scholarly journals Probing DNA ‐ Transcription Factor Interactions Using Single‐Molecule Fluorescence Detection in Nanofluidic Devices

2021 ◽  
pp. 2100953
Author(s):  
Mattia Fontana ◽  
Šarunė Ivanovaitė ◽  
Simon Lindhoud ◽  
Elmar van der Wijk ◽  
Klaus Mathwig ◽  
...  
2021 ◽  
Author(s):  
Mattia Fontana ◽  
Ŝarūnė Ivanovaitė ◽  
Simon Lindhoud ◽  
Willy van den Berg ◽  
Dolf Weijers ◽  
...  

Single-molecule fluorescence detection offers powerful ways to study biomolecules and their complex interactions. Here, we combine nanofluidic devices and camera-based, single-molecule Foerster resonance energy transfer (smFRET) detection to study the interactions between plant transcription factors of the Auxin response family (ARF) and DNA oligonucleotides that contain target DNA response elements. In particular, we show that the binding of the unlabelled ARF DNA binding domain (ARF-DBD) to donor and acceptor labelled DNA oligonucleotides can be detected by changes in the FRET efficiency and changes in the diffusion coefficient of the DNA. In addition, our data on fluorescently labelled ARF-DBDs suggest that, at nanomolar concentrations, ARF-DBDs are exclusively present as monomers. In general, the fluidic framework of freely diffusing molecules minimizes potential surface-induced artefacts, enables high-throughput measurements and proved to be instrumental in shedding more light on the interactions between ARF-DBDs monomers and between ARF-DBDs and their DNA response element.


ChemPhysChem ◽  
2016 ◽  
Vol 17 (21) ◽  
pp. 3442-3446 ◽  
Author(s):  
Charlotte E. Dalton ◽  
Steven D. Quinn ◽  
Aidan Rafferty ◽  
Michael J. Morten ◽  
John M. Gardiner ◽  
...  

2014 ◽  
Author(s):  
Mitsushiro Yamaguchi ◽  
Tetsuya Tanabe ◽  
Hidetaka Nakata ◽  
Takuya Hanashi ◽  
Kazutaka Nishikawa ◽  
...  

Molecules ◽  
2019 ◽  
Vol 24 (14) ◽  
pp. 2557 ◽  
Author(s):  
Dolev Hagai ◽  
Eitan Lerner

Single-molecule fluorescence detection (SMFD) experiments are useful in distinguishing sub-populations of molecular species when measuring heterogeneous samples. One experimental platform for SMFD is based on a confocal microscope, where molecules randomly traverse an effective detection volume. The non-uniformity of the excitation profile and the random nature of Brownian motion, produce fluctuating fluorescence signals. For these signals to be distinguished from the background, burst analysis is frequently used. Yet, the relation between the results of burst analyses and the underlying information of the diffusing molecules is still obscure and requires systematic assessment. In this work we performed three-dimensional Brownian motion simulations of SMFD, and tested the positions at which molecules emitted photons that passed the burst analysis criteria for different values of burst analysis parameters. The results of this work verify which of the burst analysis parameters and experimental conditions influence both the position of molecules in space when fluorescence is detected and taken into account, and whether these bursts of photons arise purely from single molecules, or not entirely. Finally, we show, as an example, the effect of bursts that are not purely from a single molecule on the accuracy in single-molecule Förster resonance energy transfer measurements.


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