左侧初级运动皮层和小脑蚓部是双臂顺序学习的关键枢纽。

IF 1.7 4区 医学 Q4 NEUROSCIENCES
Yuki H Hamano, Sho K Sugawara, Tetsuya Yamamoto, Masaki Fukunaga, Norihiro Sadato
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引用次数: 0

摘要

我们进行了一项 fMRI 研究,以探究双臂协调的神经基础,双臂协调是上肢控制的基础。考虑到双臂运动是双臂和弦形成和序列控制的结合,我们假设具有和弦形成和序列学习效果的区域在双臂协调中至关重要。我们采用序列反应时间任务(SRTT)来验证这一假设。35名健康的右利手志愿者练习了视觉提示的双臂SRTT,包括随机运动或重复固定序列的 "镜像 "模式和更复杂的 "平行 "模式,以分别描述双臂姿势控制和弦形成的神经基底和序列控制的神经基底。随机运动的反应时间(RT)持续下降,表明学习了双臂和弦的形成。顺序条件下的反应时间比随机条件下的反应时间下降得更快,这证实了顺序学习。与难度较低的镜像随机条件相比,平行随机条件在左侧 M1 和小脑蚓部引起的与学习相关的任务激活下降更为显著。与镜像随机条件相比,在平行随机条件下,左侧M1与前扣带回皮层的功能连接表现出与学习相关的增强。因此,左侧M1、前扣带回皮层和小脑蚓部与双臂和弦形成的学习有关。左侧M1和小脑蚓部也显示出序列特异性学习相关的活动增量,在平行模式下比镜像模式下更为突出。因此,左侧M1和小脑蚓部在双臂运动学习网络中至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The left primary motor cortex and cerebellar vermis are critical hubs in bimanual sequential learning.

We conducted an fMRI study to investigate the neural basis of bimanual coordination, which is fundamental to upper extremity control. Considering bimanual movement as a combination of bimanual chord formation and sequence control, we hypothesized that the areas with the learning effect of both chord formation and sequence learning are critical in bimanual coordination. We adopted the serial reaction time task (SRTT) to test this hypothesis. Thirty-five healthy right-handed volunteers practiced visually cued bimanual SRTT, including the "mirror" and more complex "parallel" modes of random movements or repeating fixed sequences to separately depict the neural substrates of bimanual posture control for chord formation and those of sequence. Random movements' reaction time (RT) continuously declined, indicating learning of bimanual chord formation. The RT in the sequential condition declined more rapidly than in the random condition, confirming sequence learning. The parallel random conditions evoked a more prominent learning-related decrease of task-related activation in the left M1 and cerebellar vermis than the less difficult mirror random conditions. The left M1 showed learning-related enhancement of functional connectivity with the anterior cingulate cortex during the parallel random conditions compared with the mirror random conditions. Thus, the left M1, anterior cingulate cortex, and cerebellar vermis are related to learning bimanual chord formation. The left M1 and cerebellar vermis also showed sequence-specific learning-related activity increments more prominent in the parallel mode than in the mirror mode. Thus, the left M1 and cerebellar vermis are critical in the bimanual motor learning network.

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来源期刊
CiteScore
3.60
自引率
5.00%
发文量
228
审稿时长
1 months
期刊介绍: Founded in 1966, Experimental Brain Research publishes original contributions on many aspects of experimental research of the central and peripheral nervous system. The focus is on molecular, physiology, behavior, neurochemistry, developmental, cellular and molecular neurobiology, and experimental pathology relevant to general problems of cerebral function. The journal publishes original papers, reviews, and mini-reviews.
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