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The Olfactory Pathway of Decapod Crustaceans—An Invertebrate Model for Life-Long Neurogenesis

机译:十足甲壳纲动物的嗅觉途径—终身神经发生的无脊椎动物模型。

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摘要

The first part of this review includes a short description of the cellular and morphological organization of the olfactory pathway of decapod crustaceans, followed by an overview of adult neurogenesis in this pathway focusing on the olfactory lobe (OL), the first synaptic relay in the brain. Adult neurogenesis in the central olfactory pathway has the following characteristics. 1) It is present in all the diverse species of decapod crustaceans so far studied. 2) In all these species, projection neurons (PNs), which have multiglomerular dendritic arborizations, are generated. 3) Neurons are generated by one round of symmetrical cell divisions of a small population of immediate precursor cells that are located in small proliferation zones at the inner margin of the respective soma clusters. 4) The immediate precursor cells in each soma cluster appear to be generated by repeated cell divisions of one or few neuronal stem cells that are located outside of the proliferation zone. 5) These neuronal stem cells are enclosed in a highly structured clump of small glial-like cells, which likely establishes a specific microenvironment and thus can be regarded as a stem cell niche. 6) Diverse internal and external factors, such as presence of olfactory afferents, age, season of the year, and living under constant and deprived conditions modulate the generation and/or survival of new neurons. In the second part of this review, I address the question why in decapod crustaceans adult neurogenesis persists in the visual and olfactory pathways of the brain but is lacking in all other mechanosensory–chemosensory pathways. Due to the indeterminate growth of most adult decapod crustaceans, new sensory neurons of all modalities (olfaction and chemo-, mechano-, and photoreception) are continuously added during adulthood and provide an ever-increasing sensory input to all primary sensory neuropils of the central nervous system. From these facts, I conclude that adult neurogenesis in the brain cannot simply be a mechanism to accommodate increasing sensory input and propose instead that it is causally linked to the specific “topographic logic” of information processing implemented in the sensory neuropils serving different modalities. For the presumptive odotopic type of information processing in the OL, new multiglomerular PNs allow interconnection of novel combinations of spatially unrelated input channels (glomeruli), whose simultaneous activation by specific odorants is the basis of odor coding. Thus, adult neurogenesis could provide a unique way to increase the resolution of odorant quality coding and allow adaptation of the olfactory system of these long-lived animals to ever-changing odor environments.
机译:这篇综述的第一部分简短介绍了十足纲甲壳动物的嗅觉途径的细胞和形态结构,随后概述了该途径中的成年神经发生,重点是嗅觉叶(OL),这是大脑中的第一个突触传递。 。成人在中央嗅觉途径中的神经发生具有以下特征。 1)迄今为止,它存在于十足纲甲壳动物的所有不同物种中。 2)在所有这些物种中,产生具有多肾小球树状乔化的投射神经元(PNs)。 3)神经元是由一小批直接前体细胞的对称细胞分裂产生的,这些细胞位于各个体细胞簇内缘的小增殖区。 4)每个体细胞簇中的直接前体细胞似乎是由位于增殖区以外的一个或几个神经元干细胞的重复细胞分裂产生的。 5)这些神经元干细胞被封闭在高度结构化的小神经胶质样细胞团中,这可能建立起特定的微环境,因此可以视为干细胞的利基市场。 6)各种内部和外部因素,例如嗅觉传入的存在,年龄,一年中的季节以及在恒定和剥夺的条件下生活,都会调节新神经元的产生和/或存活。在本综述的第二部分中,我解决了一个问题:为什么在十足纲甲壳类动物中,成人神经发生在大脑的视觉和嗅觉途径中持续存在,而在所有其他机械感觉-化学感觉途径中却缺乏。由于大多数成年十足纲甲壳动物的生长不确定,因此在成年期不断添加各种形式的新感觉神经元(嗅觉和化学,机械和光接收),并为中枢的所有主要感觉神经提供不断增加的感觉输入。神经系统。根据这些事实,我得出结论,大脑中的成人神经发生不能简单地成为适应不断增加的感觉输入的机制,而是提出它与因不同形式的感觉神经堆中实现的信息处理的特定“拓扑逻辑”有因果关系。对于OL中信息处理的假定的异位类型,新的多球PN允许互连空间无关的输入通道(小球)的新颖组合,其特定气味剂的同时激活是气味编码的基础。因此,成年神经发生可以提供增加气味质量编码分辨率的独特方法,并使这些长寿动物的嗅觉系统适应不断变化的气味环境。

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  • 来源
    《Chemical Senses》 |2007年第4期|365-384|共20页
  • 作者

    Manfred Schmidt;

  • 作者单位

    Department of Biology Georgia State University PO Box 4010 Atlanta GA 30303 USA;

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  • 正文语种 eng
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