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Cortical circuits, learning, and behavior: Local reorganization of synaptic partners and the expansion of the motor repertoire.

机译:皮质回路,学习和行为:突触伙伴的局部重组和运动能力的扩展。

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摘要

Appropriate patterning of synaptic circuitry is vital for proper central nervous system function, and neurons retain a significant capacity for synaptic reorganization throughout life. To better understand how synaptic alterations mediate the development and refinement of complex behavior, this dissertation investigates the neurophysiological and circuit-level changes accompanying 1) the emergence of fine motor behavior during development, and 2) motor skill learning in adulthood.;We developed methods for identifying individual neurons of the motor cortex that are associated with specific motor domains to enable study of synaptic modifications among neural subpopulations associated with discrete behaviors. This was accomplished by labeling individual corticospinal motor neurons of layer V motor cortex that are associated with either proximal or distal forelimb control, in the same animal.;By way of thousands of paired whole-cell recordings, we find that the emergence of fine motor behavior is associated with a developmental switch in connection strategy and intrinsic cell properties, which fundamentally alter the manner by which excitation is spread within the corticospinal system in rats during development. These changes parallel the emergence of fine motor behavior, and may indeed be necessary for its expression. Motor skill learning in the adult rat is next discussed, where we find that task-related corticospinal neurons specifically increase excitatory interconnectivity, inhibitory input, and intrinsic excitability following skilled motor training. Neighboring corticospinal neurons not associated with the motor task, on the other hand, exhibit no changes in connectivity or neurophysiology. Such population-specific changes may enable local encoding of motor behavior, thus automating skilled motor execution and freeing up higher-order cognitive processes, such as attention, for other tasks. Furthermore, such learning-related changes are likely a ubiquitous feature of the neocortex and underlie numerous forms of cortical learning. In total, these findings identify, for the first time, neuronal properties of connectivity and synapse function that characterize the cortical underpinnings of complex behavior and the learning engram.
机译:适当的突触电路模式对于适当的中枢神经系统功能至关重要,并且神经元在整个生命中都保留了重要的突触重组能力。为了更好地理解突触改变如何介导复杂行为的发展和完善,本文研究了伴随以下神经生理和电路水平变化:1)在发育过程中出现精细运动行为,以及2)成年后的运动技能学习。用于识别与特定运动域相关的运动皮层的单个神经元,从而能够研究与离散行为相关的神经亚群之间的突触修饰。这是通过在同一只动物中标记与前肢近端或远端控制相关的第V层运动皮层的单个皮质脊髓运动神经元来完成的;通过成千上万对全细胞记录的配对,我们发现精细运动的出现行为与连接策略和固有细胞特性的发育转换有关,这从根本上改变了在发育过程中兴奋在大鼠皮质脊髓系统内传播的方式。这些变化与精细运动行为的出现平行,并且可能确实需要表现出来。接下来讨论成年大鼠的运动技能学习,我们发现,与任务相关的皮质脊髓神经元在熟练的运动训练后能特异性地增加兴奋性相互联系,抑制性输入和内在兴奋性。另一方面,与运动任务无关的邻近皮质脊髓神经元在连接性或神经生理学上没有变化。这种特定于人群的变化可以实现对运动行为的本地编码,从而使熟练的运动执行自动化,并释放出更高阶的认知过程(例如注意力)用于其他任务。此外,这种与学习有关的变化可能是新皮层普遍存在的特征,并且是多种形式的皮层学习的基础。总的来说,这些发现首次确定了连接性和突触功能的神经元特性,这些特性表征了复杂行为和学习字母的皮质基础。

著录项

  • 作者

    Biane, Jeremy Stanford.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Biology General.;Psychology Physiological.;Biology Neuroscience.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 190 p.
  • 总页数 190
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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