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Evidence for the coexistence of direct and riboflavin-mediated interspecies electron transfer in Geobacter co-culture

机译:直接和核黄素介导的界面介绍的迹象是Geobacter Co-Culture中的电子转移

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摘要

Geobacter species can secrete free redox-active flavins, but the role of these flavins in the interspecies electron transfer (IET) of Geobacter direct interspecies electron transfer (DIET) co-culture is unknown. Here, we report the presence of a new riboflavin-mediated interspecies electron transfer (RMIET) process in a traditional Geobacter DIET co-culture; in this process, riboflavin contributes to IET by acting as a free-form electron shuttle between free Geobacter species and serving as a bound cofactor of some cytochromes in Geobacter co-culture aggregates. Multiple lines of evidence indicate that RMIET facilitates the primary initiation of syntrophic growth between Geobacter species before establishing the DIET co-culture and provides additional ways alongside the DIET to transfer electrons to achieve electric syntrophy between Geobacter species. Redox kinetic analysis of riboflavin on either Geobacter species demonstrated that the Gmet_2896 cytochrome acts as the key riboflavin reduction site, while riboflavin oxidation by Geobacter sulfurreducens is the rate-limiting step in RMIET, and the RMIET makes only a minor contribution to IET in Geobacter DIET co-culture. The discovery of a new RMIET process in Geobacter DIET co-culture suggests the complexity of IET in syntrophic bacterial communities and provides suggestions for the careful examination of the IET of other syntrophic co-cultures.
机译:地杆菌物种可以分泌游离氧化还原活性的黄曲,而是这些黄曲板在地理杆菌直接散射电子转移(饮食)共同培养中的角色电子转移(IET)的作用是未知的。在这里,我们报告了在传统地理杆菌饮食共同培养中的新核黄素介导的Interspecies电子转移(RMiet)过程;在此过程中,通过作为自由地形杆菌物种之间的自由形状的电子穿梭,核黄素为IET有助于IET,并用作地理杆菌共培养聚集体的一些细胞变色的结合辅因子。多条证据表明,RMIET在建立饮食共同培养之前促进了地形杆菌物种之间的初级启动,并提供额外的方式与饮食一起转移电子,以在地理杆菌之间实现电动同步。氧化还原动力学分析在地形杆菌物种上证明了GMET_2896细胞色素作用作为核糖蛋白的关键降低现场,而Geobacter SulfurredeCens的核黄素氧化是RMiet的速率限制步骤,而RMIET在Geobacter饮食中仅对IET产生了较小的贡献共同文化。在Geobacter饮食共同文化中发现新的RMIET进程表明IET在语法细菌社区中的复杂性,并为仔细检查其他同步培养的IET提供了建议。

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  • 来源
    《Environmental microbiology》 |2020年第1期|共12页
  • 作者单位

    Fujian Agr &

    Forestry Univ Coll Resources &

    Environm Fujian Prov Key Lab Soil Environm Hlth &

    Regulat Fuzhou Fujian Peoples R China;

    Fujian Agr &

    Forestry Univ Coll Resources &

    Environm Fujian Prov Key Lab Soil Environm Hlth &

    Regulat Fuzhou Fujian Peoples R China;

    Fujian Agr &

    Forestry Univ Coll Resources &

    Environm Fujian Prov Key Lab Soil Environm Hlth &

    Regulat Fuzhou Fujian Peoples R China;

    Fujian Agr &

    Forestry Univ Coll Resources &

    Environm Fujian Prov Key Lab Soil Environm Hlth &

    Regulat Fuzhou Fujian Peoples R China;

    Fujian Agr &

    Forestry Univ Coll Resources &

    Environm Fujian Prov Key Lab Soil Environm Hlth &

    Regulat Fuzhou Fujian Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 微生物学;
  • 关键词

  • 入库时间 2022-08-20 02:45:39

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