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Biosynthesis of ciscis-Muconic Acid and Its Aromatic Precursors Catechol and Protocatechuic Acid from Renewable Feedstocks by Saccharomyces cerevisiae

机译:酿酒酵母由可再生原料生物合成顺式顺式-葡糖酸及其芳香前体邻苯二酚和原儿茶酸

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摘要

Adipic acid is a high-value compound used primarily as a precursor for the synthesis of nylon, coatings, and plastics. Today it is produced mainly in chemical processes from petrochemicals like benzene. Because of the strong environmental impact of the production processes and the dependence on fossil resources, biotechnological production processes would provide an interesting alternative. Here we describe the first engineered Saccharomyces cerevisiae strain expressing a heterologous biosynthetic pathway converting the intermediate 3-dehydroshikimate of the aromatic amino acid biosynthesis pathway via protocatechuic acid and catechol into cis,cis-muconic acid, which can be chemically dehydrogenated to adipic acid. The pathway consists of three heterologous microbial enzymes, 3-dehydroshikimate dehydratase, protocatechuic acid decarboxylase composed of three different subunits, and catechol 1,2-dioxygenase. For each heterologous reaction step, we analyzed several potential candidates for their expression and activity in yeast to compose a functional cis,cis-muconic acid synthesis pathway. Carbon flow into the heterologous pathway was optimized by increasing the flux through selected steps of the common aromatic amino acid biosynthesis pathway and by blocking the conversion of 3-dehydroshikimate into shikimate. The recombinant yeast cells finally produced about 1.56 mg/liter cis,cis-muconic acid.
机译:己二酸是一种高价值化合物,主要用作合成尼龙,涂料和塑料的前体。今天,它主要是由石油化工产品(如苯)以化学过程生产的。由于生产过程对环境的强烈影响以及对化石资源的依赖,生物技术生产过程将提供有趣的替代方法。在这里,我们描述了第一个工程酿酒酵母菌株,该菌株表达了异源生物合成途径,该途径通过原儿茶酸和邻苯二酚将芳香族氨基酸生物合成途径的中间体3-脱氢shi草酸酯转化为顺式,顺式-粘康酸,可以将其化学脱氢为己二酸。该途径由三种异源微生物酶,3-脱氢shi草酸酯脱水酶,由三个不同亚基组成的原儿茶酸脱羧酶和邻苯二酚1,2-二加氧酶组成。对于每个异源反应步骤,我们分析了其在酵母中的表达和活性以构成功能性顺式,顺式-粘康酸合成途径的几种潜在候选物。通过增加通过普通芳香族氨基酸生物合成途径的选定步骤的通量并通过阻止3-脱氢shi草酸酯转化为sh草酸酯来优化流入异源途径的碳。重组酵母细胞最终产生约1.56 mg / L的顺式,顺式-粘康酸。

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