Hedde Per Niklas, Abram Tim, Vu Tam, Zhao Weian, Gratton Enrico
Laboratory for Fluorescence Dynamics, Department of Biomedical Engineering, University of California Irvine, Irvine, CA, USA.
Velox Biosystems, 5 Mason St, Ste 160, Irvine, CA 92618, USA.
Biomed Opt Express. 2019 Feb 12;10(3):1223-1233. doi: 10.1364/BOE.10.001223. eCollection 2019 Mar 1.
Fluorescence-based single particle counting devices have become very powerful tools for human health-related applications such as the detection of blood-borne pathogens. Instead of passing the sample fluid through a thin tube or microfluidic chip, as it is commonly practiced in flow cytometers and sorter devices, single particle counters scan the fluid volume by rotation and translation of the sample container. Hence, single particle counters are not limited by the fluid flow friction and can scan a large volume in a short timeframe while maintaining high sensitivity. A single particle can be detected in a milliliter of the fluid sample within minutes, and diagnostics are being developed using this principle. Until now, signal detection with particle counters has been based on signal intensity and signal separation into multiple wavelength bands coupled with multiple detectors, which limits the number of species that can be resolved. In this paper, we applied fluorescence lifetime detection to single particle counting to increase specificity and enable multiplexing with a single detector. We demonstrate how this principle can be used for diagnostic assays based on fluorescence quenching.
基于荧光的单粒子计数设备已成为用于人类健康相关应用(如检测血源性病原体)的非常强大的工具。与流式细胞仪和分选设备中常见的将样品流体通过细管或微流控芯片不同,单粒子计数器通过旋转和平移样品容器来扫描流体体积。因此,单粒子计数器不受流体流动摩擦的限制,并且可以在短时间内扫描大量体积,同时保持高灵敏度。在几分钟内就可以在一毫升流体样品中检测到单个粒子,并且正在基于这一原理开发诊断方法。到目前为止,粒子计数器的信号检测一直基于信号强度以及将信号分离到多个波长带并结合多个探测器,这限制了能够分辨的物种数量。在本文中,我们将荧光寿命检测应用于单粒子计数,以提高特异性并实现使用单个探测器进行多路复用。我们展示了如何将这一原理用于基于荧光猝灭的诊断分析。