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An Integrated Micro- and Macroarchitectural Analysis of the Drosophila Brain by Computer-Assisted Serial Section Electron Microscopy

机译:果蝇大脑的计算机辅助连续截面电子显微镜的微观和宏观综合结构分析。

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摘要

The analysis of microcircuitry (the connectivity at the level of individual neuronal processes and synapses), which is indispensable for our understanding of brain function, is based on serial transmission electron microscopy (TEM) or one of its modern variants. Due to technical limitations, most previous studies that used serial TEM recorded relatively small stacks of individual neurons. As a result, our knowledge of microcircuitry in any nervous system is very limited. We applied the software package TrakEM2 to reconstruct neuronal microcircuitry from TEM sections of a small brain, the early larval brain of Drosophila melanogaster. TrakEM2 enables us to embed the analysis of the TEM image volumes at the microcircuit level into a light microscopically derived neuro-anatomical framework, by registering confocal stacks containing sparsely labeled neural structures with the TEM image volume. We imaged two sets of serial TEM sections of the Drosophila first instar larval brain neuropile and one ventral nerve cord segment, and here report our first results pertaining to Drosophila brain microcircuitry. Terminal neurites fall into a small number of generic classes termed globular, varicose, axiform, and dendritiform. Globular and varicose neurites have large diameter segments that carry almost exclusively presynaptic sites. Dendritiform neurites are thin, highly branched processes that are almost exclusively postsynaptic. Due to the high branching density of dendritiform fibers and the fact that synapses are polyadic, neurites are highly interconnected even within small neuropile volumes. We describe the network motifs most frequently encountered in the Drosophila neuropile. Our study introduces an approach towards a comprehensive anatomical reconstruction of neuronal microcircuitry and delivers microcircuitry comparisons between vertebrate and insect neuropile.
机译:微电路分析(单个神经元过程和突触水平的连通性)是基于串行透射电子显微镜(TEM)或它的现代变体之一,对于我们理解脑功能是必不可少的。由于技术限制,以前使用串行TEM进行的大多数研究都记录了相对较小的单个神经元堆栈。结果,我们在任何神经系统中对微电路的知识都非常有限。我们应用软件包TrakEM2从小脑(果蝇的早期幼虫脑)的TEM区域重建神经元微电路。 TrakEM2使我们能够通过将包含稀疏标记的神经结构的共焦堆栈与TEM图像体积配准,从而将微电路级的TEM图像体积的分析嵌入到光学显微镜得出的神经解剖框架中。我们对果蝇第一龄幼虫幼虫脑神经桩和一个腹侧神经索节的两组连续TEM切片进行了成像,并在此报告了与果蝇脑微电路有关的第一个结果。终末神经突归入称为球状,静脉曲张,轴状和树状状的少数通用类别。球状和曲张神经突具有大的直径段,几乎仅带有突触前位点。树枝状神经突是很薄的高度分支的过程,几乎完全是突触后的。由于树枝状纤维的高分支密度和突触是多突性的事实,即使在较小的神经桩体积内,神经突也高度互连。我们描述了果蝇神经堆中最常遇到的网络图案。我们的研究介绍了一种对神经元微电路进行全面解剖重建的方法,并提供了脊椎动物和昆虫神经桩之间的微电路比较。

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