用于活体动物表型分析的小鼠脑三维磁共振图像的自动计算处理

Q2 Biochemistry, Genetics and Molecular Biology Current Protocols in Molecular Biology Pub Date : 2018-02-13 DOI:10.1002/cpmb.40
Christopher S. Medina, Brett Manifold-Wheeler, Aaron Gonzales, Elaine L. Bearer
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引用次数: 9

摘要

磁共振(MR)成像提供了一种从活体大脑获得解剖信息的方法,由于该器官的不透明,光学成像通常无法获得这种信息。MR是非破坏性的,可以获得100µm3体素分辨率或更高的深层组织对比度。锰增强MRI (MEMRI)可用于观察啮齿动物和鸟类大脑轴突运输和局部神经活动。这种增强使研究人员能够研究不同动物大脑图像中功能电路或神经元活动的差异。此外,一旦将许多动物的MR图像对齐到一个单一矩阵中,就可以进行统计分析,比较由不同小鼠品系或不同转基因动物个体组成的不同多动物队列之间的MR强度,或者在实验操作后的不同时间点。虽然这种比较的预处理步骤(包括颅骨剥离和对齐)是人类成像的自动化步骤,但以前没有这种自动化处理可用于小鼠或其他广泛使用的实验动物,大多数研究人员使用内部定制处理。本协议描述了一种对鼠标执行这种预处理的逐步方法。©2017 by John Wiley &儿子,Inc。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Automated Computational Processing of 3-D MR Images of Mouse Brain for Phenotyping of Living Animals

Magnetic resonance (MR) imaging provides a method to obtain anatomical information from the brain in vivo that is not typically available by optical imaging because of this organ's opacity. MR is nondestructive and obtains deep tissue contrast with 100-µm3 voxel resolution or better. Manganese-enhanced MRI (MEMRI) may be used to observe axonal transport and localized neural activity in the living rodent and avian brain. Such enhancement enables researchers to investigate differences in functional circuitry or neuronal activity in images of brains of different animals. Moreover, once MR images of a number of animals are aligned into a single matrix, statistical analysis can be done comparing MR intensities between different multi-animal cohorts comprising individuals from different mouse strains or different transgenic animals, or at different time points after an experimental manipulation. Although preprocessing steps for such comparisons (including skull stripping and alignment) are automated for human imaging, no such automated processing has previously been readily available for mouse or other widely used experimental animals, and most investigators use in-house custom processing. This protocol describes a stepwise method to perform such preprocessing for mouse. © 2017 by John Wiley & Sons, Inc.

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Current Protocols in Molecular Biology
Current Protocols in Molecular Biology Biochemistry, Genetics and Molecular Biology-Molecular Biology
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