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Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules

Single-molecule fluorescence has been highly instrumental in elucidating interactions and dynamics of biological molecules in the past two decades. Single-molecule fluorescence experiments usually rely on one of two detection geometries, either confocal point-detection or wide-field area detection,...

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Autores principales: Gilboa, Barak, Jing, Bo, Cui, Tao J., Sow, Maabur, Plochowietz, Anne, Mazumder, Abhishek, Kapanidis, Achillefs N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Biophysical Society 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6895709/
https://www.ncbi.nlm.nih.gov/pubmed/31711608
http://dx.doi.org/10.1016/j.bpj.2019.10.033
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author Gilboa, Barak
Jing, Bo
Cui, Tao J.
Sow, Maabur
Plochowietz, Anne
Mazumder, Abhishek
Kapanidis, Achillefs N.
author_facet Gilboa, Barak
Jing, Bo
Cui, Tao J.
Sow, Maabur
Plochowietz, Anne
Mazumder, Abhishek
Kapanidis, Achillefs N.
author_sort Gilboa, Barak
collection PubMed
description Single-molecule fluorescence has been highly instrumental in elucidating interactions and dynamics of biological molecules in the past two decades. Single-molecule fluorescence experiments usually rely on one of two detection geometries, either confocal point-detection or wide-field area detection, typically in a total internal reflection fluorescence (TIRF) format. However, each of these techniques suffers from fundamental drawbacks that limit their application. In this work, we present a new technique, solution wide-field imaging (SWiFi) of diffusing molecules, as an alternative to the existing methods. SWiFi is a simple extension to existing objective-type TIRF microscopes that allows wide-field observations of fast-diffusing molecules down to single fluorophores without the need of tethering the molecules to the surface. We demonstrate that SWiFi enables high-throughput ratiometric measurements with several thousands of individual data points per minute on double-stranded DNA standard (dsDNA) samples containing Förster resonance energy transfer pairs. We further display the capabilities of SWiFi by reporting on mobility and ratiometric characterization of fluorescent nanodiamonds, DNA Holliday junctions, and protein-DNA interactions. The ability of SWiFi for high-throughput, ratiometric measurements of fast-diffusing species renders it a valuable tool for the single-molecule research community by bridging between confocal and TIRF detection geometries in a simple and efficient way.
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spelling pubmed-68957092020-01-30 Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules Gilboa, Barak Jing, Bo Cui, Tao J. Sow, Maabur Plochowietz, Anne Mazumder, Abhishek Kapanidis, Achillefs N. Biophys J Articles Single-molecule fluorescence has been highly instrumental in elucidating interactions and dynamics of biological molecules in the past two decades. Single-molecule fluorescence experiments usually rely on one of two detection geometries, either confocal point-detection or wide-field area detection, typically in a total internal reflection fluorescence (TIRF) format. However, each of these techniques suffers from fundamental drawbacks that limit their application. In this work, we present a new technique, solution wide-field imaging (SWiFi) of diffusing molecules, as an alternative to the existing methods. SWiFi is a simple extension to existing objective-type TIRF microscopes that allows wide-field observations of fast-diffusing molecules down to single fluorophores without the need of tethering the molecules to the surface. We demonstrate that SWiFi enables high-throughput ratiometric measurements with several thousands of individual data points per minute on double-stranded DNA standard (dsDNA) samples containing Förster resonance energy transfer pairs. We further display the capabilities of SWiFi by reporting on mobility and ratiometric characterization of fluorescent nanodiamonds, DNA Holliday junctions, and protein-DNA interactions. The ability of SWiFi for high-throughput, ratiometric measurements of fast-diffusing species renders it a valuable tool for the single-molecule research community by bridging between confocal and TIRF detection geometries in a simple and efficient way. The Biophysical Society 2019-12-03 2019-10-31 /pmc/articles/PMC6895709/ /pubmed/31711608 http://dx.doi.org/10.1016/j.bpj.2019.10.033 Text en © 2019 Biophysical Society. http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Articles
Gilboa, Barak
Jing, Bo
Cui, Tao J.
Sow, Maabur
Plochowietz, Anne
Mazumder, Abhishek
Kapanidis, Achillefs N.
Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title_full Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title_fullStr Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title_full_unstemmed Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title_short Confinement-Free Wide-Field Ratiometric Tracking of Single Fluorescent Molecules
title_sort confinement-free wide-field ratiometric tracking of single fluorescent molecules
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6895709/
https://www.ncbi.nlm.nih.gov/pubmed/31711608
http://dx.doi.org/10.1016/j.bpj.2019.10.033
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