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Analysis of Novel Ligands for the Dscam Receptor in Axon Guidance

Analysis of Novel Ligands for the Dscam Receptor in Axon Guidance
轴突引导中 Dscam 受体的新型配体分析
批准号:
1052555
负责人:
Thomas Kidd
金额:
$57.39万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-02-15 至 2018-03-31

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中文摘要
翻译
在发育中的胚胎中,生长中的神经必须经过很长的距离才能找到它们的目标,并连接神经系统。神经的单个纤维被称为轴突,了解轴突是如何导航的非常有兴趣,因为它解释了大脑和神经系统最初的复杂性是如何产生的。生长中的轴突对环境中的暗示做出反应,这些暗示既可以是吸引人的,也可以是令人厌恶的;同样的暗示也可以刺激整体的生长。唐氏综合症细胞黏附分子(DSCAM)基因存在于大多数具有神经系统的生物体中。DSCAM出人意料地允许轴突检测众所周知的导航提示并对其做出反应。推动这项提议中大部分工作的工作模式是,DSCAM将线索解释为有吸引力的信号,并刺激轴突朝着线索生长。这一模型正在果蝇身上用遗传学方法进行测试。果蝇神经系统足够简单,可以观察单个轴突的生长,并分析当Dscam活性减少或缺失时,轴突是如何受到影响的。实验的结果将允许评估模型的全部或部分是正确的。这项工作得到了组织培养细胞实验的支持,该实验检验了DSCAM和线索的物理相互作用。该项目为研究生和本科生提供最先进的遗传和分子生物学培训。这项研究的结果有望促进我们对果蝇以及包括脊椎动物脊髓在内的许多其他神经系统中轴突的生长和导航的了解。
英文摘要
In the developing embryo, growing nerves have to navigate long distances to find their targets and to connect up the nervous system. The individual fibers of the nerves are known as axons, and understanding how axons navigate is of great interest as it explains how the initial complexity of the brain and nervous system arises. Growing axons respond to cues in their environment that can either be attractive or repulsive; the same cues can also stimulate overall growth. The Down Syndrome Cell Adhesion Molecule (Dscam) gene is present in most organisms with a nervous system. Dscam unexpectedly allows axons to detect well-known navigational cues and to respond to them. The working model that drives much of the work in this proposal is that Dscam interprets the cues as attractive signals and stimulates axon growth towards the cues. This model is being tested in the fruit fly Drosophila using a genetic approach. The fruit fly nervous system is simple enough to observe the growth of single axons and to analyze how axons are affected when Dscam activity is reduced or absent. The results from the experiments will allow evaluation of whether all or part of the model is correct. The work is supported by experiments on tissue culture cells examining how Dscam and the cues physically interact. The project provides state of the art genetic and molecular biology training for both graduate and undergraduate students. The results derived from this study are expected to advance our knowledge of how axons grow and navigate in the fruit fly, as well as in many other nervous systems including the vertebrate spinal cord.
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