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纠正光分辨光声显微镜的有限视场。

Correcting the limited view in optical-resolution photoacoustic microscopy.

机构信息

Department of Biomedical Engineering, Duke University, Durham, North Carolina.

Department of Biomedical Engineering, School of Medicine, Tsinghua University, Beijing, China.

出版信息

J Biophotonics. 2018 Feb;11(2). doi: 10.1002/jbio.201700196. Epub 2017 Nov 15.

Abstract

Optical-resolution photoacoustic microscopy (OR-PAM) has proven useful for anatomical and functional imaging with high spatial resolutions. However, the coherent signal generation and the desired reflection-mode detection in OR-PAM can result in a limited detectability of features aligned with the acoustic axis (ie, vertical structures). Here, we investigated the limited-view phenomenon in OR-PAM by simulating the generation and propagation of the acoustic pressure waves and determined the key optical parameters affecting the visibility of vertical structures. Proof-of-concept numerical experiments were performed with different illumination angles, optical foci and numerical apertures (NA) of the objective lens. The results collectively show that an NA of 0.3 can readily improve the visibility of vertical structures in a typical reflection-mode OR-PAM system. This conclusion was confirmed by numerical simulations on the cortical blood vessels in a mouse brain and by experiments in a suture-cross phantom and in a mouse brain in vivo.

摘要

光学分辨率光声显微镜(OR-PAM)已被证明可用于具有高空间分辨率的解剖学和功能成像。然而,OR-PAM 中相干信号的产生和期望的反射模式检测可能导致与声轴(即垂直结构)对齐的特征的检测能力有限。在这里,我们通过模拟声压波的产生和传播来研究 OR-PAM 中的有限视场现象,并确定了影响垂直结构可见度的关键光学参数。使用不同的照明角度、光学焦点和物镜的数值孔径(NA)进行了概念验证数值实验。结果共同表明,典型的反射模式 OR-PAM 系统中,NA 为 0.3 可显著提高垂直结构的可见度。这一结论通过在小鼠大脑皮质血管上的数值模拟以及在缝线交叉体模和活体小鼠大脑中的实验得到了证实。

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