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Processing of mechanical information in the rat whisker-trigeminal system.

机译:大鼠晶须-三叉神经系统中机械信息的处理。

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摘要

The rat vibrissal (whisker) system provides an excellent model to study the neural processing of sensorimotor information. In particular, the rat moves its whiskers in order to sense, i.e. movement is used for sensing. The system has been investigated intensely, including whisking behavior, neuro-anatomical pathways, developmental biology and physiology.;A limitation of past investigations has been that the mechanics of whisking has not been quantified rigorously in physical terms. In particular, there has not been a systematic attempt to quantify the relationship between whisking behavior, whisker mechanics induced by whisking behavior and the neural response to the mechanics. In this thesis, I build on some recently published work, by applying concepts from information theory to quantify the relationship between movement and sensory variables and the associated neural response. I present evidence that the responses of neurons at the first stage of the vibrissal pathway can be formulated as representing the mechanical state of the whisker. This provides a foundation for investigators in this field to develop theories of higher order information processing and perception.;Vibrissal information processing is divided into several stages. The first stage, or the trigeminal ganglion, projects to the trigeminal nuclear complex. The spinal trigeminal nucleus itnerpolaris performs important integrative functions, which are currently not well understood. I describe novel experimental and analytical methods to develop a systems level understanding of this question. My data indicates that stimulation of the entire whisker array is encoded robustly in the responses of neurons, as measured by single unit, multi-unit and local field potential. Further, this response is strongly modulated by the speed and direction of whisker array traversal.;In summary, this thesis describes two important contributions to the field of neurophysiology and mathematical modeling of neural responses in the rat whisker-trigeminal sensory-motor system. The first proposes a novel scheme for representation of mechanical information at the first stage of the system and a novel experimental scheme to probe the integration of mechanical information at the second stage of the system.
机译:大鼠震颤(晶须)系统为研究感觉运动信息的神经处理提供了一个极好的模型。特别地,大鼠移动其晶须以便感测,即,运动用于感测。已经对该系统进行了深入的研究,包括搅拌行为,神经解剖学途径,发育生物学和生理学。过去研究的局限性在于,搅拌的机理尚未严格按照物理术语进行量化。特别地,还没有系统的尝试来量化搅拌行为,由搅拌行为引起的晶须力学与对该力学的神经反应之间的关系。在这篇论文中,我通过应用信息论中的概念来量化运动和感觉变量与相关神经反应之间的关系,以此为基础,发表了一些最新发表的著作。我提供的证据表明,在振动通道的第一阶段神经元的反应可以表达为晶须的机械状态。这为该领域的研究者发展高阶信息处理和感知理论提供了基础。振动信息处理分为几个阶段。第一阶段,即三叉神经节,投射到三叉神经核复合体。脊柱三叉神经核具有重要的整合功能,目前尚不清楚。我描述了新颖的实验和分析方法,以发展对该问题的系统层次的理解。我的数据表明,对整个晶须阵列的刺激在神经元的响应中得到了稳健的编码,如通过单个单位,多个单位和局部场电势所测量的。此外,该响应受到晶须阵列遍历的速度和方向的强烈调节。总之,本文描述了对大鼠晶须-三叉神经感觉运动系统神经生理学和神经反应数学建模的两个重要贡献。第一个提出了一种在系统的第一阶段表示机械信息的新颖方案,并提出了一种新的实验方案来在系统的第二阶段探测机械信息的集成。

著录项

  • 作者

    Kaloti, Aniket Sadanand.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Biology Neurobiology.;Biophysics Biomechanics.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 115 p.
  • 总页数 115
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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