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使用微型计算机断层扫描技术探索小型昆虫的大脑。

Exploring miniature insect brains using micro-CT scanning techniques.

作者信息

Smith Dylan B, Bernhardt Galina, Raine Nigel E, Abel Richard L, Sykes Dan, Ahmed Farah, Pedroso Inti, Gill Richard J

机构信息

Department of Life Sciences, Imperial College London, Silwood Park, Buckhurst Road, Ascot, Berkshire, SL5 7PY, UK.

School of Biological Sciences, Royal Holloway University of London, Egham, Surrey, TW20 0EX, UK.

出版信息

Sci Rep. 2016 Feb 24;6:21768. doi: 10.1038/srep21768.

Abstract

The capacity to explore soft tissue structures in detail is important in understanding animal physiology and how this determines features such as movement, behaviour and the impact of trauma on regular function. Here we use advances in micro-computed tomography (micro-CT) technology to explore the brain of an important insect pollinator and model organism, the bumblebee (Bombus terrestris). Here we present a method for accurate imaging and exploration of insect brains that keeps brain tissue free from trauma and in its natural stereo-geometry, and showcase our 3D reconstructions and analyses of 19 individual brains at high resolution. Development of this protocol allows relatively rapid and cost effective brain reconstructions, making it an accessible methodology to the wider scientific community. The protocol describes the necessary steps for sample preparation, tissue staining, micro-CT scanning and 3D reconstruction, followed by a method for image analysis using the freeware SPIERS. These image analysis methods describe how to virtually extract key composite structures from the insect brain, and we demonstrate the application and precision of this method by calculating structural volumes and investigating the allometric relationships between bumblebee brain structures.

摘要

详细探索软组织结构的能力对于理解动物生理学以及这如何决定诸如运动、行为和创伤对正常功能的影响等特征非常重要。在这里,我们利用微计算机断层扫描(micro-CT)技术的进展来探索一种重要的昆虫传粉者和模式生物——大黄蜂(Bombus terrestris)的大脑。我们在此提出一种用于精确成像和探索昆虫大脑的方法,该方法能使脑组织免受创伤并保持其自然立体几何形状,并展示了我们对19个个体大脑的高分辨率三维重建和分析。该方案的开发允许相对快速且经济高效地进行大脑重建,使其成为更广泛科学界可采用的方法。该方案描述了样本制备、组织染色、微CT扫描和三维重建的必要步骤,随后是一种使用免费软件SPIERS进行图像分析的方法。这些图像分析方法描述了如何从昆虫大脑中虚拟提取关键复合结构,并且我们通过计算结构体积和研究大黄蜂大脑结构之间的异速生长关系来证明该方法的应用和精度。

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