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首页> 外文期刊>Fuel >Improvement in H_2 production from Clostridium butyricum by co-culture with Sporolactobacillus vineae
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Improvement in H_2 production from Clostridium butyricum by co-culture with Sporolactobacillus vineae

机译:通过与孢子酰胺杆菌的共同培养的Clostridium Buticricum的改善

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摘要

Dark fermentation has emerged as a promising method for converting waste into biohydrogen, a clean and sustainable energy source. However, the interaction between biohydrogen production performance and its microbial community has not been investigated sufficiently. This study investigated the effect of S. vineae on hydrogen production using defined cultures. Co-cultures of Clostridium butyricum (C. butyricum) with Sporolactobacillus vineae (S. vineae) increased the hydrogen production from 1.57 to 1.84 mol H-2/mol glucose(added), whereas lactic acid production did not increase in comparison with single culture of C. butyricum. At all the examined co-culture conditions, C. butyricum occupied more than 90% of the microbial composition; therefore, the microbial community analysis alone could not explain the difference in hydrogen production according to S. vineae addition. PICRUSt analysis showed that co-culture with S. vineae enhanced the expression of genes relating lactate to butyrate and H-2 pathway, although S. vineae did not produce butyrate. Co-cultures of Clostridium sp. and Sporolactobacillus sp. could be beneficial for H-2 production from the viewpoint of acidogenic pathway regulation. This study is expected to contribute to the understanding of the synergistic mechanisms of both the strains to obtain optimal biohydrogen production.
机译:黑暗发酵已成为将废物转化为生物氢,干净和可持续的能源的有希望的方法。然而,尚未充分研究生物氢生产性能与其微生物群落之间的相互作用。本研究调查了使用定义培养物对氢生产的S. VINEAE对氢生产的影响。与孢子醛酰嘧啶的牛奶杆菌(C. buticricum)的共同培养物(乙酸)从1.57〜1.84mol H-2 / mol葡萄糖(加入)增加了氢气产量,而乳酸产生与单一培养相比没有增加C. Buticricum。在所有检查的共培养条件下,C.Buticricum占据了超过90%的微生物组成;因此,单独的微生物群落分析无法解释根据S. VINEAE添加的氢气产生的差异。 Picrust分析表明,与S. VINEAE的共同培养增强了乳酸与丁酸酯和H-2途径相关基因的表达,尽管S. VINEA不产生丁酸盐。 Clostridium sp的共同培养物。和sporolactobacillus sp。从酸性途径调节的观点来看,可能对H-2生产有益。预计本研究有助于了解菌株的协同机制,以获得最佳的生物氢生产。

著录项

  • 来源
    《Fuel 》 |2021年第2期| 119051.1-119051.6| 共6页
  • 作者单位

    Yonsei Univ Sch Civil & Environm Engn Seoul 03722 South Korea;

    Yonsei Univ Sch Civil & Environm Engn Seoul 03722 South Korea|Korea Inst Ind Technol KITECH Intelligent Sustainable Mat R&D Grp Cheonan Si 31056 Chungcheongnam South Korea;

    Yonsei Univ Sch Civil & Environm Engn Seoul 03722 South Korea;

    Korea Inst Ind Technol KITECH Clean Innovat Technol Grp Jeju Si 63243 South Korea;

    Korea Inst Ind Technol KITECH Intelligent Sustainable Mat R&D Grp Cheonan Si 31056 Chungcheongnam South Korea;

    Univ Suwon Dept Civil Engn 17 Wauan Gil Bongdam Eup 18323 Hwaseong South Korea;

    Yonsei Univ Sch Civil & Environm Engn Seoul 03722 South Korea;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Acidogenic fermentation; Clostridium; Sporolactobacillus; Microbial diversity; Gene expression prediction;

    机译:酸性发酵;Clostridium;孢子酰基乳杆菌;微生物多样性;基因表达预测;

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