首页> 外文期刊>The Science of the Total Environment >Carbonaceous nanomaterials stimulate extracellular enzyme release by the fungus Cladosporium sp. and enhance extracellular electron transfer to facilitate lignin biodegradation
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Carbonaceous nanomaterials stimulate extracellular enzyme release by the fungus Cladosporium sp. and enhance extracellular electron transfer to facilitate lignin biodegradation

机译:含碳纳米材料刺激真菌族孢子菌Sp的细胞外酶释放。增强细胞外电子转移,促进木质素生物降解

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摘要

The release of carbonaceous nanomaterials (CNMs) into the environment inevitably affects the surrounding microenvironment, biochemical processes of microbes, and even entire ecosystems. However, the knowledge of the impact of CNMs on the environmental microbial activities and further natural organic matter biodegradation is still less known. Here we investigated the impact of three CNMs (single-walled carbon nanotubes, graphene, and oxidized graphene) on extracellular enzymes activities of a fungal strain (Cladosporium sp.) and lignin biodegradation. All three CNMs increased the activities of three non-specific enzymes (laccase, manganese peroxidase, and lignin peroxidase) to different degrees, among which manganese peroxidase activity increased significantly, with an average promotion of 20% within 18 days. Meanwhile, structural characterization revealed the transformations of CNMs caused by fungal biodegradation. CNMs stimulation fungal enzyme activities further enhanced lignin degradation. Adsorption experiments and electrochemistry analysis demonstrated the mechanism that CNMs acted as adsorbent of extracellular enzymes as well as electron conductors, which enhanced extracellular direct electron transfer between enzymes and lignin and facilitated lignin conversion and degradation. Our results highlight the potential effect of CNMs on the lignin degradation by fungi, and require consideration when evaluating the environmental effects of CNMs on microbial communities or even carbon cycling across whole ecosystems. (C) 2019 Elsevier B.V. All rights reserved.
机译:碳质纳米材料(CNMS)释放到环境中不可避免地影响周围的微环境,微生物的生化过程,甚至整个生态系统。然而,CNMS对环境微生物活性的影响和进一步的天然有机物生物降解的知识仍然缺少。在这里,我们研究了三种CNMS(单壁碳纳米管,石墨烯和氧化石墨烯)对真菌菌株(Cladosporium sp.)和木质素生物降解的细胞外酶活性的影响。所有三种CNMS增加了三种非特异性酶(La Ligscase,过氧化物酶和木质素过氧化物酶)的活性,不同程度,其中锰过氧化物酶活性显着增加,平均促进在18天内20%。同时,结构表征揭示了通过真菌生物降解引起的CNMS的转化。 CNMS刺激真菌酶活性进一步增强木质素降解。吸附实验和电化学分析证明了CNMS作为细胞外酶以及电子导体的吸附剂的机制,其增强了酶和木质素之间的细胞外直接电子转移,并促进了木质素转化和降解。我们的结果突出了CNMS对真菌降解的潜在影响,并在评估CNMS对微生物社区的环境影响或甚至跨越整个生态系统的碳循环时考虑。 (c)2019 Elsevier B.v.保留所有权利。

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