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The enrichment of an alkaliphilic biofilm consortia capable of the anaerobic degradation of isosaccharinic acid from cellulosic materials incubated within an anthropogenic, hyperalkaline environment

机译:碱性生物膜聚焦的富集能够从纤维素物质中孵育的纤维素材料厌氧酸的厌氧降解

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摘要

Anthropogenic hyperalkaline sites provide an environment that is analogous to proposed cementitious geological disposal facilities (GDF) for radioactive waste. Under anoxic, alkaline conditions cellulosic wastes will hydrolyze to a range of cellulose degradation products (CDP) dominated by isosaccharinic acids (ISA). In order to investigate the potential for microbial activity in a cementitious GDF, cellulose samples were incubated in the alkaline (similar to pH 12), anaerobic zone of a lime kiln waste site. Following retrieval, these samples had undergone partial alkaline hydrolysis and were colonized by a Clostridia-dominated biofilm community, where hydrogenotrophic, alkaliphilic methanogens were also present. When these samples were used to establish an alkaline CDP fed microcosm, the community shifted away from Clostridia, methanogens became undetectable and a flocculate community dominated by Alishewanella sp. established. These flocs were composed of bacteria embedded in polysaccharides and proteins stabilized by extracellular DNA. This community was able to degrade all forms of ISA with >60% of the carbon flow being channelled into extracellular polymeric substance (EPS) production. This study demonstrated that alkaliphilic microbial communities can degrade the CDP associated with some radioactive waste disposal concepts at pH 11. These communities divert significant amounts of degradable carbon to EPS formation, suggesting that EPS has a central role in the protection of these communities from hyperalkaline conditions.
机译:人为甲醛网站提供了一种类似于用于放射性废物的拟议的水泥地质处理设施(GDF)的环境。根据缺氧,碱性条件纤维素废物将水解为由异糖糖酸(ISA)为主的一系列纤维素降解产物(CDP)。为了探讨CENDEMINATIG GDF中微生物活性的可能性,纤维素样品在碱性(类似于pH12)中,石灰窑废物的厌氧区。在检索之后,这些样品经历了部分碱性水解,并通过蛋白质主导的生物膜群落进行了殖民,其中还存在氢营养型碱性甲烷。当这些样品用于建立碱性CDP喂养麦克白CDP时,群体从梭菌中移开,甲烷血糖变得不可检测,并且由Alishewanella sp主导的絮凝群体。已确立的。这些絮状物由嵌入多糖和通过细胞外DNA稳定的蛋白质组成的细菌组成。该社区能够降低所有形式的ISA,其中60%的碳流被引入细胞外聚合物物质(EPS)生产。本研究表明,碱性微生物社区可以降解与pH11的一些放射性废物处理概念相关的CDP。这些社区将大量可降解的碳转移到EPS形成中,这表明EPS在保护这些社区免受甲脂糖条件的核心作用。

著录项

  • 来源
    《FEMS Microbiology Ecology》 |2015年第8期|共11页
  • 作者单位

    Univ Huddersfield Sch Appl Sci Dept Biol Sci Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Sch Appl Sci Dept Biol Sci Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Sch Appl Sci Dept Biol Sci Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Sch Appl Sci Dept Biol Sci Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Sch Appl Sci Dept Chem Sci Huddersfield HD1 3DH W Yorkshire England;

    Univ Huddersfield Sch Appl Sci Dept Biol Sci Huddersfield HD1 3DH W Yorkshire England;

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

    ISA; Isosaccharinic acid; Biofilm; EPS; hyperalkaline;

    机译:ISA;异糖糖酸;生物膜;EPS;甲脂糖;

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