Literature DB >> 11805323

Synchronizing genetic relaxation oscillators by intercell signaling.

David McMillen1, Nancy Kopell, Jeff Hasty, J J Collins.   

Abstract

The ability to design and construct synthetic gene regulatory networks offers the prospect of studying issues related to cellular function in a simplified context; such networks also have many potential applications in biotechnology. A synthetic network exhibiting oscillatory behavior has recently been constructed [Elowitz, M. B. & Leibler, S. (2000) Nature (London) 403, 335-338]. It has also been shown that a natural bacterial quorum-sensing mechanism can be used in a synthetic system to communicate a signal between two populations of cells, such that receipt of the signal causes expression of a target gene [Weiss, R. & Knight, T. F. (2000) in DNA6: Sixth International Meeting on DNA-Based Computers, June 13-17, 2000, Leiden, The Netherlands]. We propose a synthetic gene network in Escherichia coli which combines these two features: the system acts as a relaxation oscillator and uses an intercell signaling mechanism to couple the oscillators and induce synchronous oscillations. We model the system and show that the proposed coupling scheme does lead to synchronous behavior across a population of cells. We provide an analytical treatment of the synchronization process, the dominant mechanism of which is "fast threshold modulation."

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Year:  2002        PMID: 11805323      PMCID: PMC117365          DOI: 10.1073/pnas.022642299

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  36 in total

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  53 in total

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Review 4.  A comparative analysis of synthetic genetic oscillators.

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7.  Power-rate synchronization of coupled genetic oscillators with unbounded time-varying delay.

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Review 9.  Biology by design: reduction and synthesis of cellular components and behaviour.

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Review 10.  The pedestrian watchmaker: genetic clocks from engineered oscillators.

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