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本文引用的文献

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Control of species-dependent cortico-motoneuronal connections underlying manual dexterity.手部灵活性背后物种依赖性皮质-运动神经元连接的控制。
Science. 2017 Jul 28;357(6349):400-404. doi: 10.1126/science.aan3721.
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A light- and calcium-gated transcription factor for imaging and manipulating activated neurons.一种用于成像和操纵激活神经元的光控和钙控转录因子。
Nat Biotechnol. 2017 Sep;35(9):864-871. doi: 10.1038/nbt.3909. Epub 2017 Jun 26.
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Role of primary motor cortex in the control of manual dexterity assessed via sequential bilateral lesion in the adult macaque monkey: A case study.通过成年猕猴双侧顺序性损伤评估初级运动皮层在手灵巧性控制中的作用:个案研究。
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Parvalbumin-expressing interneurons coordinate hippocampal network dynamics required for memory consolidation.表达钙结合蛋白的中间神经元协调海马体网络动态,这是记忆巩固所必需的。
Nat Commun. 2017 Apr 6;8:15039. doi: 10.1038/ncomms15039.
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REM sleep selectively prunes and maintains new synapses in development and learning.快速眼动睡眠在发育和学习过程中选择性地修剪并维持新的突触。
Nat Neurosci. 2017 Mar;20(3):427-437. doi: 10.1038/nn.4479. Epub 2017 Jan 16.
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Circuit Mechanisms of Sensorimotor Learning.感觉运动学习的神经回路机制
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A robust activity marking system for exploring active neuronal ensembles.一种用于探索活跃神经元集群的强大活动标记系统。
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A Corticocortical Circuit Directly Links Retrosplenial Cortex to M2 in the Mouse.一条皮质-皮质回路直接将小鼠的 retrosplenial 皮质与 M2 相连。
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HCN channels segregate stimulation-evoked movement responses in neocortex and allow for coordinated forelimb movements in rodents.超极化激活的环核苷酸门控(HCN)通道在新皮层中分离刺激诱发的运动反应,并使啮齿动物的前肢运动得以协调。
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运动技能学习过程中运动皮层的回路变化。

Circuit changes in motor cortex during motor skill learning.

机构信息

Department of Neurobiology, University of Pittsburgh School of Medicine, Pittsburgh, PA, United States.

出版信息

Neuroscience. 2018 Jan 1;368:283-297. doi: 10.1016/j.neuroscience.2017.09.010. Epub 2017 Sep 14.

DOI:10.1016/j.neuroscience.2017.09.010
PMID:28918262
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5762136/
Abstract

Motor cortex is important for motor skill learning, particularly the dexterous skills necessary for our favorite sports and careers. We are especially interested in understanding how plasticity in motor cortex contributes to skill learning. Although human studies have been helpful in understanding the importance of motor cortex in learning skilled tasks, animal models are necessary for achieving a detailed understanding of the circuitry underlying these behaviors and the changes that occur during training. We review data from these models to try to identify sites of plasticity in motor cortex, focusing on rodents asa model system. Rodent neocortex contains well-differentiated motor and sensory regions, as well as neurons expressing similar genetic markers to many of the same circuit components in human cortex. Furthermore, rodents have circuit mapping tools for labeling, targeting, and manipulating these cell types as circuit nodes. Crucially, the projection from rodent primary somatosensory cortex to primary motor cortex is a well-studied corticocortical projection and a model of sensorimotor integration. We first summarize some of the descending pathways involved in making dexterous movements, including reaching. We then describe local and long-range circuitry in mouse motor cortex, summarizing structural and functional changes associated with motor skill acquisition. We then address which specific connections might be responsible for plasticity. For insight into the range of plasticity mechanisms employed by cortex, we review plasticity in sensory systems. The similarities and differences between motor cortex plasticity and critical periods of plasticity in sensory systems are discussed.

摘要

运动皮层对于运动技能的学习很重要,尤其是对我们最喜欢的运动和职业所需的灵巧技能。我们特别感兴趣的是了解运动皮层的可塑性如何促进技能学习。虽然人类研究对于理解运动皮层在学习熟练任务中的重要性很有帮助,但动物模型对于深入了解这些行为背后的电路以及在训练过程中发生的变化是必要的。我们回顾了这些模型中的数据,试图确定运动皮层中的可塑性部位,重点关注啮齿动物作为模型系统。啮齿动物新皮层包含分化良好的运动和感觉区域,以及表达与人类皮层中许多相同电路组件相似遗传标记的神经元。此外,啮齿动物具有用于标记、靶向和操纵这些细胞类型作为电路节点的电路映射工具。至关重要的是,来自啮齿动物初级体感皮层到初级运动皮层的投射是一个经过充分研究的皮质间投射,也是感觉运动整合的模型。我们首先总结了一些参与灵巧运动的下行通路,包括伸手。然后,我们描述了小鼠运动皮层中的局部和远程电路,总结了与运动技能获得相关的结构和功能变化。然后,我们解决了哪些特定连接可能负责可塑性。为了深入了解皮层所采用的可塑性机制范围,我们回顾了感觉系统中的可塑性。讨论了运动皮层可塑性和感觉系统关键期可塑性之间的异同。