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Dynamic population coding in primary visual cortex.

机译:初级视觉皮层中的动态种群编码。

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摘要

More than a century ago Ramon y Cajal pioneered the description of neural circuits. Currently, new techniques are being developed to streamline the characterization of entire neural circuits. Even if this 'connectome' approach is successful, it will represent only a static description of neural circuits. Thus, a fundamental question in neuroscience is to understand how information is dynamically represented by neural populations. In this thesis, I studied two main aspects of dynamical population codes.;First, I studied how the exposure or adaptation, for a fraction of a second to oriented gratings dynamically changes the population response of primary visual cortex neurons. The effects of adaptation to oriented gratings have been extensively explored in psychophysical and electrophysiological experiments. However, whether rapid adaptation might induce a change in the primary visual cortex's functional connectivity to dynamically impact the population coding accuracy is currently unknown. To address this issue, we performed multi-electrode recordings in primary visual cortex, where adaptation has been previously shown to induce changes in the selectivity and response amplitude of individual neurons. We found that adaptation improves the population coding accuracy. The improvement was more prominent for iso- and orthogonal orientation adaptation, consistent with previously reported psychophysical experiments. We propose that selective decorrelation is a metabolically inexpensive mechanism that the visual system employs to dynamically adapt the neural responses to the statistics of the input stimuli to improve coding efficiency.;Second, I investigated how ongoing activity modulates orientation coding in single neurons, neural populations and behavior. Cortical networks are never silent even in the absence of external stimulation. The ongoing activity can account for up to 80% of the metabolic energy consumed by the brain. Thus, a fundamental question is to understand the functional role of ongoing activity and its impact on neural computations. I studied how the orientation coding by individual neurons and cell populations in primary visual cortex depend on the spontaneous activity before stimulus presentation. We hypothesized that since the ongoing activity of nearby neurons is strongly correlated, it would influence the ability of the entire population of orientation-selective cells to process orientation depending on the prestimulus spontaneous state. Our findings demonstrate that ongoing activity dynamically filters incoming stimuli to shape the accuracy of orientation coding by individual neurons and cell populations and this interaction affects behavioral performance. In summary, this thesis is a contribution to the study of how dynamic internal states such as rapid adaptation and ongoing activity modulate the population code accuracy.
机译:一个多世纪以前,拉蒙·卡哈尔(Ramon y Cajal)率先描述了神经回路。当前,正在开发新技术以简化整个神经回路的表征。即使这种“连接组”方法成功,它也仅表示神经回路的静态描述。因此,神经科学中的一个基本问题是了解神经群体如何动态地表示信息。在这篇论文中,我研究了动态种群代码的两个主要方面。首先,我研究了暴露于或适应于几分之一秒的定向光栅如何动态改变初级视觉皮层神经元的种群反应。在心理物理和电生理实验中已广泛探索了适应定向光栅的效果。然而,目前尚不清楚快速适应是否会导致初级视觉皮层的功能连接性变化以动态影响总体编码精度。为了解决这个问题,我们在原发性视觉皮层中进行了多电极记录,先前已证明适应性可以诱导单个神经元的选择性和响应幅度的变化。我们发现自适应可以提高总体编码的准确性。对于等向和正交方向适应,这种改进更为突出,与先前报道的心理物理实验一致。我们提出选择性去相关是一种代谢廉价的机制,视觉系统可利用该机制动态地使神经反应适应输入刺激的统计数据,从而提高编码效率。第二,我研究了正在进行的活动如何调节单个神经元,神经群体中的方向编码和行为。即使没有外部刺激,皮质网络也永远不会保持沉默。正在进行的活动最多可占大脑消耗的代谢能的80%。因此,一个基本问题是要了解正在进行的活动的功能作用及其对神经计算的影响。我研究了初级视觉皮层中单个神经元和细胞群的定向编码如何取决于刺激呈递之前的自发活动。我们假设,由于附近神经元的正在进行的活动是高度相关的,因此它将影响整个方向选择细胞群体的能力,该能力取决于刺激前的自发状态。我们的发现表明,进行中的活动会动态过滤传入的刺激,以塑造单个神经元和细胞群体定向编码的准确性,并且这种相互作用会影响行为表现。总而言之,本论文为研究动态内部状态(例如快速适应和持续活动)如何调节人口代码准确性做出了贡献。

著录项

  • 作者

    Gutnisky, Diego.;

  • 作者单位

    The University of Texas Graduate School of Biomedical Sciences at Houston.;

  • 授予单位 The University of Texas Graduate School of Biomedical Sciences at Houston.;
  • 学科 Biology Neurobiology.;Psychology Behavioral Sciences.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 227 p.
  • 总页数 227
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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