Leng He, Wang Yuhling, Jhang De-Fu, Chu Tsung-Sheng, Tsao Chia-Hui, Tsai Chia-Hua, Giamundo Steven, Chen You-Yin, Liao Kuang-Wen, Chuang Chiung-Cheng, Ger Tzong-Rong, Chen Li-Tzong, Liao Lun-De
Institute of Biomedical Engineering and Nanomedicine, National Health Research Institutes, Zhunan Township, Miaoli County 35053, Taiwan.
Department of Biomedical Engineering, College of Engineering, Chung Yuan Christian University, Chung Li District, Taoyuan City 32023, Taiwan.
Micromachines (Basel). 2019 Nov 27;10(12):820. doi: 10.3390/mi10120820.
Photoacoustic (PA) imaging is an attractive technology for imaging biological tissues because it can capture both functional and structural information with satisfactory spatial resolution. Current commercially available PA imaging systems are limited by their bulky size or inflexible user interface. We present a new handheld real-time ultrasound/photoacoustic imaging system (HARP) consisting of a detachable, high-numerical-aperture (NA) fiber bundle-based illumination system integrated with an array-based ultrasound (US) transducer and a data acquisition platform. In this system, different PA probes can be used for different imaging applications by switching the transducers and the corresponding jackets to combine the fiber pads and transducer into a single probe. The intuitive user interface is a completely programmable MATLAB-based platform. In vitro phantom experiments were conducted to test the imaging performance of the developed PA system. Furthermore, we demonstrated (1) in vivo brain vasculature imaging, (2) in vivo imaging of real-time stimulus-evoked cortical hemodynamic changes during forepaw electrical stimulation, and (3) in vivo imaging of real-time cerebral pharmacokinetics in rats using the developed PA system. The overall purpose of this design concept for a customizable US/PA imaging system is to help overcome the diverse challenges faced by medical researchers performing both preclinical and clinical PA studies.
光声(PA)成像对于生物组织成像是一项颇具吸引力的技术,因为它能够以令人满意的空间分辨率获取功能和结构信息。当前市售的PA成像系统受限于其庞大的尺寸或不灵活的用户界面。我们展示了一种新型手持式实时超声/光声成像系统(HARP),它由一个基于可拆卸的高数值孔径(NA)光纤束的照明系统、一个基于阵列的超声(US)换能器和一个数据采集平台集成而成。在该系统中,通过切换换能器和相应的护套,将不同的PA探头用于不同的成像应用,从而将光纤垫和换能器组合成一个单一探头。直观的用户界面是一个完全基于MATLAB的可编程平台。进行了体外仿体实验以测试所开发PA系统的成像性能。此外,我们利用所开发的PA系统展示了(1)体内脑脉管系统成像,(2)前爪电刺激期间实时刺激诱发的皮质血流动力学变化的体内成像,以及(3)大鼠体内实时脑药代动力学成像。这种可定制US/PA成像系统设计概念的总体目的是帮助克服从事临床前和临床PA研究的医学研究人员所面临的各种挑战。