Wen Kechun, Meng Xin, Wang Chengxi, Zhao Jingyang, Botros Samantha, Lin Qiao
Department of Mechanical Engineering, Columbia University, New York, NY, 10027, USA.
Sens Actuators B Chem. 2024 Feb 15;401. doi: 10.1016/j.snb.2023.135018. Epub 2023 Nov 19.
Kinetic measurement plays a crucial role in understanding aptamer binding mechanisms and identifying appropriate aptamers for clinical and research applications. Current techniques, while well established, generally require large sample volumes, bulky and expensive instruments operated by trained personnel, and are hence not readily accessible to resource-limited research laboratories. This paper presents a fluorescence microscopy-based microfluidic assay for measuring aptamer-analyte binding kinetics in a simple and cost-effective manner. Kinetic measurements are achieved by monitoring time-course fluorescence of fluorescently labeled aptamers as they bind to the targets trapped in a microfluidic chip. Fluorescence measurements are performed on a standard fluorescence microscope and are accessible to laboratories with only modest resources. Moreover, microfluidic technology allows efficient and cost-effective immobilization of small amounts of target molecules or live cells as well as flow-based manipulation of aptamers for the measurements. Kinetic measurements of aptamer binding to immunoglobulin E protein and CCRF-CEM cells have yielded results consistent with those obtained from established methods, demonstrating the potential utility of our method for exploring aptamer-target interactions and identifying aptamers that best suit specific given biomedical applications.
动力学测量在理解适配体结合机制以及为临床和研究应用鉴定合适的适配体方面发挥着关键作用。当前的技术虽然已经成熟,但通常需要大量样本、由经过培训的人员操作的笨重且昂贵的仪器,因此资源有限的研究实验室难以轻易获得。本文介绍了一种基于荧光显微镜的微流控测定法,用于以简单且经济高效的方式测量适配体与分析物的结合动力学。通过监测荧光标记的适配体与捕获在微流控芯片中的靶标结合时的时间进程荧光来实现动力学测量。荧光测量在标准荧光显微镜上进行,资源有限的实验室也可进行。此外,微流控技术允许高效且经济高效地固定少量靶标分子或活细胞,以及对适配体进行基于流动的操作以进行测量。适配体与免疫球蛋白E蛋白和CCRF - CEM细胞结合的动力学测量结果与既定方法获得的结果一致,证明了我们的方法在探索适配体 - 靶标相互作用以及鉴定最适合特定生物医学应用的适配体方面的潜在效用。