Literature DB >> 12779458

From simple to complex oscillatory behavior in metabolic and genetic control networks.

Albert Goldbeter1, Didier Gonze, Gerald Houart, Jean-Christophe Leloup, Jose Halloy, Genevieve Dupont.   

Abstract

We present an overview of mechanisms responsible for simple or complex oscillatory behavior in metabolic and genetic control networks. Besides simple periodic behavior corresponding to the evolution toward a limit cycle we consider complex modes of oscillatory behavior such as complex periodic oscillations of the bursting type and chaos. Multiple attractors are also discussed, e.g., the coexistence between a stable steady state and a stable limit cycle (hard excitation), or the coexistence between two simultaneously stable limit cycles (birhythmicity). We discuss mechanisms responsible for the transition from simple to complex oscillatory behavior by means of a number of models serving as selected examples. The models were originally proposed to account for simple periodic oscillations observed experimentally at the cellular level in a variety of biological systems. In a second stage, these models were modified to allow for complex oscillatory phenomena such as bursting, birhythmicity, or chaos. We consider successively (1) models based on enzyme regulation, proposed for glycolytic oscillations and for the control of successive phases of the cell cycle, respectively; (2) a model for intracellular Ca(2+) oscillations based on transport regulation; (3) a model for oscillations of cyclic AMP based on receptor desensitization in Dictyostelium cells; and (4) a model based on genetic regulation for circadian rhythms in Drosophila. Two main classes of mechanism leading from simple to complex oscillatory behavior are identified, namely (i) the interplay between two endogenous oscillatory mechanisms, which can take multiple forms, overt or more subtle, depending on whether the two oscillators each involve their own regulatory feedback loop or share a common feedback loop while differing by some related process, and (ii) self-modulation of the oscillator through feedback from the system's output on one of the parameters controlling oscillatory behavior. However, the latter mechanism may also be viewed as involving the interplay between two feedback processes, each of which might be capable of producing oscillations. Although our discussion primarily focuses on the case of autonomous oscillatory behavior, we also consider the case of nonautonomous complex oscillations in a model for circadian oscillations subjected to periodic forcing by a light-dark cycle and show that the occurrence of entrainment versus chaos in these conditions markedly depends on the wave form of periodic forcing. (c) 2001 American Institute of Physics.

Entities:  

Year:  2001        PMID: 12779458     DOI: 10.1063/1.1345727

Source DB:  PubMed          Journal:  Chaos        ISSN: 1054-1500            Impact factor:   3.642


  18 in total

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5.  Genetic redundancy strengthens the circadian clock leading to a narrow entrainment range.

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6.  Subharmonics and Chaos in Simple Periodically Forced Biomolecular Models.

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Journal:  Biophys J       Date:  2018-03-13       Impact factor: 4.033

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8.  Vector field embryogeny.

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9.  Robust, tunable biological oscillations from interlinked positive and negative feedback loops.

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10.  Negative feedback governs gonadotrope frequency-decoding of gonadotropin releasing hormone pulse-frequency.

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Journal:  PLoS One       Date:  2009-09-29       Impact factor: 3.240

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