Cortex-wide multi-parametric photoacoustic microscopy (Conference Presentation)

Zhiqiang Xu, Yiming Wang, Naidi Sun, Ruimin Chen, Qifa Zhou, Song Hu
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Abstract

Multi-parametric photoacoustic microscopy (PAM) is uniquely capable of quantifying the cerebral hemodynamics and oxygen metabolism at the microscopic level. However, the limited depth of focus of conventional PAM is insufficient to encompass the depth variation of the mouse brain when imaging a large area. For instance, the surface contour of the mouse cortex is dome-shaped and spans several hundred microns along the depth direction. When out of focus, the resolution and sensitivity of PAM quickly degrades. Moreover, quantitative measurements (e.g., blood oxygenation and flow) are no longer accurate with the compromised resolution and sensitivity. Here, we report automated contour-scan multi-parametric PAM, which enables simultaneous imaging of blood perfusion, oxygenation and flow with high resolution and sensitivity over the entire mouse cortex. Different from the traditional contour-scan method that requires three steps (pre-scan, off-line calculation of the contour map, and contour scan), our technique can perform high-resolution wide-field contour scan without the first two steps, thereby significantly reducing the acquisition time. We first tested the feasibility of this technique by imaging a plastic ball coated with black ink. Then, we quantitatively analyzed the influence of out-of-focus on the measurement of blood flow in a vessel-mimicking phantom. Finally, we demonstrated cortex-wide multi-parametric PAM in the live mouse brain with high resolution and sensitivity.
全皮质多参数光声显微镜(会议报告)
多参数光声显微镜(PAM)在微观水平上定量脑血流动力学和氧代谢具有独特的能力。然而,常规PAM有限的聚焦深度不足以涵盖大范围成像时小鼠大脑的深度变化。例如,老鼠皮层的表面轮廓是圆顶状的,沿着深度方向跨越几百微米。失焦时,PAM的分辨率和灵敏度迅速下降。此外,由于分辨率和灵敏度的降低,定量测量(如血氧和血流)不再准确。在这里,我们报告了自动轮廓扫描多参数PAM,它可以同时对整个小鼠皮质的血液灌注、氧合和血流进行高分辨率和高灵敏度的成像。与传统的等高线扫描方法需要三个步骤(预扫描、离线等高线图计算和等高线扫描)不同,我们的技术可以进行高分辨率的宽视场等高线扫描,而不需要前两个步骤,从而大大缩短了采集时间。我们首先通过对涂有黑色墨水的塑料球成像来测试这项技术的可行性。然后,我们定量分析了失焦对模拟血管模型血流测量的影响。最后,我们在活体小鼠大脑中展示了高分辨率和高灵敏度的全皮质多参数PAM。
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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