纤维素体半纤维素酶:确保木质纤维素有效生物转化不可或缺的角色

Min Xiao , Ya-Jun Liu , Edward A. Bayer , Akihiko Kosugi , Qiu Cui , Yingang Feng
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摘要

由于农业和林业废弃物作为可再生零碳资源的巨大潜力以及替代化石碳的迫切需求,木质纤维素的生物转化已引起全球关注。纤维素体系统是厌氧细菌产生的一种多酶复合体,由纤维素酶、半纤维素酶以及促进生物质转化的相关酶和非酶成分组成。为了提高纤维素体降解难降解木质纤维素基质的效率,人们利用纤维素体来构建木质纤维素生物转化的生物催化剂,如复合生物处理和复合生物糖化。半纤维素是植物细胞壁中含量第二高的多糖,具有宝贵的应用潜力,但也会对纤维素水解产生抑制作用,因此凸显了半纤维素酶在纤维素体复合物中不可或缺的作用。这篇综述评估了目前有关纤维素体半纤维素酶的研究,比较了它们的类型、丰度和调控,主要侧重于八个不同来源的已知纤维素体生产物种。我们还回顾了它们的生长条件、半纤维素降解能力以及半纤维素对基于纤维素体的木质纤维素糖化的抑制作用。最后,我们提出了有针对性地增强纤维素体中半纤维素酶的策略,以便在今后的研究中改善木质纤维素的生物转化。
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Cellulosomal hemicellulases: Indispensable players for ensuring effective lignocellulose bioconversion

The bioconversion of lignocellulose has attracted global attention, due to the significant potential of agricultural and forestry wastes as renewable zero-carbon resources and the urgent need for substituting fossil carbon. The cellulosome system is a multi-enzyme complex produced by anaerobic bacteria, which comprises cellulases, hemicellulases, and associated enzymatic and non-enzymatic components that promote biomass conversion. To enhance their efficiency in degrading recalcitrant lignocellulosic matrices, cellulosomes have been employed to construct biocatalysts for lignocellulose bioconversion, such as consolidated bioprocessing and consolidated bio-saccharification. Hemicelluloses, the second most abundant polysaccharides in plant cell walls, hold valuable application potential but can also induce inhibitory effects on cellulose hydrolysis, thus highlighting the indispensable roles of hemicellulases within the cellulosome complex. This review evaluated current research on cellulosomal hemicellulases, comparing their types, abundance, and regulation, primarily focusing on eight known cellulosome-producing species of different origins. We also reviewed their growth conditions, their hemicellulose-degrading capabilities, and the inhibitory effects of hemicellulose on cellulosome-based lignocellulose saccharification. Finally, we proposed strategies for targeted enhancement of hemicellulase in cellulosomes to improve lignocellulose bioconversion in future studies.

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