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利用 CO2 衍生有机酸进行先进的 PHB 发酵策略。

Advanced PHB fermentation strategies with CO-derived organic acids.

机构信息

Bio Base Europe Pilot Plant (BBEPP), Rodenhuizekaai 1, 9042 Ghent, Belgium; Centre for Industrial Biotechnology and Biocatalysis (InBio.be), Department of Biotechnology, Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, 9000 Ghent, Belgium.

Bio Base Europe Pilot Plant (BBEPP), Rodenhuizekaai 1, 9042 Ghent, Belgium.

出版信息

J Biotechnol. 2022 Jan 10;343:102-109. doi: 10.1016/j.jbiotec.2021.11.010. Epub 2021 Dec 2.

Abstract

Over the past decade, formic acid and acetic acid have gained increasing attention as alternative feedstocks for poly-3-hydroxybutyrate (PHB) production as these potentially CO-derived molecules are naturally assimilated by Cupriavidus necator. Both organic acids were individually evaluated in fed-batch fermentations at bioreactor scale. Acetic acid was revealed as the most promising carbon source yielding 42.3 g L PHB, whereas no significant amount of PHB was produced from formic acid. Hence, acetic acid was further used as the substrate during process intensification. Key performance characteristics, including process stability, PHB titer, and productivity were optimized by introducing NH-acetate as the nitrogen source, extending the growth phase, and implementing a repeated fed-batch procedure, respectively. These advanced fermentation strategies resulted in the establishment of a stable fermentation process reaching 58.5 g L PHB, while doubling the productivity to 0.93 g L h PHB.

摘要

在过去的十年中,甲酸和乙酸作为聚 3-羟基丁酸酯 (PHB) 生产的替代原料越来越受到关注,因为这些潜在的 CO 衍生分子被醋杆菌属自然同化。这两种有机酸都在生物反应器规模的分批补料发酵中进行了单独评估。结果表明,乙酸是最有前途的碳源,可产 42.3 g L PHB,而甲酸则没有产生显著量的 PHB。因此,在工艺强化过程中进一步使用乙酸作为底物。通过引入 NH4-acetate 作为氮源、延长生长阶段和实施重复分批进料程序,分别优化了关键性能特性,包括过程稳定性、PHB 浓度和生产力。这些先进的发酵策略使得建立了一个稳定的发酵过程,达到 58.5 g L PHB,同时将生产力提高到 0.93 g L h PHB。

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