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Planar cell polarity pathway and axon guidance in the developing spinal cord.

机译:脊髓发育中的平面细胞极性途径和轴突引导。

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摘要

The ability of the mammalian central nervous system to interpret the environment accurately, integrate information efficiently, and generate appropriate responses depends on the precise wiring and organization of billions of neurons into functional networks. The establishment of neural circuits to enable the eventual flow of sensory information requires that axons navigate across vast (on a cellular scale) distances. For somatosensory neurons, guidance takes place during development when axons must grow to the brain via a series of intermediate targets, each step of which involves the detection and response to numerous extracellular cues. Therefore, to develop a comprehensive understanding of how neurons form appropriate connections requires that axonal responses to these molecular guidance cues be clearly defined.;This dissertation presents studies of axon guidance in a model cellular system, the somatosensory commissural neurons of the spinal cord. I have characterized the role of Wnt-Frizzled signaling in these neurons, and found that the non-canonical Wnt-Fzd signaling, known as the Planar Cell Polarity (PCP) pathway, is fundamental to commissural axon guidance. Further, by analysis of animal models of PCP dysfunction, Celsr3 null and Vangl2 mutant mice, I show that PCP is required for anterior guidance of commissural axons toward the brain. Equally important, I describe the mechanism by which the PCP pathway mediates axon growth decisions through the use of primary spinal neuron and eukaryotic cell cultures and biochemical techniques. I present evidence to show that modifications of PCP surface receptors, Fzd3 and Vangl2, at the cell membrane are critical to PCP signaling and constitute a spatio-temporal response to Wnt molecules secreted from the ventral spinal cord. Together, these data reveal a novel role for the PCP pathway in axon guidance. It is hoped that the results of these studies will provide a more general model for the role of membrane receptor modifications in the establishment of neuronal circuitry.
机译:哺乳动物中枢神经系统准确解释环境,有效整合信息并产生适当响应的能力取决于数十亿个神经元向功能网络的精确布线和组织。建立神经回路以实现最终的感觉信息流动,需要轴突在广阔的距离上(在细胞范围内)导航。对于体感神经元,在发育过程中进行指导,此时轴突必须通过一系列中间靶点生长到大脑,其每个步骤都涉及对多种细胞外信号的检测和响应。因此,要想全面了解神经元如何形成适当的连接,就必须明确定义对这些分子引导线索的轴突响应。本论文介绍了模型细胞系统中的轴突引导研究,即脊髓的体感合连神经元。我已经表征了Wnt-Frizzled信号在这些神经元中的作用,并发现非经典Wnt-Fzd信号(称为平面细胞极性(PCP)途径)是连合轴突引导的基础。此外,通过对PCP功能障碍,Celsr3 null和Vangl2突变小鼠的动物模型的分析,我表明PCP是连合轴突向大脑前导所必需的。同样重要的是,我描述了PCP途径通过使用初级脊髓神经元和真核细胞培养物以及生化技术介导轴突生长决定的机制。我目前的证据表明,在细胞膜上修饰PCP表面受体Fzd3和Vangl2对PCP信号传导至关重要,并构成了对从腹脊髓分泌的Wnt分子的时空响应。这些数据一起揭示了PCP途径在轴突引导中的新作用。希望这些研究的结果将为膜受体修饰在神经元回路建立中的作用提供更一般的模型。

著录项

  • 作者

    Shafer, Jeong Deok Beth.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Neurobiology.;Developmental biology.;Cellular biology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 121 p.
  • 总页数 121
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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