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Production of biofuels from C1 ‐gases with Clostridium and related bacteria—Recent advances

机译:用梭菌和相关细菌从 C1 气体生产生物燃料——最新进展

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摘要

Clostridium spp. are suitable for the bioconversion of C1‐gases (e.g., CO2, CO and syngas) into different bioproducts. These products can be used as biofuels and are reviewed here, focusing on ethanol, butanol and hexanol, mainly. The production of higher alcohols (e.g., butanol and hexanol) has hardly been reviewed. Parameters affecting the optimization of the bioconversion process and bioreactor performance are addressed as well as the pathways involved in these bioconversions. New aspects, such as mixotrophy and sugar versus gas fermentation, are also reviewed. In addition, Clostridia can also produce higher alcohols from the integration of the Wood‐Ljungdahl pathway and the reverse ß‐oxidation pathway, which has also not yet been comprehensively reviewed. In the latter process, the acetogen uses the reducing power of CO/syngas to reduce C4 or C6 fatty acids, previously produced by a chain elongating microorganism (commonly Clostridium kluyveri), into the corresponding bioalcohol.
机译:梭菌属适用于将 C1 气体(例如 CO2、CO 和合成气)生物转化为不同的生物产品。这些产品可用作生物燃料,本文主要回顾乙醇、丁醇和己醇。高级醇(例如丁醇和己醇)的生产几乎没有被审查过。讨论了影响生物转化过程和生物反应器性能优化的参数,以及这些生物转化所涉及的途径。还综述了新的方面,例如混合营养和糖与气体发酵。此外,梭状芽胞杆菌还可以通过 Wood-Ljungdahl 途径和反向 ß-氧化途径的整合产生高级醇,这也尚未得到全面综述。在后一个过程中,乙酸原利用 CO/合成气的还原能力将先前由链长微生物(通常是克鲁维梭菌)产生的 C4 或 C6 脂肪酸还原成相应的生物醇。

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