Fe2O3@D201好氧条件下微生物接种提高食物垃圾降解效率。

IF 2.3 3区 生物学 Q3 MICROBIOLOGY
Ying Han, Meiqi Yin, Qingrui Zhang, Lili Tian, Hao Wu, Yu Song, Xin He
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引用次数: 0

摘要

全球食物垃圾的数量正以惊人的速度增长,使安全处理成为城市管理中的一个紧迫问题。FW处置不当会给健康和环境带来风险。好氧降解设备已成为一种很有前途的解决方案,通过添加微生物剂处理FW。然而,目前的设备面临着加工时间长、效率低等挑战。因此,我们研究了微生物剂与氧化铁纳米树脂(Fe2O3@D201)组合对FW好氧降解的影响。我们用10%的微生物剂添加6%的Fe2O3@D201进行FW降解实验。与添加10%微生物剂的对照组相比,Fe2O3@D201-treated组渗滤液中溶解COD水平较高,达到1.59 × 105 mg/L。此外,该组FW的微生物水解酶活性超过了对照组,纤维素酶活性峰值为0.13 U,而对照组的峰值为0.06 U。通过16S rRNA基因扩增子测序,我们发现Fe2O3@D201显著增加了芽孢杆菌的丰度,而芽孢杆菌通常具有水解功能。结果表明,Fe2O3@D201通过促进特定微生物的丰度,从而提高水解酶的活性,促进固体大分子转化为可溶有机物,从而促进FW的降解。因此,Fe2O3@D201显示了在FW处理设备中的应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fe2O3@D201 Enhanced Efficiency of Food Waste Degradation by Microbial Inoculum Under Aerobic Condition.

The global quantity of food waste (FW) is increasing at an alarming rate, making safe disposal a pressing issue in urban management. The inappropriate disposal of FW will put risks on health and environment. Aerobic degradation equipment has emerged as a promising solution for FW disposal by adding microbial agents. However, current equipment faces challenges such as long processing duration and low efficiency. Therefore, we investigated the impact of combining microbial agents with iron oxide nano-resin (Fe2O3@D201) on the aerobic degradation of FW. We conducted experiments using 10% microbial agents supplemented with 6% Fe2O3@D201 for FW degradation. Compared to the control group containing 10% microbial agents, the Fe2O3@D201-treated group showed higher levels of dissolved COD in the leachate, reaching 1.59 × 105 mg/L. Furthermore, the microbial hydrolytic enzyme activities in FW of this group surpassed those of the control group, with cellulase activity peaking at 0.13 U compared to the control group's peak of 0.06 U. Through 16S rRNA gene amplicon sequencing, we found that Fe2O3@D201 significantly enriched the abundance of Bacillus, which are commonly known for their hydrolysis functions. The results indicated that Fe2O3@D201 enhanced FW degradation by promoting the abundance of specialized microorganisms, and thus increased the hydrolytic enzyme activity, promoting the conversion of solid macromolecules into soluble organic matter. Consequently, Fe2O3@D201 shows potential for application in FW treatment equipment.

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来源期刊
Current Microbiology
Current Microbiology 生物-微生物学
CiteScore
4.80
自引率
3.80%
发文量
380
审稿时长
2.5 months
期刊介绍: Current Microbiology is a well-established journal that publishes articles in all aspects of microbial cells and the interactions between the microorganisms, their hosts and the environment. Current Microbiology publishes original research articles, short communications, reviews and letters to the editor, spanning the following areas: physiology, biochemistry, genetics, genomics, biotechnology, ecology, evolution, morphology, taxonomy, diagnostic methods, medical and clinical microbiology and immunology as applied to microorganisms.
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