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Enhancing the enzymatic degradation of lignocellulosic biomass

Enhancing the enzymatic degradation of lignocellulosic biomass
增强木质纤维素生物质的酶促降解
批准号:
1941253
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2021
资助国家:
英国
项目状态:
已结题
起止时间:
2021 至 --

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中文摘要
翻译
化石燃料是全世界能源和碳基化学品的主要来源,但它们的使用是不可持续的。一种“更环保”的燃料和原材料的替代来源是木质纤维素生物质。破坏这种生物质以获取用于生物燃料的纤维素和半纤维素导致木质素废物价值不大,占初始植物生物量的15-30%,但木质素,植物的“木质”部分,也是一种可再生的底物和芳香单体的潜在来源。在自然环境中,微生物利用漆酶和过氧化物酶等酶分解生物质中的木质素。本项目将利用模型和废木质素研究这些酶降解木质素的酶促过程,旨在加强和工业化这一过程。如果要从这种丰富和可持续的碳原料中获得价值,木质素结构的分析仍然是必不可少的。例如,目前用聚苯乙烯标准的凝胶渗透色谱法进行的分子量测定被证明是不充分的。有必要改进分析,特别是在与这里计划的降解实验一起进行时。被选中的博士生将使用SEM, FT-IR和FT-ICR MS等技术来建立我们对现成的木质素废物,Organosolv和Kraft木质素的详细分析。圣安德鲁斯大学在使用先进核磁共振方法方面的专业知识也将有助于这项研究。木质素的一个重要转化已被证实为其选择性解聚成芳香单体的途径,包括在最常见的b-O-4键中选择性氧化苯基羟基。us2和其他人的研究表明,这种氧化可以用化学方法来实现,但这种氧化也可以用酶来进行。为了研究这一点,学生将在Westwood实验室(St Andrews)准备合适的木质素模型化合物3,并使用这些模型来评估木质素加工酶(包括将在Horsfall实验室生产的漆酶、锰过氧化物酶和木质素过氧化物酶)进行这种氧化的能力。一旦对木质素模型化合物的方法进行了优化,学生将把这些方法应用于木质素本身,包括在Westwood实验室新生成的高水溶性富含b-O-4的木质素。
英文摘要
Fossil fuels are the major source of energy and carbon-based chemicals the world over but their use is unsustainable. A 'greener' alternative source for both the generation of fuel and raw materials is lignocellulosic biomass. The disruption of this biomass to access cellulose and hemi-cellulose for biofuels results in lignin waste of little value that constitutes 15-30% of the initial plant biomass but lignin, the 'woody' part of plants, is also a renewable substrate and a potential source of aromatic monomers. In the natural environment, microorganisms using enzymes such as laccases and peroxidases break down the lignin in biomass1. This project will study the enzymatic process of lignin degradation by such enzymes using model and waste lignins, aiming to enhance and industrialise the process. Analysis of the lignin structure remains essential if progress is to be made in deriving value from this abundant and sustainable carbon feedstock. For example, at present molecular weight determination, which is typically done by gel permeation chromatography using polystyrene standards, is proving inadequate. There is a need to improve analysis, especially when performed alongside degradation experiments as planned here. The PhD student selected will use techniques such as SEM, FT-IR and FT-ICR MS to build on our detailed analysis of readily available lignin waste products, Organosolv and Kraft lignins. Expertise from St Andrews in the use of advanced NMR methods will also contribute to this study. One important transformation of lignin that has been validated as a route for its selective depolymerisation to aromatic monomers involves selective oxidation of the benzylic hydroxyl group in the most common b-O-4 linkage. Studies by us2 and others have shown that this oxidation can be achieved using chemical approaches but this oxidation can also be carried out enzymatically. In order to study this, the student will prepare suitable lignin model compounds3 in the Westwood Lab (St Andrews) and use these models to assess the ability of lignin processing enzymes (including laccases, manganese peroxidases and lignin peroxidases that will be produced in the Horsfall lab) to carry out this oxidation. Once the methods have been optimised on lignin model compounds the student will apply these approaches to lignin itself including a newly generated highly water soluble b-O-4 rich lignin available in the Westwood lab.
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