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Cerebrovascular Casting of the Adult Mouse for 3D Imaging and Morphological Analysis

机译:成年小鼠的脑血管铸模用于3D成像和形态分析

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摘要

Vascular imaging is crucial in the clinical diagnosis and management of cerebrovascular diseases, such as brain arteriovenous malformations (BAVMs). Animal models are necessary for studying the etiopathology and potential therapies of cerebrovascular diseases. Imaging the vasculature in large animals is relatively easy. However, developing vessel imaging methods of murine brain disease models is desirable due to the cost and availability of genetically-modified mouse lines. Imaging the murine cerebral vascular tree is a challenge. In humans and larger animals, the gold standard for assessing the angioarchitecture at the macrovascular (conductance) level is x-ray catheter contrast-based angiography, a method not suited for small rodents.In this article, we present a method of cerebrovascular casting that produces a durable skeleton of the entire vascular bed, including arteries, veins, and capillaries that may be analyzed using many different modalities. Complete casting of the microvessels of the mouse cerebrovasculature can be difficu however, these challenges are addressed in this step-by-step protocol. Through intracardial perfusion of the vascular casting material, all vessels of the body are casted. The brain can then be removed and clarified using the organic solvent methyl salicylate. Three dimensional imaging of the brain blood vessels can be visualized simply and inexpensively with any conventional brightfield microscope or dissecting microscope. The casted cerebrovasculature can also be imaged and quantified using micro-computed tomography (micro-CT)1. In addition, after being imaged, the casted brain can be embedded in paraffin for histological analysis.The benefit of this vascular casting method as compared to other techniques is its broad adaptation to various analytic tools, including brightfield microscopic analysis, CT scanning due to the radiopaque characteristic of the material, as well as histological and immunohistochemical analysis. This efficient use of tissue can save animal usage and reduce costs. We have recently demonstrated application of this method to visualize the irregular blood vessels in a mouse model of adult BAVM at a microscopic level2, and provide additional images of the malformed vessels imaged by micro-CT scan. Although this method has drawbacks and may not be ideal for all types of analyses, it is a simple, practical technique that can be easily learned and widely applied to vascular casting of blood vessels throughout the body.
机译:血管成像在脑血管疾病(例如脑动静脉畸形(BAVM))的临床诊断和管理中至关重要。动物模型对于研究脑血管疾病的病因病理学和潜在疗法是必不可少的。对大型动物的脉管系统进行成像比较容易。然而,由于基因修饰的小鼠品系的成本和可用性,需要开发鼠脑疾病模型的血管成像方法。对鼠脑血管树进行成像是一项挑战。在人类和大型动物中,在大血管(电导)水平上评估血管结构的金标准是基于X射线导管造影的血管造影,这是一种不适合小型啮齿动物的方法。在本文中,我们介绍了一种脑血管铸造方法,产生整个血管床的坚固骨架,包括动脉,静脉和毛细血管,可以使用许多不同的方式进行分析。完全铸造小鼠脑血管的微血管可能很困难。但是,这些挑战在此分步协议中得以解决。通过心内血管灌注材料的灌注,人体的所有血管都被铸造。然后可以使用有机溶剂水杨酸甲酯取出大脑并使其澄清。脑血管的三维成像可以使用任何常规的明场显微镜或解剖显微镜简单,廉价地进行可视化。也可以使用微型计算机断层扫描(micro-CT) 1 对铸造的脑血管系统进行成像和量化。此外,将铸成的脑成像后,可以将其包埋在石蜡中进行组织学分析。与其他技术相比,这种血管铸成方法的好处是它广泛适用于各种分析工具,包括明场显微镜分析,CT扫描等。材料的不透射线特征,以及组织学和免疫组织化学分析。这种组织的有效利用可以节省动物的使用并降低成本。我们最近已经证明了该方法的应用,可以在显微镜下 2 可视化成年BAVM小鼠模型中的不规则血管,并提供通过微CT扫描成像的畸形血管的其他图像。尽管此方法具有缺点,并且可能不适用于所有类型的分析,但它是一种简单实用的技术,可以轻松学习并广泛应用于全身血管的血管形成。

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