Department of Chemistry and Biochemistry, University of California, Los Angeles, California 90095, USA.
Dipartimento di Elettronica, Informazione e Bioingegneria, Politecnico di Milano, Milan, Italy.
J Chem Phys. 2018 Mar 28;148(12):123304. doi: 10.1063/1.5000742.
Single-molecule Förster resonance energy transfer (smFRET) allows measuring distances between donor and acceptor fluorophores on the 3-10 nm range. Solution-based smFRET allows measurement of binding-unbinding events or conformational changes of dye-labeled biomolecules without ensemble averaging and free from surface perturbations. When employing dual (or multi) laser excitation, smFRET allows resolving the number of fluorescent labels on each molecule, greatly enhancing the ability to study heterogeneous samples. A major drawback to solution-based smFRET is the low throughput, which renders repetitive measurements expensive and hinders the ability to study kinetic phenomena in real-time. Here we demonstrate a high-throughput smFRET system that multiplexes acquisition by using 48 excitation spots and two 48-pixel single-photon avalanche diode array detectors. The system employs two excitation lasers allowing separation of species with one or two active fluorophores. The performance of the system is demonstrated on a set of doubly labeled double-stranded DNA oligonucleotides with different distances between donor and acceptor dyes along the DNA duplex. We show that the acquisition time for accurate subpopulation identification is reduced from several minutes to seconds, opening the way to high-throughput screening applications and real-time kinetics studies of enzymatic reactions such as DNA transcription by bacterial RNA polymerase.
单分子Förster 共振能量转移(smFRET)可测量供体和受体荧光团之间的距离在 3-10nm 范围内。基于溶液的 smFRET 可测量染料标记生物分子的结合-解吸事件或构象变化,而无需进行整体平均且不受表面干扰。当采用双(或多)激光激发时,smFRET 可以分辨每个分子上的荧光标记数量,从而大大提高了研究异质样品的能力。基于溶液的 smFRET 的主要缺点是通量低,这使得重复测量成本高昂,并阻碍了实时研究动力学现象的能力。在这里,我们展示了一种高通量 smFRET 系统,该系统通过使用 48 个激发点和两个 48 像素单光子雪崩二极管阵列探测器来实现多路复用采集。该系统采用两个激发激光器,允许用一个或两个活性荧光团分离物种。我们使用一组带有不同供体和受体染料之间距离的双链 DNA 寡核苷酸来演示该系统的性能。我们表明,用于准确识别亚群的采集时间从几分钟缩短到几秒钟,为高通量筛选应用和实时动力学研究铺平了道路,例如细菌 RNA 聚合酶的 DNA 转录等酶反应。