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果蝇大脑的早期发育:IV. 由神经胶质隔膜界定的幼虫神经纤维网区室

Early development of the Drosophila brain: IV. Larval neuropile compartments defined by glial septa.

作者信息

Younossi-Hartenstein Amelia, Salvaterra Paul M, Hartenstein Volker

机构信息

Department of Molecular Cell and Developmental Biology, University of California Los Angeles, Los Angeles, California 90095, USA.

出版信息

J Comp Neurol. 2003 Jan 20;455(4):435-50. doi: 10.1002/cne.10483.

Abstract

In this study, we have analyzed the architecture of the brain neuropile of the Drosophila larva, which is formed by two main structural elements: long axon tracts and terminal axonal/dendritic arborizations carrying synapses. By using several molecular markers expressed in neurons and glial cells, we show that the early larval neuropile is subdivided by glial sheaths into numerous compartments. The three-dimensional layout of these compartments and their relationship to the pattern of long axon tracts described in the accompanying article (Nassif et al. [2003] J. Comp. Neurol 417-434) was modeled by using a three-dimensional illustration computer software. On the basis of their location relative to each other and to long axon tracts, larval brain compartments can be identified with compartments defined by structural and functional criteria for the adult fly brain. We find that small precursors of most of the compartments of the adult central brain can be identified in the early larva. Changes in brain compartmental organization occurring during larval growth are described. Neuropile compartments, representing easily identifiable landmark structures, will assist in future analyses of Drosophila brain development in which the exact location of neurons and their axonal trajectories is of importance.

摘要

在本研究中,我们分析了果蝇幼虫脑髓质的结构,它由两个主要结构元件构成:长轴突束以及携带突触的终末轴突/树突分支。通过使用在神经元和神经胶质细胞中表达的几种分子标记,我们发现早期幼虫的脑髓质被神经胶质鞘细分为许多隔室。利用三维绘图计算机软件对这些隔室的三维布局及其与随附文章(纳西夫等人[2003年]《比较神经学杂志》417 - 434页)中描述的长轴突束模式的关系进行了建模。根据它们彼此之间以及与长轴突束的相对位置,幼虫脑隔室可与根据成年果蝇脑的结构和功能标准定义的隔室相对应。我们发现,成年中枢脑大多数隔室的小前体在早期幼虫中即可识别。本文描述了幼虫生长过程中脑隔室组织发生的变化。脑髓质隔室作为易于识别的标志性结构,将有助于未来对果蝇脑发育的分析,其中神经元的确切位置及其轴突轨迹至关重要。

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