Key Laboratory of Recycling and Eco‑treatment of Waste Biomass of Zhejiang Province, School of Environmental and Natural Resources, Zhejiang University of Science and Technology, Hangzhou 310023, China.
Key Laboratory of Recycling and Eco‑treatment of Waste Biomass of Zhejiang Province, School of Environmental and Natural Resources, Zhejiang University of Science and Technology, Hangzhou 310023, China.
Bioresour Technol. 2024 Aug;406:130971. doi: 10.1016/j.biortech.2024.130971. Epub 2024 Jun 18.
Microorganisms harvest energy from agricultural waste by degrading its structure. By comparing with Trichoderma reesei QM6a in cellulase production, straw deconstruction and transcriptome response, Trichoderma asperellum T-1 was identified to be prioritized for the fermentation of natural straw. Cellulase activity of T-1 was 50%-102% higher than QM6a. And the degradation rate of hemicellulose and ligin in wheat straw by T-1 reached 40% and 42%. Time-driven changes in the gene expression of extracellular proteins involved in polysaccharide, xylan, and hemicellulose metabolism and hydrolysis indicated that T-1 positively responded in both solid state fermentation and submerged fermentation for lignocellulose degradation. A significantly enriched category encoding carbohydrate-binding modules is considered critical for the deconstruction of the natural structure by T-1. The findings highlight the superiority of T. asperellum T-1 in straw fermentation, base on which, the construction of efficient microbial agents is expected to enhance the utilization of biomass.
微生物通过降解其结构从农业废水中获取能量。通过比较里氏木霉 QM6a 在纤维素酶生产、秸秆解构和转录组响应方面的性能,鉴定出asperellum T-1 优先用于天然秸秆的发酵。T-1 的纤维素酶活性比 QM6a 高 50%-102%。并且 T-1 对小麦秸秆中半纤维素和木质素的降解率分别达到了 40%和 42%。参与多糖、木聚糖和半纤维素代谢和水解的细胞外蛋白的基因表达随时间的变化表明,T-1 对固态发酵和液态发酵中木质纤维素的降解均有积极响应。一个编码碳水化合物结合模块的显著富集类别被认为对 T-1 对天然结构的解构至关重要。这些发现突出了asperellum T-1 在秸秆发酵方面的优势,在此基础上,有望构建高效的微生物制剂来提高生物质的利用率。