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多谱光声断层成像技术对小鼠大脑神经动力学和组织的空间和光谱映射与分解。

Spatial and Spectral Mapping and Decomposition of Neural Dynamics and Organization of the Mouse Brain with Multispectral Optoacoustic Tomography.

机构信息

Institute of Biological and Medical Imaging (IBMI), Helmholtz Zentrum Munich, Ingolstadter Landstrasse 1, 85764 Neuherberg, Germany; Chair of Biological Imaging, Technical University Munich, 81675 Munich, Germany.

Institute of Biological and Medical Imaging (IBMI), Helmholtz Zentrum Munich, Ingolstadter Landstrasse 1, 85764 Neuherberg, Germany.

出版信息

Cell Rep. 2019 Mar 5;26(10):2833-2846.e3. doi: 10.1016/j.celrep.2019.02.020.

Abstract

In traditional optical imaging, limited light penetration constrains high-resolution interrogation to tissue surfaces. Optoacoustic imaging combines the superb contrast of optical imaging with deep penetration of ultrasound, enabling a range of new applications. We used multispectral optoacoustic tomography (MSOT) for functional and structural neuroimaging in mice at resolution, depth, and specificity unattainable by other neuroimaging modalities. Based on multispectral readouts, we computed hemoglobin gradient and oxygen saturation changes related to processing of somatosensory signals in different structures along the entire subcortical-cortical axis. Using temporal correlation analysis and seed-based maps, we reveal the connectivity between cortical, thalamic, and sub-thalamic formations. With the same modality, high-resolution structural tomography of intact mouse brain was achieved based on endogenous contrasts, demonstrating near-perfect matches with anatomical features revealed by histology. These results extend the limits of noninvasive observations beyond the reach of standard high-resolution neuroimaging, verifying the suitability of MSOT for small-animal studies.

摘要

在传统的光学成象中,有限的光穿透深度限制了高分辨率的组织表面检测。光声成象将光学成象的优异对比度与超声的深穿透相结合,实现了一系列新的应用。我们使用多谱光声断层成像术(MSOT)在分辨率、深度和特异性方面对小鼠进行功能和结构神经成像,这些是其他神经成象模态无法达到的。基于多谱读出,我们计算了与不同结构中感觉信号处理相关的血红蛋白梯度和氧饱和度变化,这些结构沿着整个皮质下-皮质轴分布。通过时相关分析和基于种子的图谱,我们揭示了皮质、丘脑和丘脑下结构之间的连接。通过相同的模态,基于内源性对比实现了完整小鼠大脑的高分辨率结构断层成像,与组织学揭示的解剖特征非常吻合。这些结果将非侵入性观察的极限扩展到标准高分辨率神经成像无法达到的范围,验证了 MSOT 非常适合用于小动物研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cbc1/6403416/04aeb4b313e7/fx1.jpg

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