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Motor Cortical Networks for Skilled Movements Have DynamicProperties That Are Related to Accurate Reaching

机译:运动皮层神经网络具有动态功能与准确到达相关的属性

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摘要

Neurons in the Primary Motor Cortex (MI) are known to form functional ensembles with one another in order to produce voluntary movement. Neural network changes during skill learning are thought to be involved in improved fluency and accuracy of motor tasks. Unforced errors during skilled tasks provide an avenue to study network connections related to motor learning. In order to investigate network activity in MI, microwires were implanted in the MI of cats trained to perform a reaching task. Spike trains from eight groups of simultaneously recorded cells (95 neurons in total) were acquired. A point process generalized linear model (GLM) was developed to assess simultaneously recorded cells for functional connectivity during reaching attempts where unforced errors or no errors were made. Whilst the same groups of neurons were often functionally connected regardless of trial success, functional connectivity between neurons was significantly different at fine time scales when the outcome of task performance changed. Furthermore, connections were shown to be significantly more robust across multiple latencies during successful trials of task performance. The results of this study indicate that reach-related neurons in MI form dynamic spiking dependencies whose temporal features are highly sensitive to unforced movement errors.
机译:众所周知,初级运动皮层(MI)中的神经元会相互形成功能性合奏,以产生自发运动。技能学习过程中的神经网络变化被认为与提高运动任务的流畅性和准确性有关。熟练任务期间的非强制性错误为研究与运动学习相关的网络连接提供了一种途径。为了调查MI中的网络活动,将微丝植入经过训练以执行伸手任务的猫的MI中。从八组同时记录的细胞(总共95个神经元)中获得了穗状花序。开发了点过程广义线性模型(GLM),以评估在尝试进行无强制错误或无错误的尝试期间,同时记录的单元的功能连接性。尽管无论试验成功与否,同一组神经元通常在功能上都相互连接,但是当任务执行的结果发生变化时,神经元之间的功能连接在很短的时间尺度上就明显不同。此外,在成功进行任务性能测试期间,显示出在多个延迟之间的连接更加强大。这项研究的结果表明,心肌梗死中与触及有关的神经元形成动态的尖峰依赖性,其时间特征对非强迫运动误差高度敏感。

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