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Development of hippocampal mossy fiber connectivity and its regulation by NeuroD2 mediated transcription.

机译:海马苔藓纤维连接性的发展及其由NeuroD2介导的转录调控。

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摘要

The assembly of neural circuits in the developing brain is critical for the establishment of nervous system function. Investigation of this process is important to understand how connectivity changes across development, maturity and in diseases states. My thesis has applied techniques ranging from molecular biology to light and electron microscopy, specifically to study the assembly of the hippocampal mossy fiber synapse. The mossy fiber synapse exhibits unique structural and functional properties, making it an ideal system to study the differentiation of synapse specific properties. To investigate the structural maturation of the mossy fiber synapse at a level not previously possible, I have utilized the novel technique of serial blockface scanning electron microscopy. This technique allows the rapid acquisition of large volumes of perfectly aligned ultrastructural data for the three-dimensional reconstruction of local mossy fiber microcircuitry. Using volumes obtained from developing stratum lucidum neuropil, I have demonstrated (1) the range of pre and post-synaptic structural diversity at this synapse, (2) developmental refinement of structural features relevant to connectivity and (3) the relationship between pre and post-synaptic elements during the establishment of mature patterns of connectivity. The assembly of mossy fiber circuitry occurs entirely during postnatal development, a time during which both genetically determined and activity-dependent processes operate. To understand the molecular mechanisms underlying mossy fiber synapse maturation, I have investigated the role of the calcium-activated transcription factor NeuroD2 in this process. Using NeuroD2 null mice and in vivo single cell knockdown approaches, I find that (1) Development of mossy fiber synapse structure and function depends critically on NeuroD2 mediated transcription, (2) NeuroD2 acts post-synaptically to regulate the density of post-synaptic structure at the mossy fiber synapse in vivo, (3) NeuroD2 regulates the expression of PSD95 in the developing hippocampus and (4) Knockdown of PSD95 in vivo recapitulates the effect of NeuroD2 loss of function. These experiments indicate that NeuroD2 regulates a transcriptional program that is critical for the process of mossy fiber synapse maturation identified using serial blockface scanning electron microscopy.
机译:发育中的大脑中神经回路的组装对于神经系统功能的建立至关重要。对这一过程进行调查对于了解连通性如何在发育,成熟度以及疾病状态下变化非常重要。我的论文应用了从分子生物学到光电子显微镜的各种技术,特别是研究海马苔藓纤维突触的组装。苔藓纤维突触具有独特的结构和功能特性,使其成为研究突触特异性特性差异的理想系统。为了研究苔藓纤维突触在以前不可能达到的水平上的结构成熟,我已经利用了连续表面扫描电子显微镜的新技术。这项技术可以快速获取大量完全对齐的超微结构数据,以便对本地生苔纤维微电路进行三维重建。使用从发育中的透明层神经纤维获得的体积,我证明了(1)在此突触中突触前和突触后结构多样性的范围,(2)与连通性相关的结构特征的发育精化,以及(3)突触前后的关系-在成熟的连接模式建立过程中的突触元件。苔藓纤维电路的组装完全发生在出生后的发育过程中,在此期间,遗传决定的过程和活动依赖性过程都在起作用。为了了解长满苔藓的纤维突触成熟的分子机制,我研究了钙激活的转录因子NeuroD2在此过程中的作用。使用NeuroD2 null小鼠和体内单细胞敲低方法,我发现(1)苔藓纤维突触结构和功能的发育关键取决于NeuroD2介导的转录,(2)NeuroD2在突触后起作用以调节突触后结构的密度。在体内长满苔藓的纤维突触处,(3)NeuroD2调节发育中的海马体中PSD95的表达,(4)体内敲除PSD95可概括NeuroD2功能丧失的作用。这些实验表明NeuroD2调节转录程序,该程序对于使用串行表面扫描电子显微镜识别的苔藓纤维突触成熟过程至关重要。

著录项

  • 作者

    Wilke, Scott Allen.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Biology Neurobiology.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 162 p.
  • 总页数 162
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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