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In Vivo Quantitative Microvasculature Phenotype Imaging of Healthy and Malignant Tissues Using a Fiber-Optic Confocal Laser Microprobe1

机译:使用光纤共聚焦激光Microprobe1对健康和恶性组织进行体内定量微脉管系统表型成像。

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摘要

Real-time in vivo imaging of the microvasculature may help both earlier clinical detection of disease and the understanding of tumor-host interaction at various stages of progression. In vivo confocal and multiphoton microscopy is often hampered by bulky optics setup and has limited access to internal organs. A fiber-optic setup avoids these limitations and offers great user maneuverability. We report here the in vivo validation of a fiber-optic confocal fluorescence microprobe imaging system. In addition, we developed an automated fractal-based image analysis to characterize microvascular morphology based on vessel diameter distribution, density, volume fraction, and fractal dimension from real-time data. The system is optimized for use in the far-red and near-infrared region. The flexible 1.5-mm-diameter fiber-optic bundle and microprobe enable great user maneuverability, with a field of view of 423 x 423 µm and a tissue penetration of up to 15 µm. Lateral and axial resolutions are 3.5 and 15 µm. We show that it is possible to obtain high temporal and spatial resolution images of virtually any abdominal viscera in situ using a far-red blood pool imaging probe. Using an orthotopic model of pancreatic ductal adenocarcinoma, we characterized the tumor surface capillary and demonstrated that the imaging system and analysis can quantitatively differentiate between the normal and tumor surface capillary. This clinically approved fiber-optic system, together with the fractal-based image analysis, can potentially be applied to characterize other tumors in vivo and may be a valuable tool to facilitate their clinical evaluation.
机译:微脉管系统的实时体内成像可以帮助疾病的早期临床检测以及在进展的各个阶段对肿瘤-宿主相互作用的理解。体内共聚焦和多光子显微镜通常会因笨重的光学装置而受阻,并且进入内部器官的机会有限。光纤设置避免了这些限制,并提供了出色的用户可操作性。我们在这里报告的光纤共聚焦荧光微探针成像系统的体内验证。此外,我们开发了基于分形的自动化图像分析,可根据实时数据中的血管直径分布,密度,体积分数和分形维数来表征微血管形态。该系统经过优化,可用于远红外和近红外区域。直径为1.5毫米的柔性光纤束和微探针可实现极大的用户可操作性,视野为423 x 423 µm,组织穿透力最大为15 µm。横向和轴向分辨率分别为3.5和15 µm。我们显示,使用远红血池成像探头可就地获得几乎任何腹部内脏的高时空分辨率图像。使用胰腺导管腺癌的原位模型,我们表征了肿瘤表面毛细血管,并证明了成像系统和分析可以定量区分正常和肿瘤表面毛细血管。该临床认可的光纤系统以及基于分形的图像分析可以潜在地应用于表征其他体内肿瘤,并且可能是促进其临床评估的有价值的工具。

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