Results 1 to 10 of about 8,058,982 (114)

Understanding of Förster Resonance Energy Transfer (FRET) in Ionic Materials

open access: yesSustainable Chemistry, 2021
Herein, an ionic material (IM) with Förster Resonance Energy Transfer (FRET) characteristics is reported for the first time. The IM is designed by pairing a Nile Blue A cation (NBA+) with an anionic near-infrared (NIR) dye, IR820−, using a facile ion ...
Amanda Jalihal   +6 more
doaj   +2 more sources

Förster resonance energy transfer: Role of diffusion of fluorophore orientation and separation in observed shifts of FRET efficiency. [PDF]

open access: yesPLoS ONE, 2017
Förster resonance energy transfer (FRET) is a widely used single-molecule technique for measuring nanoscale distances from changes in the non-radiative transfer of energy between donor and acceptor fluorophores.
Bram Wallace, Paul J Atzberger
doaj   +3 more sources

Quantum Dots (QD-Dye Conjugate) are Ideal Candidates for FRET Investigations Using TIRMicroscopy [PDF]

open access: yesEngineering and Technology Journal, 2014
Total Internal Reflection Microscopy has been employed to investigate Förster resonance energy transfer FRET for QD-dye conjugate system. QDs based donor systems are ideal for FRET for many reasons, one of them is that their broad excitation cross ...
Asma H. Mohammed
doaj   +1 more source

Integration of FRET and sequencing to engineer kinase biosensors from mammalian cell libraries

open access: yesNature Communications, 2021
Existing Förster Resonance Energy Transfer (FRET) biosensors are often limited in their sensitivity. Here the authors report FRET-seq which they use to identify Fyn and ZAP70 kinase biosensors with enhanced performance, and use them to image T-cell ...
Longwei Liu   +14 more
doaj   +1 more source

Photoexcitation dynamics and energy engineering in supramolecular doping of organic conjugated molecules

open access: yesLight: Science & Applications, 2023
The supramolecular coordination doping/blending allow for intermolecular Förster resonance energy transfer (FRET) and intramolecular charge transfer (ICT) in doping/blending films, endowing films with tunable bandgap, high PLQY and high conductivity.
Xiang An   +13 more
doaj   +1 more source

Electroporation and microinjection successfully deliver single-stranded and duplex DNA into live cells as detected by FRET measurements. [PDF]

open access: yesPLoS ONE, 2014
Förster resonance energy transfer (FRET) technology relies on the close proximity of two compatible fluorophores for energy transfer. Tagged (Cy3 and Cy5) complementary DNA strands forming a stable duplex and a doubly-tagged single strand were shown to ...
Rosemary A Bamford   +6 more
doaj   +1 more source

A STING-based biosensor affords broad cyclic dinucleotide detection within single living eukaryotic cells

open access: yesNature Communications, 2020
Cyclic dinucleotides are conserved second messengers but current detection methods are limited. Here the authors engineer a Förster resonance energy transfer (FRET) based biosensor, BioSTING, which gives real-time in vitro detection of these nucleotides.
Alex J. Pollock   +2 more
doaj   +1 more source

Turn on fluorescence sensor for specific detection of glycoligand-receptor recognitions based graphene oxide nanocomposite

open access: yesResults in Chemistry, 2021
We have developed a galactosyl amino-naphthalimide based graphene oxide nanocomposite FN@GO that uses a unique mechanism: Förster resonance energy-transfer (FRET) controlled by interaction between ligands and receptors.
Faqiong Ou   +4 more
doaj   +1 more source

Large Scale Bacterial Colony Screening of Diversified FRET Biosensors. [PDF]

open access: yesPLoS ONE, 2015
Biosensors based on Förster Resonance Energy Transfer (FRET) between fluorescent protein mutants have started to revolutionize physiology and biochemistry.
Julia Litzlbauer   +5 more
doaj   +1 more source

Engineering Genetically Encoded FRET Sensors

open access: yesSensors, 2014
Förster Resonance Energy Transfer (FRET) between two fluorescent proteins can be exploited to create fully genetically encoded and thus subcellularly targetable sensors.
Laurens Lindenburg, Maarten Merkx
doaj   +1 more source

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