通过提高木质素在碱性溶液中的溶解度,由耐碱性木质素分解菌引发的木质素高效生物降解

IF 20.2 Q1 MATERIALS SCIENCE, PAPER & WOOD
Zhaoxian Xu , Jie Li , Pingping Li , Chenggu Cai , Sitong Chen , Boning Ding , Shuangmei Liu , Mianshen Ge , Mingjie Jin
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引用次数: 0

摘要

木质素在水溶液中的溶解度低是木质素生物降解和生物转化的主要瓶颈之一。碱性溶液有助于提高木质素的溶解度,而大多数微生物不能在碱性条件下生存。本文系统地研究了木质素在不同pH溶液中的溶解行为,表明溶液pH高于10.5有助于碱木质素的高溶解性。为了与碱性木质素水体系相匹配,分离出了几种耐碱的木质素分解菌,其中大多数与以前报道的不同。然后,通过测定这些分离物对碱性木质素、木质素衍生的单体和二聚体的同化作用、脱色能力和木质素过氧化物酶活性,评估了它们在不同pH条件下的木质素分解能力。然后,根据其基因组信息分析了嗜碱细菌Sutcliffiniella sp.NC1的潜在木质素分解和耐碱机制。研究结果不仅为木质素的生物降解和木质素的价格化提供了有价值的信息,而且扩展了对耐碱细菌的认识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient lignin biodegradation triggered by alkali-tolerant ligninolytic bacteria through improving lignin solubility in alkaline solution

Efficient lignin biodegradation triggered by alkali-tolerant ligninolytic bacteria through improving lignin solubility in alkaline solution

Low lignin solubility in aqueous solution is one of the major bottlenecks for lignin biodegradation and bioconversion. Alkaline solution contributes to improving lignin solubility, whereas most microbes can not survive in alkaline conditions. Herein, lignin dissolution behaviors in different pH solutions were systematically investigated, which indicated that solution pH above 10.5 contributed to high solubility of alkali lignin. To match with alkaline lignin aqueous system, several alkali-tolerant ligninolytic bacteria were isolated, most of which are distinct to previously reported ones. Then, the ligninolytic capabilities of these isolates were assessed in different pH conditions by determining their assimilation on alkali lignin, lignin-derived monomers and dimers, their decolorization capabilities, and their lignin peroxidase activities. Thereafter, the underlying ligninolytic and alkali-tolerant mechanisms of Sutcliffiella sp. NC1, an alkalophilic bacterium, was analyzed on the basis of its genome information. The results not only provide valuable information for lignin biodegradation and lignin valorization, but also expand knowledge on alkali-tolerant bacteria.

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来源期刊
Journal of Bioresources and Bioproducts
Journal of Bioresources and Bioproducts Agricultural and Biological Sciences-Forestry
CiteScore
39.30
自引率
0.00%
发文量
38
审稿时长
12 weeks
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