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利用……强化协同 valorization 以实现可持续燃料和化学品生产 。 注:“valorization”这个词可能有误,正确的可能是“valorization”,意思是“增值、 valorization” 等,这里暂且按原样翻译。

Enhancing CO-Valorization Using for Sustainable Fuel and Chemicals Production.

作者信息

Heffernan James K, Valgepea Kaspar, de Souza Pinto Lemgruber Renato, Casini Isabella, Plan Manuel, Tappel Ryan, Simpson Sean D, Köpke Michael, Nielsen Lars K, Marcellin Esteban

机构信息

Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, Saint Lucia, QLD, Australia.

ERA Chair in Gas Fermentation Technologies, Institute of Technology, University of Tartu, Tartu, Estonia.

出版信息

Front Bioeng Biotechnol. 2020 Mar 27;8:204. doi: 10.3389/fbioe.2020.00204. eCollection 2020.

Abstract

Acetogenic bacteria can convert waste gases into fuels and chemicals. Design of bioprocesses for waste carbon valorization requires quantification of steady-state carbon flows. Here, steady-state quantification of autotrophic chemostats containing Clostridium autoethanogenum grown on CO and H revealed that captured carbon (460 ± 80 mmol/gDCW/day) had a significant distribution to ethanol (54 ± 3 C-mol% with a 2.4 ± 0.3 g/L titer). We were impressed with this initial result, but also observed limitations to biomass concentration and growth rate. Metabolic modeling predicted culture performance and indicated significant metabolic adjustments when compared to fermentation with CO as the carbon source. Moreover, modeling highlighted flux to pyruvate, and subsequently reduced ferredoxin, as a target for improving CO and H fermentation. Supplementation with a small amount of CO enabled co-utilization with CO, and enhanced CO fermentation performance significantly, while maintaining an industrially relevant product profile. Additionally, the highest specific flux through the Wood-Ljungdahl pathway was observed during co-utilization of CO and CO. Furthermore, the addition of CO led to superior CO-valorizing characteristics (9.7 ± 0.4 g/L ethanol with a 66 ± 2 C-mol% distribution, and 540 ± 20 mmol CO/gDCW/day). Similar industrial processes are commercial or currently being scaled up, indicating CO-supplemented CO and H fermentation has high potential for sustainable fuel and chemical production. This work also provides a reference dataset to advance our understanding of CO gas fermentation, which can contribute to mitigating climate change.

摘要

产乙酸细菌可以将废气转化为燃料和化学品。设计用于废碳增值的生物过程需要对稳态碳流进行量化。在此,对以一氧化碳和氢气为原料生长的自养恒化器中自养梭菌进行稳态量化研究发现,捕获的碳(460±80毫摩尔/克干细胞重量/天)有很大一部分分配到乙醇中(54±3碳摩尔%,滴度为2.4±0.3克/升)。我们对这一初步结果印象深刻,但也观察到生物量浓度和生长速率存在局限性。代谢模型预测了培养性能,并表明与以一氧化碳为碳源的发酵相比存在显著的代谢调整。此外,模型突出了丙酮酸通量以及随后还原型铁氧还蛋白的通量,将其作为改善一氧化碳和氢气发酵的目标。补充少量一氧化碳能够实现与一氧化碳的共同利用,并显著提高一氧化碳发酵性能,同时保持与工业相关的产物谱。此外,在一氧化碳和一氧化碳共同利用过程中观察到通过伍德-Ljungdahl途径的最高比通量。此外,添加一氧化碳导致了卓越的一氧化碳增值特性(乙醇浓度为9.7±0.4克/升,分布为66±2碳摩尔%,一氧化碳固定量为540±20毫摩尔/克干细胞重量/天)。类似的工业过程已实现商业化或目前正在扩大规模,这表明补充一氧化碳的一氧化碳和氢气发酵在可持续燃料和化学品生产方面具有很高的潜力。这项工作还提供了一个参考数据集,以增进我们对一氧化碳气体发酵的理解,这有助于缓解气候变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c93/7135887/9d3e405c516c/fbioe-08-00204-g0001.jpg

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