Monitoring dynamics of single‐cell gene expression over multiple cell cycles
- 1 January 2005
- journal article
- research article
- Published by Springer Nature in Molecular Systems Biology
- Vol. 1 (1) , 2005.0024
- https://doi.org/10.1038/msb4100032
Abstract
Recent progress in reconstructing gene regulatory networks has established a framework for a quantitative description of the dynamics of many important cellular processes. Such a description will require novel experimental techniques that enable the generation of time‐series data for the governing regulatory proteins in a large number of individual living cells. Here, we utilize microfabrication to construct a Tesla microchemostat that permits single‐cell fluorescence imaging of gene expression over many cellular generations. The device is used to capture and constrain asymmetrically dividing or motile cells within a trapping region and to deliver nutrients and regulate the cellular population within this region. We illustrate the operation of the microchemostat with Saccharomyces cerevisiae and explore the evolution of single‐cell gene expression and cycle time as a function of generation. Our findings highlight the importance of novel assays for quantifying the dynamics of gene expression and cellular growth, and establish a methodology for exploring the effects of gene expression on long‐term processes such as cellular aging. Mol Syst Biol. 1: 2005.0024Keywords
This publication has 32 references indexed in Scilit:
- Long-Term Monitoring of Bacteria Undergoing Programmed Population Control in a MicrochemostatScience, 2005
- Molecular interaction map of the p53 and Mdm2 logic elements, which control the Off–On switch of p53 in response to DNA damageBiochemical and Biophysical Research Communications, 2005
- Aging and genetic instability in yeastCurrent Opinion in Microbiology, 2004
- Checking on DNA damage in S phaseNature Reviews Molecular Cell Biology, 2004
- Network responses to DNA damaging agentsDNA Repair, 2004
- Dynamic Gene Expression Profiling Using a Microfabricated Living Cell ArrayAnalytical Chemistry, 2004
- Microfluidics in structural biology: smaller, faster… betterCurrent Opinion in Structural Biology, 2003
- Engineered gene circuitsNature, 2002
- Serial Regulation of Transcriptional Regulators in the Yeast Cell CycleCell, 2001
- Rapid prototyping of microfluidic switches in poly(dimethyl siloxane) and their actuation by electro-osmotic flowJournal of Micromechanics and Microengineering, 1999