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首页> 外文期刊>Microbial Cell Factories >Modification of acetoacetyl-CoA reduction step in Ralstonia eutropha for biosynthesis of poly(3-hydroxybutyrate- co -3-hydroxyhexanoate) from structurally unrelated compounds
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Modification of acetoacetyl-CoA reduction step in Ralstonia eutropha for biosynthesis of poly(3-hydroxybutyrate- co -3-hydroxyhexanoate) from structurally unrelated compounds

机译:富营养小球藻中乙酰乙酰辅酶A还原步骤的修饰,用于由结构无关的化合物生物合成聚(3-羟基丁酸酯-co-3-羟基己酸酯)

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Poly((R)-3-hydroxybutyrate-co-(R)-3-hydroxyhexanoate) [P(3HB-co-3HHx)] is a bacterial polyester with high biodegradability, even in marine environments. Ralstonia eutropha has been engineered for the biosynthesis of P(3HB-co-3HHx) from vegetable oils, but its production from structurally unrelated carbon sources remains unsatisfactory. Ralstonia eutropha strains capable of synthesizing P(3HB-co-3HHx) from not only fructose but also glucose and glycerol were constructed by integrating previously established engineering strategies. Further modifications were made at the acetoacetyl-CoA reduction step determining flux distribution responsible for the copolymer composition. When the major acetoacetyl-CoA reductase (PhaB1) was replaced by a low-activity paralog (PhaB2) or enzymes for reverse β-oxidation, copolyesters with high 3HHx composition were efficiently synthesized from glucose, possibly due to enhanced formation of butyryl-CoA from acetoacetyl-CoA via (S)-3HB-CoA. P(3HB-co-3HHx) composed of 7.0?mol% and 12.1?mol% 3HHx fractions, adequate for practical applications, were produced at cellular contents of 71.4 wt% and 75.3 wt%, respectively. The replacement by low-affinity mutants of PhaB1 had little impact on the PHA biosynthesis on glucose, but slightly affected those on fructose, suggesting altered metabolic regulation depending on the sugar-transport machinery. PhaB1 mostly acted in the conversion of acetoacetyl-CoA when the cells were grown on glycerol, as copolyester biosynthesis was severely impaired by the lack of phaB1. The present results indicate the importance of flux distribution at the acetoacetyl-CoA node in R. eutropha for the biosynthesis of the PHA copolyesters with regulated composition from structurally unrelated compounds.
机译:聚((R)-3-羟基丁酸酯-共-(R)-3-羟基己酸酯)[P(3HB-co-3HHx)]是一种即使在海洋环境中也具有高生物降解性的细菌聚酯。富营养的Ralstonia eutropha已被设计用于从植物油中生物合成P(3HB-co-3HHx),但其结构无关碳源的生产仍然不能令人满意。通过整合先前建立的工程策略,不仅可以从果糖而且还可以从葡萄糖和甘油中合成P(3HB-co-3HHx)的富营养的Ralstonia eutropha菌株。在乙酰乙酰基-CoA还原步骤进行进一步的改性,以确定导致共聚物组成的通量分布。当将主要的乙酰乙酰辅酶A还原酶(PhaB1)替换为低活性旁系同源物(PhaB2)或用于反向β-氧化的酶时,可以从葡萄糖有效地合成具有高3HHx组成的共聚酯,这可能是由于由(S)-3HB-CoA乙酰乙酰辅酶A。 P(3HB-co-3HHx)由7.0?mol%和12.1?mol%的3HHx馏分组成,适合实际应用,分别以71.4 wt%和75.3 wt%的细胞含量生产。低亲和力突变体PhaB1的替代对PHA在葡萄糖上的生物合成影响不大,但对果糖上的PHA生物合成影响不大,这表明依赖于糖运输机制的代谢调控发生了改变。当细胞在甘油上生长时,PhaB1主要作用于乙酰乙酰辅酶A的转化,因为缺少phaB1会严重损害共聚酯的生物合成。本结果表明,富营养红景天中乙酰乙酰基-CoA节点处通量分布对于从结构上无关的化合物调节组成的PHA共聚酯的生物合成很重要。

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