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SAT-Based Metabolics Pathways Analysis without Compilation

机译:无需编译的基于SAT的代谢途径分析

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Elementary flux modes (EFMs) are commonly accepted tools for metabolic network analysis under steady state conditions. They can be defined as the smallest sub-networks enabling the metabolic system to operate in steady state with all irreversible reactions proceeding in the appropriate direction. However, when networks are complex, the number of EFMs quickly leads to a combinatorial explosion, preventing from drawing even simple conclusions from their analysis. Since the concept of EFMs analysis was introduced in 1994, there has been an important and ongoing effort to develop more efficient algorithms. However, these methods share a common bottleneck: they enumerate all the EFMs which make the computation impossible when the metabolic network is large and only few works try to search only EFMs with specific properties. As we will show in this paper, enumerating all the EFMs is not necessary in many cases and it is possible to directly query the network instead with an appropriate tool. For ensuring a good query time, we will rely on a state of the art SAT solver, working on a propositional encoding of EFMs, and enriched with a simple SMT-like solver ensuring EFMs consistency with stoichiometric constraints. We illustrate our new framework by providing experimental evidences of almost immediate answer times on a non trivial metabolic network.
机译:基本通量模式(EFM)是稳态条件下进行代谢网络分析的常用工具。可以将它们定义为最小的子网,以使新陈代谢系统能够在适当的方向上进行所有不可逆反应的稳定状态下运行。但是,当网络复杂时,EFM的数量会迅速导致组合爆炸,从而无法从其分析中得出甚至简单的结论。自从1994年提出EFM分析概念以来,就一直在努力开发更有效的算法。但是,这些方法存在一个共同的瓶颈:它们枚举了所有EFM,这在代谢网络很大且只有少数工作试图仅搜索具有特定属性的EFM时使计算变得不可能。正如我们将在本文中显示的那样,在许多情况下,没有必要枚举所有EFM,而可以使用适当的工具直接查询网络。为了确保良好的查询时间,我们将依靠最先进的SAT求解器,对EFM进行命题编码,并使用简单的类似SMT的求解器进行充实,以确保EFM符合化学计量约束。我们通过提供非平凡的代谢网络上几乎立即的应答时间的实验证据来说明我们的新框架。

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