Enhanced 1,3-propanediol production with high yield from glycerol through a novel Klebsiella-Shewanella co-culture.

Yanxia Wang, Zijian Wan, Yueting Zhu, Haibo Hu, Yujia Jiang, Wankui Jiang, Wenming Zhang, Fengxue Xin
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Abstract

Background: 1,3-Propanediol (1,3-PDO) is a platform compound, which has been widely used in food, pharmaceutical and cosmetic industries. Compared with chemical methods, the biological synthesis of 1,3-PDO has shown promising applications owing to its mild conditions and environmental friendliness. However, the biological synthesis of 1,3-PDO still has the problem of low titer and yield due to the shortage of reducing powers.

Results: In this study, Klebsiella sp. strain YT7 was successfully isolated, which can synthesize 11.30 g/L of 1,3-PDO from glycerol in flasks. The intracellular redox regulation strategy based on the addition of electron mediators can increase the 1,3-PDO titer to 28.01 g/L. Furthermore, a co-culturing system consisting of strain YT7 and Shewanella oneidensis MR-1 was established, which can eliminate the supplementation of exogenous electron mediators and reduce the by-products accumulation. The 1,3-PDO yield reached 0.44 g/g and the final titer reached 62.90 g/L. The increased titer and yield were attributed to the increased redox levels and the consumption of by-products.

Conclusions: A two-bacterium co-culture system with Klebsiella sp. strain YT7 and S. oneidensis strain MR-1 was established, which realized the substitution of exogenous electron mediators and the reduction of by-product accumulation. Results provided theoretical basis for the high titer of 1,3-PDO production with low by-product concentration.

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通过一种新的克雷伯菌-希瓦氏菌共培养,以高产量提高甘油生产1,3-丙二醇。
背景:1,3-丙二醇(1,3- pdo)是一种平台化合物,广泛应用于食品、制药和化妆品等行业。与化学方法相比,生物合成1,3- pdo具有条件温和、环境友好等优点,具有广阔的应用前景。然而,由于还原力不足,生物合成1,3- pdo仍然存在效价低、产率低的问题。结果:本实验成功分离到克雷伯氏菌YT7菌株,该菌株在烧瓶中可从甘油中合成11.30 g/L的1,3- pdo。基于添加电子介质的细胞内氧化还原调控策略可将1,3- pdo滴度提高到28.01 g/L。建立了菌株YT7与希瓦氏菌MR-1共培养体系,消除了外源电子介质的补充,减少了副产物的积累。1,3- pdo产率达到0.44 g/g,最终滴度达到62.90 g/L。滴度和产量的增加归因于氧化还原水平的增加和副产物的消耗。结论:建立了克雷伯氏菌YT7和奥氏杆菌MR-1两菌共培养体系,实现了外源电子介质的替代,减少了副产物的积累。结果为低副产物浓度、高效价生产1,3- pdo提供了理论依据。
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