| Literature DB >> 29604810 |
Antonino Ingargiola1, Maya Segal1, Angelo Gulinatti2, Ivan Rech2, Ivan Labanca2, Piera Maccagnani3, Massimo Ghioni2, Shimon Weiss1, Xavier Michalet1.
Abstract
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.Entities:
Mesh:
Substances:
Year: 2018 PMID: 29604810 PMCID: PMC5669981 DOI: 10.1063/1.5000742
Source DB: PubMed Journal: J Chem Phys ISSN: 0021-9606 Impact factor: 3.488