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各种抑制物质和固定化对耐热菌乙醇生产效率的影响

Effects of various inhibitory substances and immobilization on ethanol production efficiency of a thermotolerant .

作者信息

Ndubuisi Ifeanyi A, Qin Qijian, Liao Guiyan, Wang Bin, Moneke Anene N, Ogbonna James C, Jin Cheng, Fang Wenxia

机构信息

1National Engineering Research Center for Non-Food Biorefinery, Guangxi Academy of Sciences, Nanning, China.

2College of Life Science and Technology, Guangxi University, Nanning, China.

出版信息

Biotechnol Biofuels. 2020 May 18;13:91. doi: 10.1186/s13068-020-01729-5. eCollection 2020.

Abstract

BACKGROUND

Although bioethanol production has been gaining worldwide attention as an alternative to fossil fuel, ethanol productivities and yields are still limited due to the susceptibility of fermentation microorganisms to various stress and inhibitory substances. There is therefore an unmet need to search for multi-stress-tolerant organisms to improve ethanol productivity and reduce production cost, particularly when lignocellulosic hydrolysates are used as the feedstock.

RESULTS

Here, we have characterized a previously isolated LC375240 strain which is thermotolerant to high temperatures of 37 °C and 42 °C. More excitingly, growth and ethanol productivity of this strain exhibit strong tolerance to multiple stresses such as acetic acid, furfural, formic acid, HO and high concentration of ethanol at 42 °C. In addition, simple immobilization of LC375240 on corncobs resulted to a more stable and higher efficient ethanol production for successive four cycles of repeated batch fermentation at 42 °C.

CONCLUSION

The feature of being thermotolerant and multi-stress-tolerant is unique to LC375240 and makes it a good candidate for second-generation bioethanol fermentation as well as for investigating the molecular basis underlying the robust stress tolerance. Immobilization of LC375240 on corncobs is another option for cheap and high ethanol productivity.

摘要

背景

尽管生物乙醇生产作为化石燃料的替代品已受到全球关注,但由于发酵微生物对各种胁迫和抑制物质敏感,乙醇生产率和产量仍然有限。因此,迫切需要寻找多胁迫耐受的生物体,以提高乙醇生产率并降低生产成本,特别是当使用木质纤维素水解产物作为原料时。

结果

在此,我们对先前分离的LC375240菌株进行了表征,该菌株对37°C和42°C的高温具有耐热性。更令人兴奋的是,该菌株的生长和乙醇生产率在42°C下对多种胁迫如乙酸、糠醛、甲酸、H₂O₂和高浓度乙醇表现出很强的耐受性。此外,将LC375240简单固定在玉米芯上,在42°C下连续四个重复批次发酵周期中,可实现更稳定、更高效率的乙醇生产。

结论

耐热和多胁迫耐受的特性是LC375240独有的,使其成为第二代生物乙醇发酵以及研究强大胁迫耐受性背后分子基础的良好候选者。将LC375240固定在玉米芯上是实现廉价和高乙醇生产率的另一种选择。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/540b/7236494/ef9fd63f3d2c/13068_2020_1729_Fig1_HTML.jpg

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