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Presynaptic supervision of cortical spine dynamics in motor learning.运动学习中皮质脊柱动力学的突触前监督。
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运动皮层中跨细胞类型和尺度的学习和控制。

Learning and Control in Motor Cortex across Cell Types and Scales.

机构信息

Department of Biomedical Engineering, Boston University, Boston, Massachusetts 02215

Center for Systems Neuroscience, Boston University, Boston, Massachusetts 02215.

出版信息

J Neurosci. 2024 Oct 2;44(40):e1233242024. doi: 10.1523/JNEUROSCI.1233-24.2024.

DOI:10.1523/JNEUROSCI.1233-24.2024
PMID:39358022
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11459264/
Abstract

The motor cortex is essential for controlling the flexible movements underlying complex behaviors. Behavioral flexibility involves the ability to integrate and refine new movements, thereby expanding an animal's repertoire. This review discusses recent strides in motor learning mechanisms across spatial and temporal scales, describing how neural networks are remodeled at the level of synapses, cell types, and circuits and across time as animals' learn new skills. It highlights how changes at each scale contribute to the evolving structure and function of neural circuits that accompanies the expansion and refinement of motor skills. We review new findings highlighted by advanced imaging techniques that have opened new vistas in optical physiology and neuroanatomy, revealing the complexity and adaptability of motor cortical circuits, crucial for learning and control. At the structural level, we explore the dynamic regulation of dendritic spines mediating corticocortical and thalamocortical inputs to the motor cortex. We delve into the role of perisynaptic astrocyte processes in maintaining synaptic stability during learning. We also examine the functional diversity among pyramidal neuron subtypes, their dendritic computations and unique contributions to single cell and network function. Further, we highlight how cortical activation is characterized by increased consistency and reduced strength as new movements are learned and how external inputs contribute to these changes. Finally, we consider the motor cortex's necessity as movements unfold over long time scales. These insights will continue to drive new research directions, enhancing our understanding of motor cortical circuit transformations that underpin behavioral changes expressed throughout an animal's life.

摘要

运动皮层对于控制复杂行为所必需的灵活运动至关重要。行为灵活性涉及整合和完善新运动的能力,从而扩展动物的行为范围。本综述讨论了跨空间和时间尺度的运动学习机制的最新进展,描述了神经网络如何在突触、细胞类型和回路水平以及随着动物学习新技能的时间推移而重塑,以及在动物学习新技能的过程中。它强调了每个尺度的变化如何有助于伴随运动技能的扩展和完善而不断发展的神经回路的结构和功能。我们回顾了高级成像技术突显的新发现,这些发现为光学生理学和神经解剖学开辟了新的视野,揭示了运动皮层回路的复杂性和适应性,这对学习和控制至关重要。在结构水平上,我们探索了介导皮质内和皮质下传入到运动皮层的树突棘的动态调节。我们深入研究了突触周星形胶质细胞过程在学习过程中维持突触稳定性的作用。我们还研究了锥体神经元亚型的功能多样性,它们的树突计算以及对单细胞和网络功能的独特贡献。此外,我们强调了随着新运动的学习,皮层激活如何以增加的一致性和降低的强度为特征,以及外部输入如何促成这些变化。最后,我们考虑了运动皮层在长时间尺度上运动展开时的必要性。这些见解将继续推动新的研究方向,增强我们对运动皮层回路转化的理解,这些转化是动物一生中表达的行为变化的基础。