Gene Regulation at the Single-Cell Level
Top Cited Papers
- 25 March 2005
- journal article
- other
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 307 (5717) , 1962-1965
- https://doi.org/10.1126/science.1106914
Abstract
The quantitative relation between transcription factor concentrations and the rate of protein production from downstream genes is central to the function of genetic networks. Here we show that this relation, which we call the gene regulation function (GRF), fluctuates dynamically in individual living cells, thereby limiting the accuracy with which transcriptional genetic circuits can transfer signals. Using fluorescent reporter genes and fusion proteins, we characterized the bacteriophage lambda promoter P R in Escherichia coli . A novel technique based on binomial errors in protein partitioning enabled calibration of in vivo biochemical parameters in molecular units. We found that protein production rates fluctuate over a time scale of about one cell cycle, while intrinsic noise decays rapidly. Thus, biochemical parameters, noise, and slowly varying cellular states together determine the effective single-cell GRF. These results can form a basis for quantitative modeling of natural gene circuits and for design of synthetic ones.Keywords
This publication has 27 references indexed in Scilit:
- Prediction and measurement of an autoregulatory genetic moduleProceedings of the National Academy of Sciences, 2003
- Negative Autoregulation Speeds the Response Times of Transcription NetworksJournal of Molecular Biology, 2002
- Network motifs in the transcriptional regulation network of Escherichia coliNature Genetics, 2002
- A Genomic Regulatory Network for DevelopmentScience, 2002
- Positive feedback in eukaryotic gene networks: cell differentiation by graded to binary response conversionThe EMBO Journal, 2001
- A synthetic oscillatory network of transcriptional regulatorsNature, 2000
- Construction of a genetic toggle switch in Escherichia coliNature, 2000
- The Biochemical Basis of an All-or-None Cell Fate Switch in Xenopus OocytesScience, 1998
- Circuit Simulation of Genetic NetworksScience, 1995
- Site-specific enthalpic regulation of DNA transcription at bacteriophage .lambda. ORBiochemistry, 1992