College of Light Industry and Food Engineering, Guangxi University, Nanning 530004, Guangxi, China.
College of Light Industry and Food Engineering, Guangxi University, Nanning 530004, Guangxi, China; Academy of Sugarcane and Sugar Industry, Guangxi University, Nanning 530004, Guangxi, China.
Environ Res. 2024 Jul 1;252(Pt 1):118604. doi: 10.1016/j.envres.2024.118604. Epub 2024 Mar 26.
The effective degradation of recalcitrant lignocellulose has emerged as a bottleneck for the humification of compost, and strategies are required to improve the efficiency of bagasse composting. Bioaugmentation is a promising method for promoting compost maturation and improving the quality of final compost. In this study, the bioaugmentation effects of microbial inoculants on humic acid (HA) formation during lignocellulosic composting were explored. In the inoculated group, the maximum temperature was increased to 72.5 °C, and the phenol-protein condensation and Maillard humification pathways were enhanced, thus increasing the HA content by 43.85%. After inoculation, the intensity of the microbial community interactions increased, particularly for fungi (1.4-fold). Macrogenomic analysis revealed that inoculation enriched thermophilic bacteria and lignocellulose-degrading fungi and increased the activity of carbohydrate-active enzymes and related metabolic functions, which effectively disrupted the recalcitrant structure of lignocellulose to achieve a high humification degree. Spearman correlation analysis indicated that Stappia of the Proteobacteria phylum, Ilumatobacter of the Actinomycetes phylum, and eleven genera of Ascomycota were the main HA producers. This study provides new ideas for bagasse treatment and recycling and realizing the comprehensive use of resources.
木质纤维素的有效降解已成为堆肥腐殖化的瓶颈,需要采取策略来提高蔗渣堆肥的效率。生物强化是一种促进堆肥成熟和提高最终堆肥质量的有前途的方法。本研究探讨了微生物接种剂对木质纤维素堆肥过程中腐殖酸(HA)形成的生物强化作用。在接种组中,最高温度升高至 72.5°C,促进了酚蛋白缩合和美拉德腐殖化途径,从而使 HA 含量增加了 43.85%。接种后,微生物群落相互作用的强度增加,特别是真菌(增加了 1.4 倍)。宏基因组分析表明,接种富集了嗜热细菌和木质纤维素降解真菌,增加了碳水化合物活性酶的活性和相关代谢功能,有效地破坏了木质纤维素的抗性结构,实现了高腐殖化程度。Spearman 相关性分析表明,厚壁菌门的 Stappia、放线菌门的 Ilumatobacter 和子囊菌门的 11 个属是主要的 HA 产生菌。本研究为蔗渣处理和回收提供了新思路,实现了资源的综合利用。