Succession and diversity of microorganisms and their association with physicochemical properties during green waste thermophilic composting

厚壁菌 堆肥 蛋白质细菌 绿色废弃物 纤维素酶 多样性指数 食品科学 微生物 微生物种群生物学 生物 化学 细菌 生态学 纤维素 16S核糖体RNA 生物化学 物种丰富度 遗传学
作者
Ling Liu,Shuqi Wang,Xiaoping Guo,Tingning Zhao,Bolin Zhang
出处
期刊:Waste Management [Elsevier BV]
卷期号:73: 101-112 被引量:223
标识
DOI:10.1016/j.wasman.2017.12.026
摘要

Abstract A comprehensive characterization of the bacterial diversity associated to thermophilic stages of green waste composting was achieved. In this study, eight different treatments (T1–T8) and three replicated lab-scale green waste composting were carried out to compare the effect of the cellulase (i.e. 0, 2%), microbial inoculum (i.e. 0, 2 and 4%) and particle size (i.e. 2 and 5 mm) on bacterial community structure. Physicochemical properties and bacterial communities of T1–T8 composts were observed, and the bacterial structure and diversity were examined by high-throughput sequencing via a MiSeq platform. The results showed that the most abundant phyla among the treatments were the Firmicutes, Chloroflexi and Proteobacteria. The shannon index and non-metric multidimensional scaling (NMDS) showed higher bacterial abundance and diversity at the metaphase of composting. Comparing with 5-mm treatments, particle size of 2-mm had a richer diversity of bacterial communities. The addition of cellulase and a microbial inoculum could promote the fermentation temperature, reduce the compost pH and C/N ratio and result in higher GI index. The humic substance (HS) and humic acid (HA) contents for 2-mm particle size treatments were higher than those of 5-mm treatments. Canonical correspondence analysis suggested that differences in bacterial abundance and diversity significantly correlated with HA, E4/E6 and temperature, and the relationship between bacterial diversity and environmental parameters was affected by composting stages. Based on these results, the application of cellulase to promote green waste composting was feasible, and particle size was identified as a potential control of composting physicochemical properties and bacterial diversity.
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