Carbon fixation mechanism of fungal community bypass strategy in rice straw composting combined with functional microbes: inhibition from cellobiose to glucose pathway

纤维二糖 化学 固碳 稻草 纤维素 食品科学 稻草 机制(生物学) 碳纤维 废物管理 制浆造纸工业 纤维素酶 生物化学 有机化学 二氧化碳 材料科学 无机化学 复合材料 哲学 工程类 认识论 复合数
作者
Fengting Qu,Ziyuan Wang,Mengmeng Zhao,Caihong Song,Xide Zhu,Zeying Zhou,Zimin Wei
出处
期刊:Journal of Cleaner Production [Elsevier BV]
卷期号:465: 142838-142838 被引量:4
标识
DOI:10.1016/j.jclepro.2024.142838
摘要

Composting offers an eco-friendly approach, converting organic solid waste into valuable soil enhancer products. Three experimental treatments were designed to explore the microbial mechanisms influencing lignocellulose loss in rice straw composting: CK (the control), B4 (inoculated with Bacillus subtilis), and Z1 (inoculated with Aspergillus fumigatus). The results showed significant increases in carboxymethyl cellulase, cellobiohydrolase, laccase, and xylanase activities during B4 and Z1composting. However, lignin peroxidase and manganese peroxidase were not significantly affected, and β-glucosidase was inhibited. Additionally, microbial inoculation stimulated lignin loss, with B4 and Z1 composting increasing degradation by 14.42% and 16.29%, respectively, compared to the CK. Simultaneously, humic substance content increased as microbial inoculation inhibited β-glucosidase, causing cellobiose to accumulate and divert into a pathway that forms humic substances. The random forest model showed that Symmetrospora and Phaeosphaeria significantly boosted lignocellulose loss in B4 and Z1 composting by promoting fungi functional aggregation, thus accelerating the degradation and transformation process. This study explored the microbial mechanism of lignocellulose loss and provided new insights into lignocellulose conversion and carbon fixation.

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