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A systems-theoretic approach towards designing biological networks for perfect adaptation

机译:系统理论方法设计生物网络以实现完美适应

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Designing biological networks that are capable of achieving specific functionality has been of sustained interest in the field of synthetic biology for nearly a decade. Adaptation is one such important functionality that is observed in bacterial chemotaxis, cell signalling and homoeostasis. It refers to the ability of a cell to cope with environmental perturbations. All of these adaptation networks, involve negative feedback loops or open loop control strategies. A typical enzymatic network is a circuit of enzymes whose connections are characterized by enzymatic reactions that exhibit non-linear dynamics. Previous approaches to design of enzymatic networks capable of perfect adaptation have used brute force searches encompassing the complete set of possibilities to identify suitable circuit designs. In contrast, this work presents a systematic algorithm for circuit design, using a linear systems-theoretic approach. The key idea is to set up a design-oriented problem formulation as against employing a brute force search in the space of possible circuits. To this effect, we first linearize the non-linear dynamical circuit, subsequently, we translate the requirements for adaptation to design specifications for a linear time-invariant system and imposing these design specifications on the linearized system, we obtain the minimal topologies or motifs that can perform perfect adaptation, with an optimal set of rate constants. The optimal set of rate constants is obtained by solving a structure-specific constrained optimisation problem. In effect, we demonstrate that the proposed approach identifies the key motifs of the biological network that were identified by the existing brute force approach, albeit in a systematic manner and with very little computational effort.
机译:近十年来,设计能够实现特定功能的生物网络一直是合成生物学领域的持续关注。适应性是在细菌趋化性,细胞信号转导和同源性中观察到的如此重要的功能之一。它是指细胞应对环境扰动的能力。所有这些自适应网络都涉及负反馈回路或开环控制策略。典型的酶促网络是酶的电路,其连接的特征在于表现出非线性动力学的酶促反应。能够完美适应的酶促网络设计的先前方法使用了蛮力搜索,这种搜索涵盖了识别合适电路设计的全部可能性。相反,这项工作提出了一种使用线性系统理论方法的电路设计系统算法。关键思想是建立针对设计的问题表述,以免在可能的电路空间中采用蛮力搜索。为此,我们首先将非线性动态电路线性化,随后,我们将对线性时不变系统的设计要求进行适应化的转换,并将这些设计规范强加于线性化系统上,从而获得了最小的拓扑或图案,可以使用一组最佳速率常数执行完美的自适应。速率常数的最佳集合是通过解决特定于结构的约束优化问题而获得的。实际上,我们证明了所提出的方法可以识别由现有的蛮力方法识别的生物网络的关键主题,尽管它是系统的方式并且只需很少的计算工作。

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