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Granule cell progenitors and their role in cerebellar development: Experimental studies of the math1 null mutant mouse.

机译:颗粒细胞祖细胞及其在小脑发育中的作用:math1 null突变小鼠的实验研究。

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摘要

The rostral rhombic lip of the cerebellum gives rise to the most abundant neuron in the adult CNS, the granule cell. Granule cell precursors undergo a well-characterized temporo-spatial pattern of development that is dependent on both the appropriate expression and function of intrinsic and extrinsic factors (Hatten and Heintz, 1995). Genetic mutations that disrupt this orderly developmental progression result in aberrant cerebellar histogenesis (Goldowitz and Hamre, 1998).In the following studies I examine cerebellar development when the earliest known marker of the granule cell lineage, Math1, is disrupted in both the math1 null and math1 null chimeric cerebellum. I find that granule cell precursors are never generated in the math1 null mutant or chimeric cerebellum, indicating that Math1 has a vital cell intrinsic role in the cerebellar granule cell lineage. In the math1 null chimeric cerebellum I find gaps in the external germinal layer (EGL). The inability of wildtype granule cells to migrate into these regions provides evidence that the tangential migration of granule cell precursors in the formation of the EGL is an active process. I find that in both the complete or partial disruption of the EGL foliation is affected, demonstrating the importance of the EGL in cerebellar foliation. In addition, I find that the complete or partial disruption of the EGL results in Purkinje cell ectopia deep to the cerebellar cortex and the failure of Purkinje cells to align into a single layer, demonstrating the importance of the EGL in Purkinje cell positioning. Finally, I find that 70% of the total Purkinje cell population migrates successfully in the complete absence of the EGL. This finding indicates that the Reelin signal required for the migration of Purkinje cells to the Purkinje cell plate is not solely derived from the EGL, but likely involves signaling from the cells of the nuclear transitory zone.
机译:小脑的菱形菱形唇产生了成年中枢神经系统中最丰富的神经元,即颗粒细胞。颗粒细胞的前体经历了特征明确的时空发展模式,这取决于内在和外在因素的适当表达和功能(Hatten and Heintz,1995)。破坏这种有序发展进程的遗传突变会导致小脑的组织发生异常(Goldowitz and Hamre,1998)。在以下研究中,当最早的颗粒细胞谱系标记物Math1在math1 null和math1中都被破坏时,我研究了小脑发育。 math1空的嵌合小脑。我发现在math1 null突变体或嵌合小脑中从未产生颗粒细胞前体,这表明Math1在小脑颗粒细胞谱系中具有至关重要的细胞内在作用。在math1 null嵌合小脑中,我发现外部生发层(EGL)有间隙。野生型颗粒细胞不能迁移到这些区域提供了证据,证明在EGL形成过程中颗粒细胞前体的切向迁移是一个活跃的过程。我发现,无论是完全破坏还是部分破坏,EGL的形成均受到影响,这说明了EGL在小脑形成中的重要性。此外,我发现EGL的全部或部分破坏会导致小脑皮层深处的Purkinje细胞外翻,以及Purkinje细胞无法排列成单层,这证明了EGL在Purkinje细胞定位中的重要性。最后,我发现在完全没有EGL的情况下,总Purkinje细胞群体中有70%成功迁移。这一发现表明,浦肯野细胞迁移至浦肯野细胞板所需的Reelin信号不仅来自EGL,而且可能涉及核转运区细胞的信号传导。

著录项

  • 作者

    Jensen, Patricia.;

  • 作者单位

    The University of Tennessee Health Science Center.;

  • 授予单位 The University of Tennessee Health Science Center.;
  • 学科 Biology Neuroscience.Biology Animal Physiology.Biology Cell.
  • 学位 Ph.D.
  • 年度 2002
  • 页码 106 p.
  • 总页数 106
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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