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超越低木质素:鉴定发酵细菌转化植物生物质的主要障碍。

Beyond low lignin: Identifying the primary barrier to plant biomass conversion by fermentative bacteria.

机构信息

Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, NC 27695, USA.

Department of Forestry and Environmental Resources, North Carolina State University, Raleigh, NC 27695, USA.

出版信息

Sci Adv. 2024 Oct 18;10(42):eadq4941. doi: 10.1126/sciadv.adq4941.

Abstract

Renewable alternatives for nonelectrifiable fossil-derived chemicals are needed and plant matter, the most abundant biomass on Earth, provide an ideal feedstock. However, the heterogeneous polymeric composition of lignocellulose makes conversion difficult. Lignin presents a formidable barrier to fermentation of nonpretreated biomass. Extensive chemical and enzymatic treatments can liberate fermentable carbohydrates from plant biomass, but microbial routes offer many advantages, including concomitant conversion to industrial chemicals. Here, testing of lignin content of nonpretreated biomass using the cellulolytic thermophilic bacterium, , revealed that the primary microbial degradation barrier relates to methoxy substitutions in lignin. This contrasts with optimal lignin composition for chemical pretreatment that favors high S/G ratio and low H lignin. Genetically modified poplar trees with diverse lignin compositions confirm these findings. In addition, poplar trees with low methoxy content achieve industrially relevant levels of microbial solubilization without any pretreatments and with no impact on tree fitness in greenhouse.

摘要

需要可再生的替代物来替代无法电动转化的化石衍生化学品,而地球上最丰富的生物质——植物物质,提供了理想的原料。然而,木质纤维素的异质聚合组成使得转化变得困难。木质素对未预处理生物质的发酵构成了巨大的障碍。广泛的化学和酶处理可以从植物生物质中释放出可发酵的碳水化合物,但微生物途径具有许多优势,包括同时转化为工业化学品。在这里,使用纤维素分解嗜热菌 测试未预处理生物质的木质素含量,结果表明,主要的微生物降解障碍与木质素中的甲氧基取代基有关。这与有利于高 S/G 比和低 H 木质素的化学预处理的最佳木质素组成形成对比。具有不同木质素组成的基因改良杨树证实了这些发现。此外,低甲氧基含量的杨树在没有任何预处理的情况下达到了工业相关的微生物溶解水平,并且对温室中的树木适应性没有任何影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fe98/11488576/452fbbc1bb3f/sciadv.adq4941-f1.jpg

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