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Offline Optimization of the Relative Timing of Movements in a Sequence Is Blocked by Retroactive Behavioral Interference

机译:追溯运动干扰阻碍了序列中相对运动时间的离线优化

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摘要

Acquisition of motor skills often involves the concatenation of single movements into sequences. Along the course of learning, sequential performance becomes progressively faster and smoother, presumably by optimization of both motor planning and motor execution. Following its encoding during training, “how-to” memory undergoes consolidation, reflecting transformations in performance and its neurobiological underpinnings over time. This offline post-training memory process is characterized by two phenomena: reduced sensitivity to interference and the emergence of delayed, typically overnight, gains in performance. Here, using a training protocol that effectively induces motor sequence memory consolidation, we tested temporal and kinematic parameters of performance within (online) and between (offline) sessions, and their sensitivity to retroactive interference. One group learned a given finger-to-thumb opposition sequence (FOS), and showed robust delayed (consolidation) gains in the number of correct sequences performed at 24 h. A second group learned an additional (interference) FOS shortly after the first and did not show delayed gains. Reduction of touch times and inter-movement intervals significantly contributed to the overall offline improvement of performance overnight. However, only the offline inter-movement interval shortening was selectively blocked by the interference experience. Velocity and amplitude, comprising movement time, also significantly changed across the consolidation period but were interference –insensitive. Moreover, they paradoxically canceled out each other. Current results suggest that shifts in the representation of the trained sequence are subserved by multiple processes: from distinct changes in kinematic characteristics of individual finger movements to high-level, temporal reorganization of the movements as a unit. Each of these processes has a distinct time course and a specific susceptibility to retroactive interference. This multiple-component view may bridge the gap in understanding the link between the behavioral changes, which define online and offline learning, and the biological mechanisms that support those changes.
机译:掌握运动技能通常涉及将单个动作串联在一起。在学习的过程中,大概可以通过优化运动计划和运动执行来使顺序性能逐渐变得更快,更流畅。在训练过程中进行编码之后,“操作方法”记忆会进行合并,反映了性能的变化及其随时间的神经生物学基础。这种离线的训练后存储过程的特征在于两种现象:对干扰的敏感性降低以及性能的延迟(通常是一夜之间)的出现。在这里,使用有效诱导运动序列记忆整合的训练协议,我们测试了(在线)会话之间和(离线)会话之间性能的时间和运动学参数,以及它们对追溯干扰的敏感性。一组学习了给定的手指到拇指的对立序列(FOS),并显示了在24小时执行的正确序列数量的强劲延迟(合并)增益。第二组在第一组之后不久又学习了另一个(干扰)FOS,并且没有表现出延迟的收益。减少触摸时间和两次移动间隔显着促进了一整夜整体离线性能的改善。但是,干扰体验仅选择性地阻止了脱机运动间隔的缩短。速度和振幅(包括移动时间)在合并期间也发生了显着变化,但对干扰不敏感。而且,他们自相矛盾地互相抵消了。当前的结果表明,训练序列表示的变化是由多个过程来维持的:从单个手指运动的运动学特征的明显变化到运动整体的高水平,时间重组。这些过程中的每一个都有不同的时间过程,并且对追溯干扰具有特定的敏感性。这种多成分的观点可能弥合了理解行为变化之间的联系的差距,这些行为变化定义了在线和离线学习,以及支持这些变化的生物学机制。

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