Bio Pilot Plant, Leibniz Institute for Natural Product Research and Infection Biology, Hans Knöll Institute, 07745, Jena, Germany; Faculty of Biological Sciences, Friedrich Schiller University, 07743, Jena, Germany.
Bio Pilot Plant, Leibniz Institute for Natural Product Research and Infection Biology, Hans Knöll Institute, 07745, Jena, Germany.
Biosens Bioelectron. 2022 Mar 15;200:113910. doi: 10.1016/j.bios.2021.113910. Epub 2021 Dec 23.
Droplet microfluidics offers a unique opportunity for ultrahigh-throughput experimentation with minimal sample consumption and thus has obtained increasing attention, particularly for biological applications. Detection and measurements of analytes or biomarkers in tiny droplets are essential for proper analysis of biological and chemical assays like single-cell studies, cytometry, nucleic acid detection, protein quantification, environmental monitoring, drug discovery, and point-of-care diagnostics. Current detection setups widely use microscopes as a central device and other free-space optical components. However, microscopic setups are bulky, complicated, not flexible, and expensive. Furthermore, they require precise optical alignments, specialized optical and technical knowledge, and cumbersome maintenance. The establishment of efficient, simple, and cheap detection methods is one of the bottlenecks for adopting microfluidic strategies for diverse bioanalytical applications and widespread laboratory use. Together with great advances in optofluidic components, the integration of optical fibers as a light guiding medium into microfluidic chips has recently revolutionized analytical possibilities. Optical fibers embedded in a microfluidic platform provide a simpler, more flexible, lower-cost, and sensitive setup for the detection of several parameters from biological and chemical samples and enable widespread, hands-on application much beyond thriving point-of-care developments. In this review, we examine recent developments in droplet microfluidic systems using optical fiber as a light guiding medium, primarily focusing on different optical detection methods such as fluorescence, absorbance, light scattering, and Raman scattering and the potential applications in biochemistry and biotechnology that are and will be arising from this.
液滴微流控技术为超高通量实验提供了一个独特的机会,只需消耗极少的样本,因此受到了越来越多的关注,尤其是在生物应用方面。在微小液滴中检测和测量分析物或生物标志物对于正确分析单细胞研究、细胞计数、核酸检测、蛋白质定量、环境监测、药物发现和即时诊断等生物和化学分析至关重要。目前的检测设备广泛使用显微镜作为核心设备和其他自由空间光学元件。然而,显微镜设备体积庞大、复杂、不灵活且昂贵。此外,它们需要精确的光学对准、专业的光学和技术知识以及繁琐的维护。建立高效、简单和廉价的检测方法是采用微流控策略进行各种生物分析应用和广泛实验室应用的瓶颈之一。随着光电组件的巨大进步,光纤作为光导介质集成到微流控芯片中,最近彻底改变了分析的可能性。嵌入在微流控平台中的光纤为从生物和化学样品中检测多个参数提供了一种更简单、更灵活、成本更低、更灵敏的设置,并使广泛的、易于操作的应用超出了蓬勃发展的即时诊断发展。在这篇综述中,我们检查了使用光纤作为光导介质的液滴微流控系统的最新发展,主要关注不同的光学检测方法,如荧光、吸收、光散射和拉曼散射,以及它们在生物化学和生物技术中的潜在应用。