Literature DB >> 16482159

A bottom-up approach to gene regulation.

Nicholas J Guido1, Xiao Wang, David Adalsteinsson, David McMillen, Jeff Hasty, Charles R Cantor, Timothy C Elston, J J Collins.   

Abstract

The ability to construct synthetic gene networks enables experimental investigations of deliberately simplified systems that can be compared to qualitative and quantitative models. If simple, well-characterized modules can be coupled together into more complex networks with behaviour that can be predicted from that of the individual components, we may begin to build an understanding of cellular regulatory processes from the 'bottom up'. Here we have engineered a promoter to allow simultaneous repression and activation of gene expression in Escherichia coli. We studied its behaviour in synthetic gene networks under increasingly complex conditions: unregulated, repressed, activated, and simultaneously repressed and activated. We develop a stochastic model that quantitatively captures the means and distributions of the expression from the engineered promoter of this modular system, and show that the model can be extended and used to accurately predict the in vivo behaviour of the network when it is expanded to include positive feedback. The model also reveals the counterintuitive prediction that noise in protein expression levels can increase upon arrest of cell growth and division, which we confirm experimentally. This work shows that the properties of regulatory subsystems can be used to predict the behaviour of larger, more complex regulatory networks, and that this bottom-up approach can provide insights into gene regulation.

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Year:  2006        PMID: 16482159     DOI: 10.1038/nature04473

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  133 in total

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Review 6.  Integration of structural dynamics and molecular evolution via protein interaction networks: a new era in genomic medicine.

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8.  Mathematical analysis and quantification of fluorescent proteins as transcriptional reporters.

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9.  Bottom-up approaches in synthetic biology and biomaterials for tissue engineering applications.

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10.  Engineering stochasticity in gene expression.

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