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3D Reconstructed Cyto- Muscarinic M2 Receptor and Fiber Architecture of the Rat Brain Registered to the Waxholm Space Atlas

机译:注册到Waxholm空间地图集的3D重建的细胞毒蕈碱M2受体和大鼠大脑的纤维结构

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摘要

High-resolution multiscale and multimodal 3D models of the brain are essential tools to understand its complex structural and functional organization. Neuroimaging techniques addressing different aspects of brain organization should be integrated in a reference space to enable topographically correct alignment and subsequent analysis of the various datasets and their modalities. The Waxholm Space () is a publicly available 3D coordinate-based standard reference space for the mapping and registration of neuroanatomical data in rodent brains. This paper provides a newly developed pipeline combining imaging and reconstruction steps with a novel registration strategy to integrate new neuroimaging modalities into the Waxholm Space atlas. As a proof of principle, we incorporated large scale high-resolution cyto-, muscarinic M2 receptor, and fiber architectonic images of rat brains into the 3D digital MRI based atlas of the Sprague Dawley rat in Waxholm Space. We describe the whole workflow, from image acquisition to reconstruction and registration of these three modalities into the Waxholm Space rat atlas. The registration of the brain sections into the atlas is performed by using both linear and non-linear transformations. The validity of the procedure is qualitatively demonstrated by visual inspection, and a quantitative evaluation is performed by measurement of the concordance between representative atlas-delineated regions and the same regions based on receptor or fiber architectonic data. This novel approach enables for the first time the generation of 3D reconstructed volumes of nerve fibers and fiber tracts, or of muscarinic M2 receptor density distributions, in an entire rat brain. Additionally, our pipeline facilitates the inclusion of further neuroimaging datasets, e.g., 3D reconstructed volumes of histochemical stainings or of the regional distributions of multiple other receptor types, into the Waxholm Space. Thereby, a multiscale and multimodal rat brain model was created in the Waxholm Space atlas of the rat brain. Since the registration of these multimodal high-resolution datasets into the same coordinate system is an indispensable requisite for multi-parameter analyses, this approach enables combined studies on receptor and cell distributions as well as fiber densities in the same anatomical structures at microscopic scales for the first time.
机译:大脑的高分辨率多尺度和多模式3D模型是了解其复杂的结构和功能组织的基本工具。应对大脑组织不同方面的神经影像学技术应整合到参考空间中,以实现拓扑正确的对齐方式以及各种数据集及其模态的后续分析。 Waxholm空间()是一个公开可用的基于3D坐标的标准参考空间,用于在啮齿动物大脑中映射和注册神经解剖学数据。本文提供了一种新开发的流水线,将成像和重建步骤与新颖的配准策略相结合,以将新的神经成像方式整合到Waxholm空间地图集中。作为原理上的证明,我们将大鼠脑的大规模高分辨率细胞,毒蕈碱M2受体和纤维建筑图像纳入了Waxholm空间中基于Sprague Dawley大鼠的3D数字MRI地图集。我们描述了整个工作流程,从图像获取到重建和将这三种方式注册到Waxholm Space大鼠地图集。通过使用线性和非线性变换来执行将脑部区域对准图谱的过程。通过目视检查定性地证明了该程序的有效性,并根据受体或纤维结构数据通过测量代表性图集描绘的区域与相同区域之间的一致性来进行定量评估。这种新颖的方法首次使整个大鼠大脑中神经纤维和纤维束的3D重建体积或毒蕈碱M2受体密度分布得以生成。此外,我们的产品线有助于将更多的神经影像数据集(例如3D重建的组织化学染色体积或多种其他受体类型的区域分布)包含到Waxholm空间中。因此,在大鼠脑的Waxholm空间地图集中创建了多尺度,多模式的大鼠脑模型。由于将这些多峰高分辨率数据集注册到同一坐标系中是多参数分析必不可少的必要条件,因此该方法可以在微观尺度上对同一解剖结构中的受体和细胞分布以及纤维密度进行组合研究。第一次。

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