Dual-wavelength high-speed functional photoacoustic microscopy of mouse brain with a Raman laser at 1-MHz A-line rate (Conference Presentation)

Yun He, Yun He, Junhui Shi, K. Maslov, Lihong V. Wang
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Abstract

Label-free functional photoacoustic microscopy (fPAM) has become a popular technology in small-animal hemodynamic studies. Here we report a stimulated-Raman-scattering-based (SRS) dual-wavelength high-speed fPAM that has achieved volumetric imaging at a 1 MHz A-line rate with capillary-level resolution. Potassium gadolinium tungstate (KGd(WO4)2) crystal is used as a Raman shifter to convert the pump 532 nm picosecond-pulsed laser to the first order Stokes line at 558 nm through the SRS effect with ~40% efficiency and a much narrower line width compared with previous fiber-based SRS PAMs. We also developed a water-immersible micro-electro-mechanical system scanner for scanning a ~4-mm range at a 500 Hz B-scan rate, while maintaining the optic-acoustic confocal alignment. This scanner is assembled entirely from commercially available components, facilitating replication. The detection sensitivity of our fPAM is also improved by employing a high numerical aperture polyvinylidene fluoride ultrasonic transducer, whose acoustic impedance matches better with tissue coupling medium than traditional ceramic transducers. The high sensitivity combined with ~2.4 µm resolution enabled our fPAM to image single red blood cells with a signal-to-noise ratio of ~27 dB. Compared with our previous laser-pulse-width based fPAM, we achieved simultaneous imaging of hemoglobin concentration and oxygenation with a 5-fold increase in imaging speed. Moreover, our system works in a convenient free-space manner compared to previous SRS-based PAMs. We applied it to imaging vasculature and blood oxygen saturation on mouse brains in both resting and stimulated states.
用1 mhz a线速率的拉曼激光观察小鼠脑的双波长高速功能光声显微镜(会议报告)
无标记功能光声显微镜(fPAM)已成为小动物血流动力学研究的热门技术。在这里,我们报道了一种基于刺激拉曼散射(SRS)的双波长高速fPAM,该fPAM以1 MHz a线速率实现了毛细管级分辨率的体积成像。利用钨酸钾钆(KGd(WO4)2)晶体作为拉曼移位器,通过SRS效应将532 nm皮秒泵浦脉冲激光转换为558 nm的一阶Stokes线,效率约为40%,线宽比以往基于光纤的SRS PAMs窄得多。我们还开发了一种水浸式微机电系统扫描仪,可在500 Hz b扫描速率下扫描~4毫米范围,同时保持光声共聚焦对准。该扫描仪完全由市售组件组装,便于复制。采用高数值孔径聚偏氟乙烯超声换能器,提高了fPAM的检测灵敏度,其声阻抗与组织耦合介质的匹配优于传统陶瓷换能器。高灵敏度和~2.4µm分辨率使我们的fPAM能够以~27 dB的信噪比对单个红细胞进行成像。与我们之前基于激光脉冲宽度的fPAM相比,我们实现了血红蛋白浓度和氧合的同时成像,成像速度提高了5倍。此外,与以前基于rss的pam相比,我们的系统以方便的自由空间方式工作。我们将其应用于静息和刺激状态下小鼠大脑的血管和血氧饱和度成像。
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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