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Pathway design using de novo steps through uncharted biochemical spaces

机译:从头开始的路径设计穿越未知的生化空间

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摘要

Existing retrosynthesis tools generally traverse production routes from a source to a sink metabolite using known enzymes or de novo steps. Generally, important considerations such as blending known transformations with putative steps, complexity of pathway topology, mass conservation, cofactor balance, thermodynamic feasibility, microbial chassis selection, and cost are largely dealt with in a posteriori fashion. The computational procedure we present here designs bioconversion routes while simultaneously considering any combination of the aforementioned design criteria. First, we track and codify as rules all reaction centers using a prime factorization-based encoding technique (rePrime). Reaction rules and known biotransformations are then simultaneously used by the pathway design algorithm (novoStoic) to trace both metabolites and molecular moieties through balanced bio-conversion strategies. We demonstrate the use of novoStoic in bypassing steps in existing pathways through putative transformations, assembling complex pathways blending both known and putative steps toward pharmaceuticals, and postulating ways to biodegrade xenobiotics.
机译:现有的逆合成工具通常使用已知的酶或从头步骤遍历从源到汇代谢物的生产路线。通常,重要的考虑因素,例如将已知的转化与推定的步骤混合,途径拓扑的复杂性,质量守恒,辅因子平衡,热力学可行性,微生物底物的选择和成本,在很大程度上是后验的。我们在这里介绍的计算程序在设计生物转化途径的同时,还要考虑上述设计标准的任何组合。首先,我们使用基于素数分解的编码技术(rePrime)对所有反应中心进行跟踪和规则化编码。然后,途径设计算法(novoStoic)同时使用反应规则和已知的生物转化,通过平衡的生物转化策略来追踪代谢物和分子部分。我们展示了novoStoic在通过假定的转化绕过现有途径中的步骤,组装复杂的途径(将已知步骤和假定的步骤混和到药物)以及推测生物降解异种生物途径的过程中的用途。

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