Fluorescence and bioluminescence time-lapse imaging allows to investigate a vast range of cellular processes at single-cell or even subcellular resolution. In particular, time-lapse imaging can provide uniquely detailed information on the fine kinetics of transcription, as well as on biological oscillations such as the circadian and cell cycles. However, we face a paucity of automated methods to quantify time-lapse imaging data with single-cell precision, notably throughout multiple cell cycles. We developed CAST (Cell Automated Segmentation and Tracking platform) to automatically and robustly detect the position and size of cells or nuclei, quantify the corresponding light signals, while taking into account both cell divisions (lineage tra...
Identifying molecular mechanisms or therapeutic targets is typically based on large-scale cellular a...
Abstract Background Current methods of measuring tran...
Time-lapse microscopy can be described as the repeated collection of an image (in n-dimensions; x, y...
BACKGROUND: Fluorescent and bioluminescent time-lapse microscopy approaches have been successfully u...
The extraction of fluorescence time course data is a major bottleneck in high-throughput live-cell m...
The extraction of fluorescence time course data is a major bottleneck in high-throughput live-cell m...
In eukaryotic cells, RNA polymerase II synthesizes mRNA in three stages, initiation, elongation, and...
Single-cell analysis of circadian dynamics in tissue explants ABSTRACT Tracking molecular dynamics i...
Automated time-lapse microscopy can visualize proliferation of large numbers of individual cells, en...
Automated time-lapse microscopy can visualize proliferation of large numbers of individual cells, en...
Background: Automated time-lapse microscopy can visualize proliferation of large numbers of individu...
In prokaryotes and eukaryotes, most genes appear to be transcribed during short periods called trans...
International audienceFluorescence time-lapse imaging has become a powerful tool to investigate comp...
Advances in measurement techniques based on fluorescent tagging have enabled visualizing individual ...
Neural stem cell (NSC) cultures have been considered technically challenging for time-lapse analysis...
Identifying molecular mechanisms or therapeutic targets is typically based on large-scale cellular a...
Abstract Background Current methods of measuring tran...
Time-lapse microscopy can be described as the repeated collection of an image (in n-dimensions; x, y...
BACKGROUND: Fluorescent and bioluminescent time-lapse microscopy approaches have been successfully u...
The extraction of fluorescence time course data is a major bottleneck in high-throughput live-cell m...
The extraction of fluorescence time course data is a major bottleneck in high-throughput live-cell m...
In eukaryotic cells, RNA polymerase II synthesizes mRNA in three stages, initiation, elongation, and...
Single-cell analysis of circadian dynamics in tissue explants ABSTRACT Tracking molecular dynamics i...
Automated time-lapse microscopy can visualize proliferation of large numbers of individual cells, en...
Automated time-lapse microscopy can visualize proliferation of large numbers of individual cells, en...
Background: Automated time-lapse microscopy can visualize proliferation of large numbers of individu...
In prokaryotes and eukaryotes, most genes appear to be transcribed during short periods called trans...
International audienceFluorescence time-lapse imaging has become a powerful tool to investigate comp...
Advances in measurement techniques based on fluorescent tagging have enabled visualizing individual ...
Neural stem cell (NSC) cultures have been considered technically challenging for time-lapse analysis...
Identifying molecular mechanisms or therapeutic targets is typically based on large-scale cellular a...
Abstract Background Current methods of measuring tran...
Time-lapse microscopy can be described as the repeated collection of an image (in n-dimensions; x, y...