Lin Tang, Daniil Nozdriukhin, Cagla Özsoy, Yunbo Chen, Frederik R. Wrum, Olga Koshkina, Daniel Razansky and Xosé Luís Deán-Ben*,
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引用次数: 0
摘要
对微血管网络中流动的小微粒进行光声跟踪,可深入光学不透明的生物组织进行功能性微血管造影,从根本上突破了声学衍射的分辨率限制。最近的研究表明,定位光声层析成像(LOT)可在定位较深的微血管中提供定量流速和氧饱和度读数,其分辨率超过了声衍射屏障(超分辨率)。然而,体内 LOT 成像一直受到血液本底吸收和所用材料生物相容性的挑战。在此,我们使用光声层析成像系统,在对人体安全的激光能量水平下,实现了对基于吲哚青绿(ICG)的微米级胶囊的体内单独检测和连续跟踪。然后,利用由生物聚合物和临床认可的染料组成的造影剂进行体内 LOT 成像,这将促进微循环的无创深层组织成像,并为这种方法最终应用于临床铺平道路。
Super-resolution Optoacoustic Imaging of Cerebral Microcirculation with Indocyanine Green Microcapsules
Optoacoustic tracking of small microparticles flowing throughout microvascular networks enables functional microangiography deep into optically opaque biological tissues, essentially breaking through the resolution limits imposed by acoustic diffraction. Localization optoacoustic tomography (LOT) has recently been shown to provide quantitative flow velocity and oxygen saturation readings in deep-located microvessels with a resolution beyond the acoustic diffraction barrier (super-resolution). However, in vivo LOT imaging has been challenged by the strong background absorption of blood and by the biocompatibility of the materials employed. Herein, we achieved in vivo individual detection and continuous tracking of indocyanine green (ICG)-based micrometer-sized capsules using an optoacoustic tomography system at laser energy levels considered safe for human use. In vivo LOT imaging was then enabled with contrast materials consisting of biopolymers and a clinically approved dye, which is poised to facilitate noninvasive deep tissue imaging of microcirculation and pave the way toward an eventual clinical translation of this approach.
期刊介绍:
Published as soon as accepted and summarized in monthly issues, ACS Photonics will publish Research Articles, Letters, Perspectives, and Reviews, to encompass the full scope of published research in this field.