This paper presents a novel microfluidic cytometer for mammalian cells that rapidly measures the irreversible photobleaching of red fluorescent proteins expressed within each cell and achieves high purity (.99%) selection of individual cells based on these measurements. The selection is achieved by using sub-millisecond timed control of a piezo-tilt mirror to steer a focused 1064-nm laser spot for optical gradient force switching following analysis of the fluorescence signals from passage of the cell through a series of 532-nm laser beams. In transit through each beam, the fluorescent proteins within the cell undergo conversion to dark states, but the microfluidic chip enables the cell to pass sufficiently slowly that recovery from reversib...
Cells naturally exist in a dynamic chemical environment, and therefore it is necessary to study cell...
We report on the development of an experimental platform where epi-fluorescence microscopy and optic...
Breakthroughs in our understanding of biological systems are driven by technological advancements th...
The discovery of the green fluorescent protein (GFP) launched the development of a wide variety of f...
Fluorescent proteins (FPs) are powerful tools that permit real-time visualization of cellular proces...
Traditional flow cytometers are capable of rapid cellular assays on the basis of fluorescence intens...
International audience11 Application of droplet-based microfluidics for the screening of microbial l...
Genetically encoded fluorescent proteins (FPs) are highly utilized in cell biology research to study...
This is the author accepted manuscript. The final version is available from Wiley via the DOI in thi...
Study of signal transduction in live cells benefits from the ability to visualize and quantify light...
International audience11 Application of droplet-based microfluidics for the screening of microbial l...
A novel method for studying unlabeled living mammalian cells based on their autofluorescence (AF) si...
A novel method for studying unlabeled living mammalian cells based on their autofluorescence (AF) si...
Study of signal transduction in live cells benefits from the ability to visualize and quantify light...
Cells naturally exist in a dynamic chemical environment, and therefore it is necessary to study cell...
Cells naturally exist in a dynamic chemical environment, and therefore it is necessary to study cell...
We report on the development of an experimental platform where epi-fluorescence microscopy and optic...
Breakthroughs in our understanding of biological systems are driven by technological advancements th...
The discovery of the green fluorescent protein (GFP) launched the development of a wide variety of f...
Fluorescent proteins (FPs) are powerful tools that permit real-time visualization of cellular proces...
Traditional flow cytometers are capable of rapid cellular assays on the basis of fluorescence intens...
International audience11 Application of droplet-based microfluidics for the screening of microbial l...
Genetically encoded fluorescent proteins (FPs) are highly utilized in cell biology research to study...
This is the author accepted manuscript. The final version is available from Wiley via the DOI in thi...
Study of signal transduction in live cells benefits from the ability to visualize and quantify light...
International audience11 Application of droplet-based microfluidics for the screening of microbial l...
A novel method for studying unlabeled living mammalian cells based on their autofluorescence (AF) si...
A novel method for studying unlabeled living mammalian cells based on their autofluorescence (AF) si...
Study of signal transduction in live cells benefits from the ability to visualize and quantify light...
Cells naturally exist in a dynamic chemical environment, and therefore it is necessary to study cell...
Cells naturally exist in a dynamic chemical environment, and therefore it is necessary to study cell...
We report on the development of an experimental platform where epi-fluorescence microscopy and optic...
Breakthroughs in our understanding of biological systems are driven by technological advancements th...