Rahimpouresfahani Faraz, Tabatabaei Nima, Rezai Pouya
Department of Mechanical Engineering, York University 4700 Keele St Toronto M3J 1P3 Ontario Canada
RSC Adv. 2024 Jan 2;14(1):626-639. doi: 10.1039/d3ra06323b.
Recent advancements at the interface of microfluidics technology and light sheet fluorescence microscopy have opened the door for high-throughput and high-content investigation of disease models. In this paper, we report on the development of a simple, miniaturized, and low-cost optofluidic platform that can be added to a conventional inverted fluorescent microscope for continuous light sheet imaging of transgenic worm populations with high lateral and axial resolutions of 1.1 µm and 2.4 µm, respectively. The optofluidic device is made entirely of PDMS with integrated optics for light sheet generation. Laser excitation is delivered to the device a low-cost free space laser, and cross-sections of worm populations are imaged as they pass continuously through a channel. Results show the platform can image NW1229 whole worms with pan-neural fluorescent expression at a throughput of >20 worms per minute at L3 and young adult (YA) stages. As a benchmark test, we show that the low-cost device can quantify the reduced neuronal expressions of L3 and YA NW1229 worms when exposed to 500 µM 6-OHDA neurodegenerative agent. Following the benchmark validation, we utilized the platform in a novel application for imaging human alpha-synuclein reporter in populations of Parkinson's transgenic model (ERS100). Results show the ability of the low-cost platform to reliably detect and quantify the anomalous neural phenotypic changes in ERS100 populations at L3 and YA stages with high spatial resolution. The findings of this study show the potential of our low-cost optofluidic add-on platform to equip conventional fluorescent microscopes with light sheet capability for quantitative phenotypic studies of transgenic at high resolution and throughput.
微流控技术与光片荧光显微镜相结合的最新进展,为疾病模型的高通量和高内涵研究打开了大门。在本文中,我们报告了一种简单、小型化且低成本的光流控平台的开发,该平台可添加到传统倒置荧光显微镜上,用于对转基因蠕虫群体进行连续光片成像,横向分辨率和轴向分辨率分别高达1.1 µm和2.4 µm。该光流控装置完全由聚二甲基硅氧烷(PDMS)制成,并集成了用于产生光片的光学元件。通过一个低成本的自由空间激光器将激光激发传递到该装置,当蠕虫群体连续通过一个通道时,对其横截面进行成像。结果表明,该平台能够以每分钟超过20条蠕虫的通量对具有全神经荧光表达的NW1229蠕虫进行成像,成像阶段为L3期和年轻成虫(YA)期。作为一项基准测试,我们表明,当暴露于500 µM的6-羟基多巴胺(6-OHDA)神经退行性试剂时,这种低成本装置能够量化L3期和YA期NW1229蠕虫神经元表达的减少。在基准验证之后,我们将该平台用于一项新的应用,即对帕金森转基因模型(ERS100)群体中的人类α-突触核蛋白报告基因进行成像。结果表明,该低成本平台能够以高空间分辨率可靠地检测和量化ERS100群体在L3期和YA期的异常神经表型变化。本研究结果表明,我们的低成本光流控附加平台有潜力为传统荧光显微镜配备光片功能,用于对转基因生物进行高分辨率和高通量的定量表型研究。