Wang Zhiyang, Yang Fei, Zhang Wuyu, Xiong Kedi, Yang Sihua
MOE Key Laboratory of Laser Life Science & Institute of Laser Life Science, College of Biophotonics, School of Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510631, China.
Guangdong Provincial Key Laboratory of Laser Life Science, College of Biophotonics, School of Optoelectronic Science and Engineering, South China Normal University, Guangzhou 510631, China.
Fundam Res. 2023 Feb 14;4(5):1314-1330. doi: 10.1016/j.fmre.2023.01.008. eCollection 2024 Sep.
Multiscale visualization of human anatomical structures is revolutionizing clinical diagnosis and treatment. As one of the most promising clinical diagnostic techniques, photoacoustic imaging (PAI), or optoacoustic imaging, bridges the spatial-resolution gap between pure optical and ultrasonic imaging techniques, by the modes of optical illumination and acoustic detection. PAI can non-invasively capture multiple optical contrasts from the endogenous agents such as oxygenated/deoxygenated hemoglobin, lipid and melanin or a variety of exogenous specific biomarkers to reveal anatomy, function, and molecular for biological tissues , showing significant potential in clinical diagnostics. In 2001, the worldwide first clinical prototype of the photoacoustic system was used to screen breast cancer , which opened the prelude to photoacoustic clinical diagnostics. Over the past two decades, PAI has achieved monumental discoveries and applications in human imaging. Progress towards preclinical/clinical applications includes breast, skin, lymphatics, bowel, thyroid, ovarian, prostate, and brain imaging, etc., and there is no doubt that PAI is opening new avenues to realize early diagnosis and precise treatment of human diseases. In this review, the breakthrough researches and key applications of photoacoustic human imaging are emphatically summarized, which demonstrates the technical superiorities and emerging applications of photoacoustic human imaging in clinical diagnostics, providing clinical translational orientations for the photoacoustic community and clinicians. The perspectives on potential improvements of photoacoustic human imaging are finally highlighted.
人体解剖结构的多尺度可视化正在彻底改变临床诊断和治疗方式。作为最有前景的临床诊断技术之一,光声成像(PAI),即光声成像,通过光照射和声检测模式,弥合了纯光学成像技术和超声成像技术之间的空间分辨率差距。PAI可以从诸如氧合/脱氧血红蛋白、脂质和黑色素等内源性物质或多种外源性特异性生物标志物中无创地获取多种光学对比度,以揭示生物组织的解剖结构、功能和分子信息,在临床诊断中显示出巨大潜力。2001年,全球首个光声系统临床原型被用于乳腺癌筛查,开启了光声临床诊断的序幕。在过去的二十年里,PAI在人体成像方面取得了重大发现和应用。临床前/临床应用的进展包括乳腺、皮肤、淋巴管、肠道、甲状腺、卵巢、前列腺和脑成像等,毫无疑问,PAI正在为实现人类疾病的早期诊断和精准治疗开辟新途径。在这篇综述中,着重总结了光声人体成像的突破性研究和关键应用,展示了光声人体成像在临床诊断中的技术优势和新兴应用,为光声领域的研究人员和临床医生提供了临床转化方向。最后强调了对光声人体成像潜在改进的展望。