Statistical mechanical model of coupled transcription from multiple promoters due to transcription factor titration
Abstract
Transcription factors (TFs) with regulatory action at multiple promoter targets is the rule rather than the exception, with examples ranging from the cAMP receptor protein (CRP) in E. coli that regulates hundreds of different genes simultaneously to situations involving multiple copies of the same gene, such as plasmids, retrotransposons, or highly replicated viral DNA. When the number of TFs heavily exceeds the number of binding sites, TF binding to each promoter can be regarded as independent. However, when the number of TF molecules is comparable to the number of binding sites, TF titration will result in correlation ("promoter entanglement") between transcription of different genes. We develop a statistical mechanical model which takes the TF titration effect into account and use it to predict both the level of gene expression for a general set of promoters and the resulting correlation in transcription rates of different genes. Our results show that the TF titration effect could be important for understanding gene expression in many regulatory settings.
Additional Information
© 2014 American Physical Society. Received 15 October 2012; revised manuscript received 4 October 2013; published 6 January 2014. We wish to thank Robert Brewster and Franz Weinert for useful discussions. Research reported in this publication was supported by the National Institute of General Medical Sciences of the National Institutes of Health under Award No. R01 GM085286 and No. R01 GM085286-01S (M.R., H.H.G., R.P.), as well as National Institutes of Health Pioneer Award No. DP1 OD000217 (H.G.G., R.P.). The content is solely the responsibility of the authors and does not necessarily represent the official views of the National Institutes of Health.Attached Files
Published - PhysRevE.89.012702.pdf
Supplemental Material - TFTitration_SI.nb
Supplemental Material - TFTitration_SI.pdf
Files
Additional details
- PMCID
- PMC4043999
- Eprint ID
- 44660
- Resolver ID
- CaltechAUTHORS:20140404-102949606
- NIH
- R01 GM085286
- NIH
- R01 GM085286-01S
- NIH
- DP1 OD000217
- Created
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2014-04-04Created from EPrint's datestamp field
- Updated
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2021-11-10Created from EPrint's last_modified field