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Hybrid ultrasound and dual-wavelength optoacoustic biomicroscopy for functional neuroimaging

机译:杂交超声和双波长光声生物显微镜,用于功能性神经影像学

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Many neurological disorders are linked to abnormal activation or pathological alterations of the vasculature in the affected brain region. Obtaining simultaneous morphological and physiological information of neurovasculature is very challenging due to the acoustic distortions and intense light scattering by the skull and brain. In addition, the size of cerebral vasculature in murine brains spans an extended range from just a few microns up to about a millimeter, all to be recorded in 3D and over an area of several dozens of mm2. Numerous imaging techniques exist that excel at characterizing certain aspects of this complex network but are only capable of providing information on a limited spatio-temporal scale. We present a hybrid ultrasound and dual-wavelength optoacoustic microscope, capable of rapid imaging of murine neurovasculature in-vivo, with high spatial resolution down to 12 μm over a large field of view exceeding 50mm~2. The dual wavelength imaging capability allows for the visualization of functional blood parameters through an intact skull while pulse-echo ultrasound biomicroscopy images are captured simultaneously by the same scan head. The flexible hybrid design in combination with fast high-resolution imaging in 3D holds promise for generating better insights into the architecture and function of the neurovascular system.
机译:许多神经系统疾病与受影响的脑区中脉管系统的异常活化或病理变化有关。由于颅骨和大脑的声学扭曲和强烈的光散射,获得神经血管系统的同时形态学和生理信息非常具有挑战性。此外,鼠血管大脑的大小跨越大约毫米的脑大脑中的延伸范围延伸范围,所有这些都将被记录在3D和超过几十个MM2的面积上。存在许多成像技术,即在表征该复杂网络的某些方面时Excel,但仅能够提供有限的时空尺度的信息。我们提出了一个混合超声和双波长光声显微镜,能够在体内鼠神经脉管的快速成像的,具有高空间分辨率降低到12微米以上视图超过50毫米〜2的大视场。双波长成像能力允许通过完整的颅骨可视化功能血液参数,而通过相同的扫描头同时捕获脉冲回波超声生物分析图像。柔性混合设计与3D中快速高分辨率成像组合的承担承担能够在神经血管系统的架构和功能中产生更好的见解。

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