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Construction and Optimization of a Heterologous Pathway for Protocatechuate Catabolism in Escherichia coli Enables Bioconversion of Model Aromatic Compounds

机译:大肠杆菌原儿茶酸分解代谢异源途径的构建和优化使模型芳香族化合物的生物转化成为可能

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摘要

The production of biofuels from lignocellulose yields a substantial lignin by-product stream that currently has few applications. Biological conversion of lignin-derived compounds into chemicals and fuels has the potential to improve the economics of lignocellulose-derived biofuels, but few microbes are able both to catabolize lignin-derived aromatic compounds and to generate valuable products. While Escherichia coli has been engineered to produce a variety of fuels and chemicals, it is incapable of catabolizing most aromatic compounds. Therefore, we engineered E. coli to catabolize protocatechuate, a common intermediate in lignin degradation, as the sole source of carbon and energy via heterologous expression of a nine-gene pathway from Pseudomonas putida KT2440. We next used experimental evolution to select for mutations that increased growth with protocatechuate more than 2-fold. Increasing the strength of a single ribosome binding site in the heterologous pathway was sufficient to recapitulate the increased growth. After optimization of the core pathway, we extended the pathway to enable catabolism of a second model compound, 4-hydroxybenzoate. These engineered strains will be useful platforms to discover, characterize, and optimize pathways for conversions of ligninderived aromatics.
机译:从木质纤维素生产生物燃料会产生大量的木质素副产品流,而这种副产品目前很少应用。将木质素衍生的化合物生物转化为化学品和燃料有可能提高木质纤维素衍生生物燃料的经济性,但很少有微生物能够分解代谢木质素衍生的芳香族化合物并产生有价值的产品。虽然大肠杆菌已被设计用于生产各种燃料和化学品,但它无法分解代谢大多数芳香族化合物。因此,我们通过恶臭假单胞菌KT2440的九基因途径的异源表达,将原儿茶酸分解代谢为木质素降解的常见中间体原儿茶酸酯,作为碳和能量的唯一来源。接下来,我们使用实验进化来选择使原儿茶酸生长增加 2 倍以上的突变。增加异源途径中单个核糖体结合位点的强度足以概括增加的生长。在优化核心通路后,我们扩展了通路,以实现第二种模型化合物4-羟基苯甲酸酯的分解代谢。这些工程菌株将成为发现、表征和优化木质素衍生芳烃转化途径的有用平台。

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