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From lignocellulosic metagenomes to lignocellulolytic genes: trends, challenges and future prospects

机译:从木质纤维素含量到木质纤维素溶解基因:趋势,挑战和未来的前景

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摘要

Lignocellulose is the most abundant biomass on Earth with immense potential to act as a primary resource for the production of a range of compounds currently obtained from fossil fuel sources. However, lignocellulosic feedstocks remain largely underexploited due to the complex mixture of recalcitrant polymers present, whose structural features hinder access to the utilizable monosaccharide reservoir within cellulose. Various fungi and bacteria have been identified that can enzymatically decompose lignocellulose to its monomeric compounds for use as carbon sources. The investigation of such lignocellulolytic organisms has proven very useful in gaining primary insights into degradation processes and key microbial enzymes, but the established limitations of culture-based approaches suggest that we have yet to understand the full range of lignocellulolytic mechanisms, likely expressed within natural systems. In this review, we focus on metagenomic approaches to study lignocellulose degradation from structural and functional perspectives, which may provide novel insights into this process in order to rationally design methods for the extraction of compounds from biomass that could enhance biorefinery efficiencies. (c) 2016 Society of Chemical Industry and John Wiley & Sons, Ltd
机译:木质纤维素是地球上最丰富的生物质,其潜力潜力充当用于生产目前从化石燃料源获得的一系列化合物的主要资源。然而,由于存在的甲醛聚合物的复杂混合物存在,木质纤维素原料在很大程度上仍然是望远镜,其结构特征妨碍纤维素内使用可使用的单糖储存器。已经鉴定了各种真菌和细菌,其可以酶促将木质纤维素酶活化为其单体化合物用作碳源。这种木质纤维素溶解生物的研究已被证明在获得降解过程和关键微生物酶的主要见解中非常有用,但是培养基方法的既定局限表明我们尚未理解的全系列木质纤维素机制,可能在自然系统中表达。在本文中,我们专注于研究木质纤维素降解结构和功能性观点的偏见方法,这可以为该过程提供新的见解,以便合理地设计用于从生物质中提取化合物的方法,这些方法可以增强生物质效率。 (c)2016化学工业协会和约翰瓦里和儿子有限公司

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