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Reduced linear noise approximation for biochemical reaction networks with time-scale separation: The stochastic tQSSA

机译:具有时间尺度分离的生物化学反应网络的线性噪声近似:随机TQSSA

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Biochemical reaction networks often involve reactions that take place on different time scales, giving rise to "slow" and "fast" system variables. This property is widely used in the analysis of systems to obtain dynamical models with reduced dimensions. In this paper, we consider stochastic dynamics of biochemical reaction networks modeled using the Linear Noise Approximation (LNA). Under time-scale separation conditions, we obtain a reduced-order LNA that approximates both the slow and fast variables in the system. We mathematically prove that the first and second moments of this reduced-order model converge to those of the full system as the time-scale separation becomes large. These mathematical results, in particular, provide a rigorous justification to the accuracy of LNA models derived using the stochastic total quasi-steady state approximation (tQSSA). Since, in contrast to the stochastic tQSSA, our reduced-order model also provides approximations for the fast variable stochastic properties, we term our method the "stochastic tQSSA+". Finally, we demonstrate the application of our approach on two biochemical network motifs found in gene-regulatory and signal transduction networks. (C) 2018 Author(s).
机译:生化反应网络通常涉及在不同时间尺度上发生的反应,从而产生“慢”和“快速”的系统变量。该特性广泛用于分析系统,以获得具有减小尺寸的动态模型。在本文中,我们考虑使用线性噪声近似(LNA)建模的生物化学反应网络的随机动力学。在时间尺度的分离条件下,我们获得了减少的LNA,其近似于系统中的慢速和快速变量。我们在数学上证明,随着时间尺度分离变大,该减少阶模型的第一和第二矩聚到完整系统的那些。这些数学结果尤其为使用随机总量准稳态近似(TQSSA)导出的LNA模型的准确性提供了严格的理由。由于与随机TQSSA相比,我们的阶阶模型还提供了快速变速随机特性的近似,我们术语我们的方法“随机TQSSA +”。最后,我们展示了我们对基因 - 监管和信号转导网络中的两种生化网络图案的应用。 (c)2018年作者。

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