TY - JOUR
T1 - Kinetic FRET Assay to Measure Binding-Induced Conformational Changes of Nucleic Acids
AU - Higuera-Rodriguez, R. Anahi
AU - De Pascali, Mareike C.
AU - Aziz, Masood
AU - Sattler, Michael
AU - Rant, Ulrich
AU - Kaiser, Wolfgang
N1 - Publisher Copyright:
© 2023 The Authors. Published by American Chemical Society
PY - 2023/12/22
Y1 - 2023/12/22
N2 - The interaction of small molecules or proteins with RNA or DNA often involves changes in the nucleic acid (NA) folding and structure. A biophysical characterization of these processes helps us to understand the underlying molecular mechanisms. Here, we propose kinFRET (kinetics Förster resonance energy transfer), a real-time ensemble FRET methodology to measure binding and folding kinetics. With kinFRET, the kinetics of conformational changes of NAs (DNA or RNA) upon analyte binding can be directly followed via a FRET signal using a chip-based biosensor. We demonstrate the utility of this approach with two representative examples. First, we monitored the conformational changes of different formats of an aptamer (MN19) upon interaction with small-molecule analytes. Second, we characterized the binding kinetics of RNA recognition by tandem K homology (KH) domains of the human insulin-like growth factor II mRNA-binding protein 3 (IMP3), which reveals distinct kinetic contributions of the two KH domains. Our data demonstrate that kinFRET is well suited to study the kinetics and conformational changes of NA-analyte interactions.
AB - The interaction of small molecules or proteins with RNA or DNA often involves changes in the nucleic acid (NA) folding and structure. A biophysical characterization of these processes helps us to understand the underlying molecular mechanisms. Here, we propose kinFRET (kinetics Förster resonance energy transfer), a real-time ensemble FRET methodology to measure binding and folding kinetics. With kinFRET, the kinetics of conformational changes of NAs (DNA or RNA) upon analyte binding can be directly followed via a FRET signal using a chip-based biosensor. We demonstrate the utility of this approach with two representative examples. First, we monitored the conformational changes of different formats of an aptamer (MN19) upon interaction with small-molecule analytes. Second, we characterized the binding kinetics of RNA recognition by tandem K homology (KH) domains of the human insulin-like growth factor II mRNA-binding protein 3 (IMP3), which reveals distinct kinetic contributions of the two KH domains. Our data demonstrate that kinFRET is well suited to study the kinetics and conformational changes of NA-analyte interactions.
KW - Förster resonance energy transfer
KW - RNA binding protein
KW - aptamer
KW - binding kinetics
KW - biosensors
KW - nucleic acid conformational changes
KW - switchSENSE technology
UR - http://www.scopus.com/inward/record.url?scp=85180114668&partnerID=8YFLogxK
U2 - 10.1021/acssensors.3c01527
DO - 10.1021/acssensors.3c01527
M3 - Article
AN - SCOPUS:85180114668
SN - 2379-3694
VL - 8
SP - 4597
EP - 4606
JO - ACS Sensors
JF - ACS Sensors
IS - 12
ER -