ACTIVITY DEPENDENT MECHANISMS NEURAL CIRCUIT FORMATION
ACTIVITY DEPENDENT MECHANISMS NEURAL CIRCUIT FORMATION
批准号:
6627583
负责人:
Congrong Ron Yu
金额:
$10.17万
依托单位国家:
美国
项目类别:
财政年份:
2001
资助国家:
美国
项目状态:
已结题
起止时间:
2001-01-05 至 2005-12-31
关键词:
brain electrical activity brain mapping chemoreceptors developmental neurobiology embryo /fetus gene expression genetic screening genetically modified animals innervation laboratory mouse mature animal neural conduction neural transmission neuroanatomy neurogenesis newborn animals olfactions olfactory lobe potassium channel reporter genes tetracyclines tissue /cell culture transfection
中文摘要
神经回路是神经系统基本功能的基础。神经回路的发展是高度有组织和精确的。异常的神经发育和不适当的神经连接会导致神经和精神疾病,这是衰弱和毁灭性的。了解回路形成的机制是我们理解神经疾病病理学的基础,并可能导致发现适当的治疗方法。 然而,由于10/12的神经元和10/15的神经元之间的连接,神经系统构成了最复杂的研究问题之一。尽管在了解神经发育的基本方面取得了相当大的进展,但电路发育和维护的细胞和分子机制的知识仍然有限。这里概述的研究将调查内在神经活动在形成和维持适当的神经元连接中的作用。特别地,这些研究使用小鼠嗅觉系统作为模型系统。嗅觉感受器神经元在其投射模式中表现出显著的精确性。 神经元表达相同的气味受体基因收敛到两个之间的大约2000拓扑固定肾小球的嗅球。嗅觉神经元的这种精确定位被认为部分是由气味受体介导的,但其机制尚不清楚。神经元的类比在建立精确的嗅觉图中可能起着重要的作用。本研究的重点是阻断神经活动,并检查神经元沉默对回路形成的影响。为了实现这一目标,将使用遗传方法来创建转基因小鼠,可以诱导其以组织和时间特异性方式表达钾通道。这种钾离子通道的表达将大大抑制神经兴奋性和抑制电活动。沉默神经元的投射模式可以通过报告基因活性直接可视化,并且可以直接评估神经活性在模式形成中的作用。
英文摘要
Neural circuitry underlies the fundamental functions of the nervous system. The development of neural circuitry is highly organized and precise. Abnormal neural development and improperly maintained neural connections lead to neurological and mental diseases, which are debilitating and devastating. To understand the mechanisms that underlie circuit formation is fundamental to our understanding of the pathology of neural diseases and may lead to discovery of proper cures. Yet with 10/12 neurons and 10/15 connections amongst them, the nervous system poses one of the most complex problems to study. Despite considerable progress in understanding fundamental aspects of neural development, knowledge of the cellular and molecular mechanisms in circuit development and maintenance are limited. The studies outlined here will investigate the role of intrinsic neural activity in the formation and maintenance of proper neuronal connections. In particular, the studies use the mouse olfactory system as a model system. Olfactory receptor neurons show remarkable precision in their projection patterns. Neurons expressing the same odorant receptor gene converge to two among approximately 2000 topograpically fixed glomeruli in the olfactory bulb. Such precise targeting by olfactory neurons is believed to be partly mediated by the odorant receptors, but the mechanism is unknown. By analogs with neurons may play an important role in setting up a precise olfactory map. The focus of this study is to block neural activity and examine the effect of neuronal silencing on circuit formation. To achieve this goal, genetic methods will be used to create transgenic mice that can be induced to express a potassium channel in a tissue and temporal specific fashion. The expression of this potassium channel will substantially dampen neural excitability and suppress electrical activity. The projection patterns of silenced neurons can be directly visualized through reporter gene activity, and the role of neural activity in pattern formation can be directly assessed.
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