FRET-based methods are a special tool for detecting interactions between (bio)molecules and their immediate environment. The spatial distribution of molecular interactions and functional states can be seen using FLIM (Fluorescence Lifetime IMaging) and FRET imaging. The spatial information, accuracy, and dynamic range of the observed signals are, however, constrained by the fact that conventional FLIM and FRET imaging only provides average information over an ensemble of molecules within a diffraction-limited volume. On the other hand, conventional Single Molecule Localization Microscopy (SMLM) relies on highly sensitive multi-pixel detectors (e.g. sCMOS or EM-CCD) whose time resolution is not suitable for fluorescence lifetime measurements...
New imaging methodologies in quantitative fluorescence microscopy and nanoscopy have been developed ...
Fluorescence resonance energy transfer (FRET) between a donor (D) and an acceptor (A) at the single-...
Imaging the spatiotemporal interaction of proteins in vivo is essential to understanding the complex...
FRET-based approaches are a unique tool for sensing the immediate surroundings and interactions of (...
Fluorescence-lifetime single molecule localization microscopy (FL-SMLM) adds the lifetime dimension ...
DNA-PAINT is an optical super-resolution microscopy method that can visualize nanoscale protein arra...
International audienceNew imaging methodologies in quantitative fluorescence microscopy, such as För...
New imaging methodologies in quantitative fluorescence microscopy, such as Förster resonance energy ...
Correlating DNA-PAINT (point accumulation for imaging in nanoscale topography) and single-molecule F...
This image acquisition protocol is a basic plan for taking a fluorescence lifetime imaging (FLIM) se...
Super-resolution fluorescence microscopy and Förster Resonance Energy Transfer (FRET) form a well-es...
International audienceQuantitative analysis in F?er Resonance Energy Transfer (FRET) experiments in ...
Imaging the spatio-temporal interaction of proteins in vivo is essential to understanding the comple...
AbstractQuantitative analysis in Förster resonance energy transfer (FRET) experiments in live cells ...
Single molecule fluorescent lifetime trajectories of surface immobilized double-stranded DNA coupled...
New imaging methodologies in quantitative fluorescence microscopy and nanoscopy have been developed ...
Fluorescence resonance energy transfer (FRET) between a donor (D) and an acceptor (A) at the single-...
Imaging the spatiotemporal interaction of proteins in vivo is essential to understanding the complex...
FRET-based approaches are a unique tool for sensing the immediate surroundings and interactions of (...
Fluorescence-lifetime single molecule localization microscopy (FL-SMLM) adds the lifetime dimension ...
DNA-PAINT is an optical super-resolution microscopy method that can visualize nanoscale protein arra...
International audienceNew imaging methodologies in quantitative fluorescence microscopy, such as För...
New imaging methodologies in quantitative fluorescence microscopy, such as Förster resonance energy ...
Correlating DNA-PAINT (point accumulation for imaging in nanoscale topography) and single-molecule F...
This image acquisition protocol is a basic plan for taking a fluorescence lifetime imaging (FLIM) se...
Super-resolution fluorescence microscopy and Förster Resonance Energy Transfer (FRET) form a well-es...
International audienceQuantitative analysis in F?er Resonance Energy Transfer (FRET) experiments in ...
Imaging the spatio-temporal interaction of proteins in vivo is essential to understanding the comple...
AbstractQuantitative analysis in Förster resonance energy transfer (FRET) experiments in live cells ...
Single molecule fluorescent lifetime trajectories of surface immobilized double-stranded DNA coupled...
New imaging methodologies in quantitative fluorescence microscopy and nanoscopy have been developed ...
Fluorescence resonance energy transfer (FRET) between a donor (D) and an acceptor (A) at the single-...
Imaging the spatiotemporal interaction of proteins in vivo is essential to understanding the complex...