Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes

In addition to the helical nature of double-stranded DNA and RNA, single-stranded oligonucleotides can arrange themselves into tridimensional structures containing loops, bulges, internal hairpins and many other motifs. This ability has been used for more than two decades to generate oligonucleotide...

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Main Authors: Cibran Perez-Gonzalez, Daniel A Lafontaine, J Carlos Penedo
Format: Article
Language:English
Published: Frontiers Media S.A. 2016-08-01
Series:Frontiers in Chemistry
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fchem.2016.00033/full
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spelling doaj-4a6c043f13f34da9aa4c78b0fd22e6b72020-11-24T20:43:32ZengFrontiers Media S.A.Frontiers in Chemistry2296-26462016-08-01410.3389/fchem.2016.00033212404Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexesCibran Perez-Gonzalez0Daniel A Lafontaine1J Carlos Penedo2University of St AndrewsUniversity of SherbrookeUniversity of St AndrewsIn addition to the helical nature of double-stranded DNA and RNA, single-stranded oligonucleotides can arrange themselves into tridimensional structures containing loops, bulges, internal hairpins and many other motifs. This ability has been used for more than two decades to generate oligonucleotide sequences, so-called aptamers, that can recognize certain metabolites with high affinity and specificity. More recently, this library of artificially-generated nucleic acid aptamers has been expanded by the discovery that naturally occurring RNA sequences control bacterial gene expression in response to cellular concentration of a given metabolite. The application of fluorescence methods has been pivotal to characterize in detail the structure and dynamics of these aptamer-ligand complexes in solution. This is mostly due to the intrinsic high sensitivity of fluorescence methods and also to significant improvements in solid-phase synthesis, post-synthetic labelling strategies and optical instrumentation that took place during the last decade. In this work, we provide an overview of the most widely employed fluorescence methods to investigate aptamer structure and function by describing the use of aptamers labelled with a single dye in fluorescence quenching and anisotropy assays. The use of 2-aminopurine as a fluorescent analog of adenine to monitor local changes in structure and fluorescence resonance energy transfer (FRET) to follow long-range conformational changes is also covered in detail. The last part of the review is dedicated to the application of fluorescence techniques based on single-molecule microscopy, a technique that has revolutionized our understanding of nucleic acid structure and dynamics. We finally describe the advantages of monitoring ligand-binding and conformational changes, one molecule at a time, to decipher the complexity of regulatory aptamers and summarize the emerging folding and ligand-binding models arising from the application of these single-molecule FRET microscopy techniques.http://journal.frontiersin.org/Journal/10.3389/fchem.2016.00033/fullFluorescence Resonance Energy TransferfluorescenceBacterial gene regulationRiboswitchessingle molecule biophysicsaptamer dynamics
collection DOAJ
language English
format Article
sources DOAJ
author Cibran Perez-Gonzalez
Daniel A Lafontaine
J Carlos Penedo
spellingShingle Cibran Perez-Gonzalez
Daniel A Lafontaine
J Carlos Penedo
Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
Frontiers in Chemistry
Fluorescence Resonance Energy Transfer
fluorescence
Bacterial gene regulation
Riboswitches
single molecule biophysics
aptamer dynamics
author_facet Cibran Perez-Gonzalez
Daniel A Lafontaine
J Carlos Penedo
author_sort Cibran Perez-Gonzalez
title Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
title_short Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
title_full Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
title_fullStr Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
title_full_unstemmed Fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
title_sort fluorescence-based strategies to investigate the structure and dynamics of aptamer-ligand complexes
publisher Frontiers Media S.A.
series Frontiers in Chemistry
issn 2296-2646
publishDate 2016-08-01
description In addition to the helical nature of double-stranded DNA and RNA, single-stranded oligonucleotides can arrange themselves into tridimensional structures containing loops, bulges, internal hairpins and many other motifs. This ability has been used for more than two decades to generate oligonucleotide sequences, so-called aptamers, that can recognize certain metabolites with high affinity and specificity. More recently, this library of artificially-generated nucleic acid aptamers has been expanded by the discovery that naturally occurring RNA sequences control bacterial gene expression in response to cellular concentration of a given metabolite. The application of fluorescence methods has been pivotal to characterize in detail the structure and dynamics of these aptamer-ligand complexes in solution. This is mostly due to the intrinsic high sensitivity of fluorescence methods and also to significant improvements in solid-phase synthesis, post-synthetic labelling strategies and optical instrumentation that took place during the last decade. In this work, we provide an overview of the most widely employed fluorescence methods to investigate aptamer structure and function by describing the use of aptamers labelled with a single dye in fluorescence quenching and anisotropy assays. The use of 2-aminopurine as a fluorescent analog of adenine to monitor local changes in structure and fluorescence resonance energy transfer (FRET) to follow long-range conformational changes is also covered in detail. The last part of the review is dedicated to the application of fluorescence techniques based on single-molecule microscopy, a technique that has revolutionized our understanding of nucleic acid structure and dynamics. We finally describe the advantages of monitoring ligand-binding and conformational changes, one molecule at a time, to decipher the complexity of regulatory aptamers and summarize the emerging folding and ligand-binding models arising from the application of these single-molecule FRET microscopy techniques.
topic Fluorescence Resonance Energy Transfer
fluorescence
Bacterial gene regulation
Riboswitches
single molecule biophysics
aptamer dynamics
url http://journal.frontiersin.org/Journal/10.3389/fchem.2016.00033/full
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