A new method of fluorescence microscopy for cell imaging has been developed that takes advantage of the spatial variations of fluorescence lifetimes in single cells as a source of image contrast, and thus it is named "fluorescence lifetime imaging microscopy (flimscopy)". Since time-resolved fluorescence measurements are sensitive to molecular dynamics and interactions, flimscopy allows the molecular information to be visualized in single cells. In flimscopy measurements, several (nanosecond) time-resolved fluorescence images of a sample are obtained at various delay times after pulsed laser excitation of the microscope's entire field of view. Lifetimes are calculated pixel-by-pixel from these time-resolved images, and the spatial variation...
Fluorescence techniques, based on both linear and non-linear excitation, have been widely used in bi...
The work presented here improves the level of quantification achievable with fluorescence microscopy...
We demonstrate diffraction limited multiphoton imaging in a massively parallel, fully addressable ti...
A new method of fluorescence microscopy for cell imaging has been developed that takes advantage of ...
Fluorescence lifetime sensing enables researchers to probe the physicochemical environment of a fluo...
A frequency domain fluorescence lifetime imaging microscope (FLIM) has been developed. A continuous ...
Fluorescence lifetime imaging (FLIM) is an effective noninvasive bioanalytical tool based on measuri...
For several biomedical issues, including neurobiology, imaging with high spatial and temporal resolu...
The quantitative understanding of cellular and molecular responses in living cells is important for ...
International audienceFluorescence lifetime is usually defined as the average nanosecond-scale delay...
Fluorescence lifetime imaging microscopy (FLIM) is a key technology that provides direct insight int...
AbstractFluorescence lifetime imaging microscopy (FLIM) is a quantitative microscopy technique for i...
Fluorescence Lifetime Imaging Microscopy (FLIM) is a powerful technique to investigate many biochemi...
Advances in time-resolved fluorescence spectroscopy can be applied to cellular imaging. Fluorescence...
Fluorescence lifetime imaging (FLIM) is a quantitative, intensity-independent microscopical method f...
Fluorescence techniques, based on both linear and non-linear excitation, have been widely used in bi...
The work presented here improves the level of quantification achievable with fluorescence microscopy...
We demonstrate diffraction limited multiphoton imaging in a massively parallel, fully addressable ti...
A new method of fluorescence microscopy for cell imaging has been developed that takes advantage of ...
Fluorescence lifetime sensing enables researchers to probe the physicochemical environment of a fluo...
A frequency domain fluorescence lifetime imaging microscope (FLIM) has been developed. A continuous ...
Fluorescence lifetime imaging (FLIM) is an effective noninvasive bioanalytical tool based on measuri...
For several biomedical issues, including neurobiology, imaging with high spatial and temporal resolu...
The quantitative understanding of cellular and molecular responses in living cells is important for ...
International audienceFluorescence lifetime is usually defined as the average nanosecond-scale delay...
Fluorescence lifetime imaging microscopy (FLIM) is a key technology that provides direct insight int...
AbstractFluorescence lifetime imaging microscopy (FLIM) is a quantitative microscopy technique for i...
Fluorescence Lifetime Imaging Microscopy (FLIM) is a powerful technique to investigate many biochemi...
Advances in time-resolved fluorescence spectroscopy can be applied to cellular imaging. Fluorescence...
Fluorescence lifetime imaging (FLIM) is a quantitative, intensity-independent microscopical method f...
Fluorescence techniques, based on both linear and non-linear excitation, have been widely used in bi...
The work presented here improves the level of quantification achievable with fluorescence microscopy...
We demonstrate diffraction limited multiphoton imaging in a massively parallel, fully addressable ti...