Xu Song, Tao Lidan, Wang Jingjing, Zhang Xiaoxia, Huang Zhiyong
Tianjin Institute of Industrial Biotechnology Chinese Academy of Sciences Tianjin China.
National Technology Innovation Center of Synthetic Biology Tianjin China.
Eng Life Sci. 2023 Feb 2;24(5):2200067. doi: 10.1002/elsc.202200067. eCollection 2024 May.
The high salt content of food waste (FW) severely limits microbial physiological activity and reduces its biodegradability. In this study, a salt-tolerant thermophilic bacterial agent that consists of four different substrate degradation functional strains was evaluated for efficient high salt and oily FW in solid-state aerobic biodegradation disposers. The phy-chemical properties, enzyme activities, microbial community structure, and function during the biodegradation process were evaluated under high salt (5%) stress. The results showed that the agent promoted the degradation rate, increased the matrix temperature, decreased the moisture content (MC), and enhanced enzyme activities without putrid smell. High-throughput sequencing indicated community structure succession between different groups and the positive contribution of the inoculated functional strains. During the FW biodegradation process, the sp. inoculated was the dominant genus in the agent group. Furthermore, CCA further confirmed the positive effects of the four inoculated strains on high salt and oily FW aerobic biodegradation. Functional prediction and metabolite results both confirmed that the agent was more efficient in carbon, amino acid, and lipid metabolism, which demonstrated that the synthetic microbial consortium holds a potential advantage for efficiency and subsequent resource utilization for organic fertilizer.
食物垃圾(FW)的高盐含量严重限制了微生物的生理活性,降低了其生物降解性。在本研究中,对一种由四种不同底物降解功能菌株组成的耐盐嗜热细菌制剂进行了评估,以用于固态好氧生物降解处理装置中高效处理高盐和油性食物垃圾。在高盐(5%)胁迫下,对生物降解过程中的理化性质、酶活性、微生物群落结构和功能进行了评估。结果表明,该制剂提高了降解速率,升高了基质温度,降低了水分含量(MC),增强了酶活性,且无腐臭味。高通量测序表明不同组之间的群落结构演替以及接种功能菌株的积极贡献。在食物垃圾生物降解过程中,接种的芽孢杆菌属是制剂组中的优势属。此外,冗余分析(CCA)进一步证实了四种接种菌株对高盐和油性食物垃圾好氧生物降解的积极作用。功能预测和代谢产物结果均证实,该制剂在碳、氨基酸和脂质代谢方面更高效,这表明合成微生物群落对于有机肥料的效率和后续资源利用具有潜在优势。