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Knockout Prediction for Reaction Networks with Partial Kinetic Information

机译:具有部分动态信息的反应网络淘汰预测

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In synthetic biology, a common application field for computational methods is the prediction of knockout strategies for reaction networks. Thereby, the major challenge is the lack of information on reaction kinetics. In this paper, we propose an approach, based on abstract interpretation, to predict candidates for reaction knockouts, relying only on partial kinetic information. We consider the usual deterministic steady state semantics of reaction networks and a few general properties of reaction kinetics. We introduce a novel abstract domain over pairs of real domain values to compute the differences between steady states that are reached before and after applying some knockout. We show that this abstract domain allows us to predict correct knockout strategy candidates independent of any particular choice of reaction kinetics. Our predictions remain candidates, since our abstract interpretation over-approximates the solution space. We provide an operational semantics for our abstraction in terms of constraint satisfaction problems and illustrate our approach on a realistic network.
机译:在合成生物学中,用于计算方法的常见应用领域是对反应网络的淘汰策略预测。因此,主要挑战是缺乏关于反应动力学的信息。在本文中,我们提出了一种基于抽象解释的方法,以预测反应淘汰的候选人,仅依赖于部分动态信息。我们考虑通常的确定性稳态语义的反应网络和反应动力学的一些通用性质。我们介绍了一对新颖的抽象域,超过了真实域值,以计算稳定状态之间的差异,以前和应用一些淘汰之后。我们表明,这个抽象领域使我们能够预测独立于任何特定反应动力学选择的正确淘汰赛策略候选者。我们的预测仍然是候选人,因为我们的抽象解释过度逼近了解决方案空间。我们为我们的抽象提供了一种运营语义,在约束满足问题方面,并说明了我们在现实网络上的方法。

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