Dynamic analysis of MAPK signaling using a high-throughput microfluidic single-cell imaging platform
- 10 March 2009
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 106 (10) , 3758-3763
- https://doi.org/10.1073/pnas.0813416106
Abstract
Cells have evolved biomolecular networks that process and respond to changing chemical environments. Understanding how complex protein interactions give rise to emergent network properties requires time-resolved analysis of cellular response under a large number of genetic perturbations and chemical environments. To date, the lack of technologies for scalable cell analysis under well-controlled and time-varying conditions has made such global studies either impossible or impractical. To address this need, we have developed a high-throughput microfluidic imaging platform for single-cell studies of network response under hundreds of combined genetic perturbations and time-varying stimulant sequences. Our platform combines programmable on-chip mixing and perfusion with high-throughput image acquisition and processing to perform 256 simultaneous time-lapse live-cell imaging experiments. Nonadherent cells are captured in an array of 2,048 microfluidic cell traps to allow for the imaging of eight different genotypes over 12 h and in response to 32 unique sequences of stimulation, generating a total of 49,000 images per run. Using 12 devices, we carried out >3,000 live-cell imaging experiments to investigate the mating pheromone response in Saccharomyces cerevisiae under combined genetic perturbations and changing environmental conditions. Comprehensive analysis of 11 deletion mutants reveals both distinct thresholds for morphological switching and new dynamic phenotypes that are not observed in static conditions. For example, kss1Δ, fus3Δ, msg5Δ, and ptp2Δ mutants exhibit distinctive stimulus-frequency-dependent signaling phenotypes, implicating their role in filtering and network memory. The combination of parallel microfluidic control with high-throughput imaging provides a powerful tool for systems-level studies of single-cell decision making.Keywords
This publication has 48 references indexed in Scilit:
- High Content Cell Screening in a Microfluidic DeviceMolecular & Cellular Proteomics, 2009
- Negative feedback that improves information transmission in yeast signallingNature, 2008
- Metabolic gene regulation in a dynamically changing environmentNature, 2008
- Regulation of Cell Signaling Dynamics by the Protein Kinase-Scaffold Ste5Molecular Cell, 2008
- Signal processing by the HOG MAP kinase pathwayProceedings of the National Academy of Sciences, 2008
- Function and regulation in MAPK signaling pathways: Lessons learned from the yeast Saccharomyces cerevisiaePublished by Elsevier ,2007
- Positive-Feedback Loops as a Flexible Biological ModuleCurrent Biology, 2007
- A high-throughput microfluidic real-time gene expression living cell arrayLab on a Chip, 2006
- Real-Time Kinetics of Gene Activity in Individual BacteriaCell, 2005
- Targeting RAS signalling pathways in cancer therapyNature Reviews Cancer, 2003