Title :
On Robust Stability of Stochastic Genetic Regulatory Networks With Time Delays: A Delay Fractioning Approach
Author :
Wang, Yao ; Wang, Zidong ; Liang, Jinling
Author_Institution :
Sch. of Inf. Sci. & Technol., Donghua Univ., Shanghai, China
fDate :
6/1/2010 12:00:00 AM
Abstract :
Robust stability serves as an important regulation mechanism in system biology and synthetic biology. In this paper, the robust stability analysis problem is investigated for a class of nonlinear delayed genetic regulatory networks with parameter uncertainties and stochastic perturbations. The nonlinear function describing the feedback regulation satisfies the sector condition, the time delays exist in both translation and feedback regulation processes, and the state-dependent Brownian motions are introduced to reflect the inherent intrinsic and extrinsic noise perturbations. The purpose of the addressed stability analysis problem is to establish some easy-to-verify conditions under which the dynamics of the true concentrations of the messenger ribonucleic acid (mRNA) and protein is asymptotically stable irrespective of the norm-bounded modeling errors. By utilizing a new Lyapunov functional based on the idea of ??delay fractioning??, we employ the linear matrix inequality (LMI) technique to derive delay-dependent sufficient conditions ensuring the robust stability of the gene regulatory networks. Note that the obtained results are formulated in terms of LMIs that can easily be solved using standard software packages. Simulation examples are exploited to illustrate the effectiveness of the proposed design procedures.
Keywords :
Brownian motion; Lyapunov methods; biology computing; delays; linear matrix inequalities; uncertain systems; LMI; Lyapunov functional; delay fractioning approach; feedback regulation processes; gene regulatory networks; linear matrix inequality; messenger ribonucleic acid; nonlinear function; parameter uncertainties; regulation mechanism; robust stability; software packages; state-dependent Brownian motions; stochastic genetic regulatory networks; stochastic perturbations; synthetic biology; system biology; time delays; Genetic regulatory networks (GRNs); Lyapunov–Krasovskii functional; linear matrix inequality (LMI); robust stability; stochastic perturbation; time delays; uncertain system; Animals; Computer Simulation; Gene Expression Regulation; Humans; Models, Biological; Models, Statistical; Proteome; Signal Transduction; Stochastic Processes;
Journal_Title :
Systems, Man, and Cybernetics, Part B: Cybernetics, IEEE Transactions on
DOI :
10.1109/TSMCB.2009.2026059