Bruce Natalie, Farrell Francesca, Xie Enyuan, Scullion Mark G, Haughey Anne-Marie, Gu Erdan, Dawson Martin D, Laurand Nicolas
Institute of Photonics, Department of Physics, SUPA, University of Strathclyde, Glasgow, UK.
Fraunhofer Centre for Applied Photonics, 99 George Street, Glasgow, UK.
Biomed Opt Express. 2023 Feb 10;14(3):1107-1118. doi: 10.1364/BOE.478276. eCollection 2023 Mar 1.
A fluorescence sensor with the capability for spatially multiplexed measurements utilizing smartphone detection is presented. Bioconjugated quantum dots are used as the fluorescent tag and are excited using a blue-emitting microLED (µLED). The 1-dimensional GaN µLED array is butt-coupled to one edge of the glass slide to take advantage of total internal reflection fluorescence (TIRF) principles. The bioassays on the top surface of the glass waveguide are excited and the resultant fluorescence is detected with the smartphone. The red, green, and blue channels of the digital image are utilized to spectrally separate the excitation light from the fluorescence for analysis. Using a biotin-functionalized glass slide as proof of principle, we have shown that streptavidin conjugated quantum dots can be detected down to a concentration of 8 nM.
本文介绍了一种利用智能手机检测进行空间复用测量的荧光传感器。生物共轭量子点用作荧光标签,并使用蓝色发光微发光二极管(µLED)进行激发。一维氮化镓µLED阵列与载玻片的一条边缘对接耦合,以利用全内反射荧光(TIRF)原理。玻璃波导顶面上的生物测定被激发,产生的荧光由智能手机检测。利用数字图像的红、绿、蓝通道在光谱上分离激发光和荧光以进行分析。使用生物素功能化载玻片作为原理验证,我们已证明可检测到低至8 nM浓度的链霉亲和素共轭量子点。