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光声流式细胞术:用于体内循环单个纳米颗粒、病原体和造影剂实时检测的原理及应用

Photoacoustic flow cytometry: principle and application for real-time detection of circulating single nanoparticles, pathogens, and contrast dyes in vivo.

作者信息

Zharov Vladimir P, Galanzha Ekaterina I, Shashkov Evgeny V, Kim Jin-Woo, Khlebtsov Nikolai G, Tuchin Valery V

机构信息

University of Arkansas for Medical Sciences, Phillips Classic Laser Laboratories, Little Rock, Arkansas 72205, USA.

出版信息

J Biomed Opt. 2007 Sep-Oct;12(5):051503. doi: 10.1117/1.2793746.

DOI:10.1117/1.2793746
PMID:17994867
Abstract

The goal of this work is to develop in vivo photoacoustic (PA) flow cytometry (PAFC) for time-resolved detection of circulating absorbing objects, either without labeling or with nanoparticles as PA labels. This study represents the first attempt, to our knowledge, to demonstrate the capability of PAFC with tunable near-infrared (NIR) pulse lasers for real-time monitoring of gold nanorods, Staphylococcus aureus and Escherichia coli labeled with carbon nanotubes (CNTs), and contrast dye Lymphazurin in the microvessels of mouse and rat ears and mesenteries. PAFC shows the unprecedented threshold sensitivity in vivo as one gold nanoparticle in the irradiated volume and as one bacterium in the background of 10(8) of normal blood cells. The CNTs are demonstrated to serve as excellent new NIR high-PA contrast agents. Fast Lymphazurin diffusion in live tissue is observed with rapid blue coloring of a whole animal body. The enhancement of the thermal and acoustic effects is obtained with clustered, multilayer, and exploded nanoparticles. This novel combination of PA microscopy/spectroscopy and flow cytometry may be considered as a new powerful tool in biological research with the potential of quick translation to humans, providing ultrasensitive diagnostics of pathogens (e.g., bacteria, viruses, fungi, protozoa, parasites, helminthes), metastatic, infected, inflamed, stem, and dendritic cells, and pharmacokinetics of drug, liposomes, and nanoparticles in deep vessels (with focused transducers) among other potential applications.

摘要

这项工作的目标是开发一种体内光声(PA)流式细胞术(PAFC),用于对循环中的可吸收物体进行时间分辨检测,这些物体可以不进行标记,也可以使用纳米颗粒作为PA标记。据我们所知,本研究首次尝试展示PAFC利用可调谐近红外(NIR)脉冲激光实时监测金纳米棒、用碳纳米管(CNT)标记的金黄色葡萄球菌和大肠杆菌以及对比染料淋巴蓝在小鼠和大鼠耳朵及肠系膜微血管中的情况。PAFC在体内表现出前所未有的阈值灵敏度,在照射体积内可检测到一个金纳米颗粒,在10⁸个正常血细胞的背景下可检测到一个细菌。已证明碳纳米管可作为出色的新型近红外高PA造影剂。观察到淋巴蓝在活体组织中快速扩散,整个动物体迅速呈现蓝色。通过聚集、多层和爆炸式纳米颗粒可增强热效应和声学效应。PA显微镜/光谱学与流式细胞术的这种新颖结合可被视为生物研究中的一种强大新工具,具有快速转化应用于人体的潜力,可对病原体(如细菌、病毒、真菌、原生动物、寄生虫、蠕虫)、转移性、感染性、炎症性、干细胞和树突状细胞进行超灵敏诊断,并可用于深入血管(使用聚焦换能器)中药物、脂质体和纳米颗粒的药代动力学等其他潜在应用。

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