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光声成像及其微血管特征分析。

Photoacoustic imaging and characterization of the microvasculature.

机构信息

Washington University in St. Louis, Department of Biomedical Engineering, St. Louis, Missouri 63130-4899, USA.

出版信息

J Biomed Opt. 2010 Jan-Feb;15(1):011101. doi: 10.1117/1.3281673.

Abstract

Photoacoustic (optoacoustic) tomography, combining optical absorption contrast and highly scalable spatial resolution (from micrometer optical resolution to millimeter acoustic resolution), has broken through the fundamental penetration limit of optical ballistic imaging modalities-including confocal microscopy, two-photon microscopy, and optical coherence tomography-and has achieved high spatial resolution at depths down to the diffusive regime. Optical absorption contrast is highly desirable for microvascular imaging and characterization because of the presence of endogenous strongly light-absorbing hemoglobin. We focus on the current state of microvascular imaging and characterization based on photoacoustics. We first review the three major embodiments of photoacoustic tomography: microscopy, computed tomography, and endoscopy. We then discuss the methods used to characterize important functional parameters, such as total hemoglobin concentration, hemoglobin oxygen saturation, and blood flow. Next, we highlight a few representative applications in microvascular-related physiological and pathophysiological research, including hemodynamic monitoring, chronic imaging, tumor-vascular interaction, and neurovascular coupling. Finally, several potential technical advances toward clinical applications are suggested, and a few technical challenges in contrast enhancement and fluence compensation are summarized.

摘要

光声(光声)断层摄影术结合了光学吸收对比和高度可扩展的空间分辨率(从微米级光学分辨率到毫米级声分辨率),突破了包括共聚焦显微镜、双光子显微镜和光学相干断层扫描在内的光学弹道成像方式的基本穿透极限,并在扩散区域达到了高空间分辨率。由于内源性强吸光血红蛋白的存在,光吸收对比对于微血管成像和特征描述非常理想。我们专注于基于光声的微血管成像和特征描述的当前状态。我们首先回顾了光声断层摄影术的三种主要体现形式:显微镜、计算机断层扫描和内窥镜。然后,我们讨论了用于描述总血红蛋白浓度、血红蛋白氧饱和度和血流等重要功能参数的方法。接下来,我们重点介绍了微血管相关生理和病理生理研究中的一些有代表性的应用,包括血流动力学监测、慢性成像、肿瘤-血管相互作用和神经血管耦联。最后,提出了一些潜在的技术进展,以实现临床应用,并总结了对比度增强和剂量补偿方面的一些技术挑战。

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