Laser Processing and Plasmonics Laboratory, Department of Engineering Physics, Polytechnique Montréal, Montréal, Québec, Canada.
Research Center of the Centre Hospitalier de l'Université de Montréal (CHUM), Montreal, Québec, Canada.
J Biophotonics. 2019 Nov;12(11):e201900166. doi: 10.1002/jbio.201900166. Epub 2019 Aug 18.
Direct microscopy interpretation of fine-needle biopsy cytological samples is routinely used by practicing cytopathologists. Adding possibility to identify selective and multiplexed biomarkers on the same samples and with the same microscopy technique can greatly improve diagnostic accuracy. In this article, we propose to use biomarkers based on designable plasmonic nanoparticles (NPs) with unique optical properties and excellent chemical stability that can satisfy the above-mentioned requirements. By finely controlling the size and composition of gold-silver alloy NPs and gold nanorods, the NPs plasmonic resonance properties, such as scattering efficiency and resonance peak spectral position, are adjusted in order to provide reliable identification and chromatic differentiation by conventional direct microscopy. Efficient darkfield NPs imaging is performed by using a novel circular side illumination adaptor that can be easily integrated into any microscopy setup while preserving standard cytopathology visualization method. The efficiency of the proposed technology for fast visual detection and differentiation of three spectrally distinct NP-markers is demonstrated in different working media, thus confirming the potential application in conventional cytology preparations. It is worth emphasizing that the presented technology does not interfere with standard visualization with immunohistochemical staining, but should rather be considered as a second imaging modality to confirm the diagnostics.
细针穿刺活检细胞学样本的直接显微镜解读已被临床细胞病理学家常规使用。如果能够在相同的样本上并使用相同的显微镜技术来识别选择性和多重生物标志物,那么这将极大地提高诊断的准确性。在本文中,我们建议使用基于设计的等离子体纳米粒子(NPs)的生物标志物,这些 NPs 具有独特的光学特性和优异的化学稳定性,能够满足上述要求。通过精细控制金银合金 NPs 和金纳米棒的尺寸和组成,可以调整 NPs 的等离子体共振特性,例如散射效率和共振峰光谱位置,以便通过常规的直接显微镜提供可靠的识别和颜色区分。通过使用新型圆形侧面照明适配器来进行高效的暗场 NPs 成像,该适配器可以很容易地集成到任何显微镜设置中,同时保留标准的细胞病理学可视化方法。在所研究的不同工作介质中,对三种具有明显光谱特征的 NP 标记物的快速可视化检测和区分的效率进行了演示,从而证实了该技术在常规细胞学制片中的潜在应用。值得强调的是,所提出的技术不会干扰免疫组织化学染色的标准可视化,而应被视为确认诊断的第二种成像方式。