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通过直接评估酶对不溶性基质的作用来推动木质纤维素生物转化。

Advancing lignocellulose bioconversion through direct assessment of enzyme action on insoluble substrates.

机构信息

Department of Biochemistry, Chemistry and Physics, Niagara University, NY, USA.

Department of Geoscience and Natural Resource Management, Faculty of Science, University of Copenhagen, Frederiksberg, Denmark; Department of Chemical Engineering and Applied Chemistry, University of Toronto, Toronto, Ontario, Canada.

出版信息

Curr Opin Biotechnol. 2014 Jun;27:123-33. doi: 10.1016/j.copbio.2014.01.009. Epub 2014 Feb 11.

Abstract

Microbial utilization of lignocellulose from plant cell walls is integral to carbon cycling on Earth. Correspondingly, secreted enzymes that initiate lignocellulose depolymerization serve a crucial step in the bioconversion of lignocellulosic biomass to fuels and chemicals. Genome and metagenome sequencing efforts that span the past decade reveal the diversity of enzymes that have evolved to transform lignocellulose from wood, herbaceous plants and grasses. Nevertheless, there are relatively few examples where 'omic' technologies have identified novel enzyme activities or combinations thereof that dramatically improve the economics of lignocellulose bioprocessing and utilization. A likely factor contributing to the discrepancy between sequence-based enzyme discovery and enzyme application is the common practice to screen enzyme candidates based on activity measurements using soluble model compounds. In this context, the development and application of imaging, physicochemical, and spectromicroscopic techniques that allow direct assessment of enzyme action on relevant lignocellulosic substrates is reviewed.

摘要

微生物利用植物细胞壁中的木质纤维素是地球碳循环的重要组成部分。相应地,启动木质纤维素解聚的分泌酶在木质纤维素生物质转化为燃料和化学品的生物转化过程中起着至关重要的作用。过去十年的基因组和宏基因组测序工作揭示了已经进化出的各种酶,这些酶可以将木质纤维素从木材、草本植物和草类中转化。然而,在“组学”技术确定显著提高木质纤维素生物加工和利用经济性的新型酶活性或其组合的例子相对较少。导致基于序列的酶发现与酶应用之间存在差异的一个可能因素是,根据使用可溶性模型化合物进行活性测量筛选酶候选物的常见做法。在这种情况下,综述了可直接评估酶在相关木质纤维素底物上作用的成像、物理化学和光谱显微镜技术的开发和应用。

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