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本文引用的文献

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Nanoplasmonic Quantification of Tumor-derived Extracellular Vesicles in Plasma Microsamples for Diagnosis and Treatment Monitoring.用于诊断和治疗监测的血浆微量样本中肿瘤衍生细胞外囊泡的纳米等离子体定量分析
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Noise Reduction Method for Quantifying Nanoparticle Light Scattering in Low Magnification Dark-Field Microscope Far-Field Images.用于在低倍暗场显微镜远场图像中量化纳米粒子光散射的降噪方法。
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Nonamplification Sandwich Assay Platform for Sensitive Nucleic Acid Detection Based on AuNPs Enumeration with the Dark-Field Microscope.基于暗场显微镜对金纳米颗粒计数的用于灵敏核酸检测的非扩增夹心检测平台。
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Digitizing Gold Nanoparticle-Based Colorimetric Assay by Imaging and Counting Single Nanoparticles.通过成像和计数单个纳米颗粒对基于金纳米颗粒的比色测定进行数字化
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Analyzing Carbohydrate-Protein Interaction Based on Single Plasmonic Nanoparticle by Conventional Dark Field Microscopy.基于传统暗场显微镜的单等离子体纳米颗粒分析碳水化合物-蛋白质相互作用
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Dark field nanoparticle tracking analysis for size characterization of plasmonic and non-plasmonic particles.用于等离子体和非等离子体颗粒尺寸表征的暗场纳米颗粒跟踪分析
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一种基于低成本手机的暗场显微镜,用于基于纳米颗粒的定量研究。

A low cost mobile phone dark-field microscope for nanoparticle-based quantitative studies.

机构信息

School of Biological and Health Systems Engineering, Virginia G. Piper Biodesign Center for Personalized Diagnostics, The Biodesign Institute, Arizona State University, 727 E. Tyler St. B 130-B, Tempe, AZ 85287, United States.

School of Biological and Health Systems Engineering, Virginia G. Piper Biodesign Center for Personalized Diagnostics, The Biodesign Institute, Arizona State University, 727 E. Tyler St. B 130-B, Tempe, AZ 85287, United States.

出版信息

Biosens Bioelectron. 2018 Jan 15;99:513-518. doi: 10.1016/j.bios.2017.08.025. Epub 2017 Aug 16.

DOI:10.1016/j.bios.2017.08.025
PMID:28823976
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5588877/
Abstract

Dark-field microscope (DFM) analysis of nanoparticle binding signal is highly useful for a variety of research and biomedical applications, but current applications for nanoparticle quantification rely on expensive DFM systems. The cost, size, limited robustness of these DFMs limits their utility for non-laboratory settings. Most nanoparticle analyses use high-magnification DFM images, which are labor intensive to acquire and subject to operator bias. Low-magnification DFM image capture is faster, but is subject to background from surface artifacts and debris, although image processing can partially compensate for background signal. We thus mated an LED light source, a dark-field condenser and a 20× objective lens with a mobile phone camera to create an inexpensive, portable and robust DFM system suitable for use in non-laboratory conditions. This proof-of-concept mobile DFM device weighs less than 400g and costs less than $2000, but analysis of images captured with this device reveal similar nanoparticle quantitation results to those acquired with a much larger and more expensive desktop DFMM system. Our results suggest that similar devices may be useful for quantification of stable, nanoparticle-based activity and quantitation assays in resource-limited areas where conventional assay approaches are not practical.

摘要

暗场显微镜(DFM)分析纳米粒子结合信号在各种研究和生物医学应用中非常有用,但目前用于纳米粒子定量的应用依赖于昂贵的 DFM 系统。这些 DFM 的成本、尺寸和有限的稳健性限制了它们在非实验室环境中的应用。大多数纳米粒子分析使用高倍 DFM 图像,这些图像获取起来劳动强度大,并且容易受到操作人员的偏见影响。低倍 DFM 图像采集速度更快,但容易受到表面伪影和碎片的背景信号干扰,尽管图像处理可以部分补偿背景信号。因此,我们将 LED 光源、暗场聚光器和 20×物镜与手机摄像头相匹配,创建了一种廉价、便携且坚固的 DFM 系统,适用于非实验室条件。这种概念验证型移动 DFM 设备重量不到 400 克,成本不到 2000 美元,但用这种设备拍摄的图像分析表明,其纳米粒子定量结果与更大、更昂贵的台式 DFM 系统获得的结果相似。我们的结果表明,在常规检测方法不切实际的资源有限地区,类似的设备可能有助于稳定的、基于纳米粒子的活性和定量检测的定量。