Biomolecular Implementation Of Nonlinear System Theoretic Operators

2016 EUROPEAN CONTROL CONFERENCE (ECC)(2016)

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摘要
Synthesis of biomolecular circuits for controlling molecular-scale processes is an important goal of synthetic biology with a wide range of in vitro and in vivo applications, including biomass maximization, nanoscale drug delivery, and many others. In this paper, we present new results on how abstract chemical reactions can be used to implement commonly used system theoretic operators such as the polynomial functions, rational functions and Hill-type nonlinearity. We first describe how idealised versions of multi-molecular reactions, catalysis, annihilation, and degradation can be combined to implement these operators. We then show how such chemical reactions can be implemented using enzyme-free, entropy driven DNA reactions. Our results are illustrated through three applications: (1) implementation of a Stan-Sepulchre oscillator, (2) the computation of the ratio of two signals, and (3) a PI+antiwindup controller for regulating the output of a static nonlinear plant.
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关键词
biomolecular implementation,nonlinear system theoretic operators,biomolecular circuit synthesis,molecular-scale process control,synthetic biology,in vitro application,in vivo application,biomass maximization,nanoscale drug delivery,abstract chemical reaction,polynomial function,rational function,Hill-type nonlinearity,multimolecular reaction,catalysis,annihilation,enzyme-free entropy-driven DNA reactions,Stan-Sepulchre oscillator,PI+antiwindup controller,static nonlinear plant output regulation
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