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Quantifying complexity in metabolic engineering using the LASER database

机译:使用LASER数据库量化代谢工程的复杂性

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摘要

We previously introduced the LASER database (Learning Assisted Strain EngineeRing, ) (Winkler et al. 2015) to serve as a platform for understanding past and present metabolic engineering practices. Over the past year, LASER has been expanded by 50% to include over 600 engineered strains from 450 papers, including their growth conditions, genetic modifications, and other information in an easily searchable format. Here, we present the results of our efforts to use LASER as a means for defining the complexity of a metabolic engineering “design”. We evaluate two complexity metrics based on the concepts of construction difficulty and novelty. No correlation is observed between expected product yield and complexity, allowing minimization of complexity without a performance trade-off. We envision the use of such complexity metrics to filter and prioritize designs prior to implementation of metabolic engineering efforts, thereby potentially reducing the time, labor, and expenses of large-scale projects. Possible future developments based on an expanding LASER database are then discussed.
机译:之前,我们引入了LASER数据库(Learning Assisted Strain Engine),(Winkler等人,2015),作为理解过去和现在的代谢工程实践的平台。在过去的一年中,LASER已扩大了50%,从450篇论文中囊括了600多个工程菌株,包括其生长条件,遗传修饰和其他易于搜索格式的信息。在这里,我们介绍了使用LASER作为定义代谢工程“设计”复杂性的一种方法的努力结果。我们根据施工难度和新颖性的概念评估了两个复杂性指标。在预期的产品产量和复杂性之间未发现相关性,从而可以在不牺牲性能的情况下将复杂性降至最低。我们设想在实施代谢工程之前,使用这种复杂性指标来过滤设计并确定其优先级,从而有可能减少大型项目的时间,人工和费用。然后讨论了基于扩展的LASER数据库的未来可能的发展。

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