Centro de Investigaciones Opticas y Energías (CIOE), Universidad Privada Boliviana (UPB), Cochabamba, Bolivia.
Centro de Investigaciones en Nuevas Tecnologías Informáticas (CINTI), Universidad Privada Boliviana (UPB), Cochabamba, Bolivia.
Biosensors (Basel). 2022 Nov 2;12(11):960. doi: 10.3390/bios12110960.
Fluorescence microscopy is an important tool for disease diagnosis, often requiring costly optical components, such as fluorescence filter cubes and high-power light sources. Due to its high cost, conventional fluorescence microscopy cannot be fully exploited in low-income settings. Smartphone-based fluorescence microscopy becomes an interesting low-cost alternative, but raises challenges in the optical system. We present the development of a low-cost inverted laser fluorescence microscope that uses a smartphone to visualize the fluorescence image of biological samples. Our fluorescence microscope uses a laser-based simplified optical filter system that provides analog optical filtering capabilities of a fluorescence filter cube. Firstly, we validated our inverted optical filtering by visualizing microbeads labeled with three different fluorescent compounds or fluorophores commonly used for disease diagnosis. Secondly, we validated the disease diagnosis capabilities by comparing the results of our device with those of a commercial fluorescence microscope. We successfully detected and visualized Trypanosoma cruzi parasites, responsible for the Chagas infectious disease and the presence of Antineutrophil cytoplasmic antibodies of the ANCA non-communicable autoimmune disease. The samples were labeled with the fluorescein isothiocyanate (FITC) fluorophore, one of the most commonly used fluorophores for disease diagnosis. Our device provides a 400× magnification and is at least one order of magnitude cheaper than conventional commercial fluorescence microscopes.
荧光显微镜是疾病诊断的重要工具,通常需要昂贵的光学元件,如荧光滤光片和高功率光源。由于成本高,传统的荧光显微镜在低收入环境中无法充分发挥作用。基于智能手机的荧光显微镜成为一种有趣的低成本替代方案,但在光学系统方面带来了挑战。我们提出了一种低成本倒置激光荧光显微镜的开发,该显微镜使用智能手机来可视化生物样本的荧光图像。我们的荧光显微镜使用基于激光的简化光学滤光片系统,提供荧光滤光片的模拟光学滤波功能。首先,我们通过可视化用三种不同荧光化合物或用于疾病诊断的荧光染料标记的微球来验证我们的倒置光学滤波效果。其次,我们通过将我们的设备与商业荧光显微镜的结果进行比较来验证疾病诊断能力。我们成功地检测并可视化了引起恰加斯病的克氏锥虫寄生虫,以及非传染性自身免疫性疾病抗中性粒细胞胞质抗体的存在。这些样本用异硫氰酸荧光素(FITC)荧光染料标记,这是用于疾病诊断的最常用荧光染料之一。我们的设备提供 400 倍的放大倍数,并且比传统的商业荧光显微镜至少便宜一个数量级。