Degradation of lignin in different lignocellulosic biomass by steam explosion combined with microbial consortium treatment.

Wen Zhang, Chenyang Diao, Lei Wang
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引用次数: 4

Abstract

The difficulty of degrading lignin is the main factor limiting the high-value conversion process of lignocellulosic biomass. The biodegradation of lignin has attracted much attention because of its strong environmental friendliness, but it still faces some dilemmas such as slow degradation rate and poor adaptability. The microbial consortia with high lignin degradation efficiency and strong environmental adaptability were obtained in our previous research. To further increase the lignin degradation efficiency, this paper proposes a composite treatment technology of steam explosion combined with microbial consortium degradation to treat three kinds of biomass. We measured the lignin degradation efficiency, selectivity value (SV) and enzymatic saccharification efficiency. The structural changes of the biomass materials and microbial consortium structure were also investigated. The experimental results showed that after 1.6 MPa steam explosion treatment, the lignin degradation efficiency of the eucalyptus root reached 35.35% on the 7th days by microbial consortium. At the same time, the lignin degradation efficiency of the bagasse and corn straw treated by steam explosion followed by microbial biotreatment was 37.61-44.24%, respectively, after only 7 days of biotreatment. The microbial consortium also showed strong selectivity degradation to lignin. The composite treatment technology can significantly improve the enzymatic saccharification efficiency. Saccharomycetales, Ralstonia and Pseudomonadaceae were the dominant microorganisms in the biomass degradation systems. It was proved that the combined treatment technology of steam explosion and microbial consortium degradation could overcome the drawbacks of traditional microbial pretreatment technology, and can facilitate the subsequent high-value conversion of lignocellulose.

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蒸汽爆炸联合微生物联合处理不同木质纤维素生物质中木质素的降解研究。
木质素降解困难是制约木质纤维素生物质高价值转化过程的主要因素。木质素的生物降解因其较强的环境友好性而备受关注,但仍面临降解速度慢、适应性差等难题。我们在前期的研究中获得了木质素降解效率高、环境适应性强的微生物群落。为了进一步提高木质素的降解效率,本文提出了蒸汽爆炸结合微生物联合体降解的复合处理技术对三种生物质进行处理。测定了木质素的降解效率、选择性值(SV)和酶促糖化效率。对生物质材料的结构变化和微生物群落结构进行了研究。实验结果表明,经1.6 MPa蒸汽爆炸处理后,桉树根第7天微生物群落对木质素的降解效率达到35.35%。同时,蒸汽爆破再微生物处理蔗渣和玉米秸秆,在生物处理仅7 d后,木质素降解效率分别为37.61 ~ 44.24%。该菌群对木质素也表现出较强的选择性降解。该复合处理技术可显著提高酶解糖化效率。酵母菌、拉氏菌和假单胞菌科是生物量降解系统中的优势微生物。实验证明,蒸汽爆破与微生物联合降解联合处理技术克服了传统微生物预处理技术的不足,有利于木质纤维素后续的高价值转化。
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