execution of voluntary movement in a manner that resembles how the action is performed in reality in combination with real exercises.
其他名称:
  • Mental Task
有源比较器:Control Group
The participants in the control group were given instructions to perform a daily training of a single set. The set consisted of 10 isometric hand grip contractions for 3 seconds each with a tennis ball, leaving a 20-second break between contractions.
They made a mental task to produce a neurophysiological activation of the brain areas related to the planning and execution of voluntary movement in a manner that resembles how the action is performed in reality in combination with real exercises.
其他名称:
  • Mental Task

研究衡量的是什么?

主要结果指标

结果测量
措施说明
大体时间
The hand grip strength
大体时间:Change in hand grip strength after 72 hours post-intervention
The hand grip strength in kilograms was assessed using a Jamar dynamometer with the standard protocols for hand grip training. The measurements with the Jamar dynamometer present excellent test-retest reliability (intraclass correlation coefficient [ICC] = 0.81-0.99) for preferred and nonpreferred hands in men and excellent test-retest reliability (ICC = 0.83-1.0) for preferred and nonpreferred hands in women. The Jamar Dynamometer presents excellent intra-rater reliability (ICC = 0.94 and 0.98) and excellent inter-rater reliability (ICC = 0.98 for right and left handgrip strength).
Change in hand grip strength after 72 hours post-intervention

次要结果测量

结果测量
措施说明
大体时间
Intramuscular oxygenation
大体时间:Change in Intramuscular oxygenation after 72 hours post-intervention
The intramuscular oxygenation of the extensor muscles of the forearm was measured with the Moxy Monitor System. The Moxy sensor is placed over the muscle bellies of the extensor carpi radialis longus and the extensor carpi radialis brevis and measures the intramuscular oxygenation through a continuous infrared light emission.
Change in Intramuscular oxygenation after 72 hours post-intervention
Electromyographic activity
大体时间:Change in Electromyographic activity after 72 hours post-intervention
The electromyographic activity of the extensor muscles of the forearm was measured on the bellies of the extensor carpi radialis longus and the extensor carpi radialis brevis, placing the two electrodes in each of the muscle bellies, and a fifth electrode over the olecranon, which acts as a grounding. The Physioplux system was used for muscle contraction capture.
Change in Electromyographic activity after 72 hours post-intervention

合作者和调查者

在这里您可以找到参与这项研究的人员和组织。

调查人员

  • 研究主任:Roy A La Touche, PT, PhD、Departamento de Fisioterapia. Centro Superior de Estudios Universitarios de La Salle. Universidad Autónoma de Madrid. Madrid. Spain

研究记录日期

这些日期跟踪向 ClinicalTrials.gov 提交研究记录和摘要结果的进度。研究记录和报告的结果由国家医学图书馆 (NLM) 审查,以确保它们在发布到公共网站之前符合特定的质量控制标准。

研究主要日期

学习开始 (实际的)

2017年6月1日

初级完成 (实际的)

2017年9月11日

研究完成 (实际的)

2017年10月13日

研究注册日期

首次提交

2017年10月20日

首先提交符合 QC 标准的

2017年10月24日

首次发布 (实际的)

2017年10月27日

研究记录更新

最后更新发布 (实际的)

2017年10月30日

上次提交的符合 QC 标准的更新

2017年10月26日

最后验证

2017年10月1日

更多信息

与本研究相关的术语

其他研究编号

  • uamadrid 3

计划个人参与者数据 (IPD)

计划共享个人参与者数据 (IPD)?

药物和器械信息、研究文件

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研究美国 FDA 监管的设备产品

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