School of Chemistry, Chemical Engineering, and Life Science, Wuhan University of Technology, Wuhan 430070, PR China.
School of Chemistry, Chemical Engineering, and Life Science, Wuhan University of Technology, Wuhan 430070, PR China; Shaoxing Institute for Advanced Research, Wuhan University of Technology, Shaoxing 312300, PR China.
Bioresour Technol. 2022 Oct;361:127711. doi: 10.1016/j.biortech.2022.127711. Epub 2022 Jul 27.
Gas fermentation is a well-established process for the conversion of greenhouse gases from industrial wastes into valuable multi-carbon chemicals. Here, a two-stage process was developed to expand the product range of gas fermentation and synthesized the versatile biopolymer bacterial cellulose (BC). In the first stage, the acetogen Clostridium autoethanogenum was cultivated with H:CO:CO and produced ethanol and acetate. In the second stage, BC-synthesizing Komagataeibacter sucrofermentans was grown in the spent medium from gas fermentation. K. sucrofermentans was able to produce BC autotrophically from gas-derived metabolites alone as well as mixotrophically with the addition of exogenous glucose. In these circumstances, 1.31 g/L BC was synthesized with a major energetic contribution from C1 gas fermentation products. Mixotrophic BC characterization reveals unique properties including augmented mechanical strength, porosity, and crystallinity. This proof-of-concept process demonstrates that BC can be produced from gases and holds good potential for the efficient conversion of C1 wastes.
气体发酵是一种将工业废物中的温室气体转化为有价值的多碳化学品的成熟工艺。在这里,开发了一种两阶段工艺来扩展气体发酵的产品范围,并合成了多功能生物聚合物细菌纤维素(BC)。在第一阶段,利用 H:CO:CO 培养产乙酸菌 Clostridium autoethanogenum,生成乙醇和乙酸。在第二阶段,在气体发酵的废培养基中培养合成 BC 的 Komagataeibacter sucrofermentans。K. sucrofermentans 能够仅利用气体衍生代谢物自养合成 BC,也能够在外源葡萄糖的存在下异养合成 BC。在这些情况下,以 1.31 g/L 的产量合成了 BC,其主要能量贡献来自 C1 气体发酵产物。混合营养型 BC 的特性研究表明,其具有独特的性能,包括增强的机械强度、孔隙率和结晶度。该概念验证工艺表明,BC 可以由气体生产,并且具有将 C1 废物高效转化的良好潜力。