Department of Hydraulic and Sanitary Engineering, Poznań University of Life Sciences, ul. Piątkowska 94A, 60-649 Poznan, Poland.
Department of Soil Science and Microbiology, Poznań University of Life Sciences, ul. Szydłowska 50, 60-656 Poznan, Poland.
Cells. 2022 Aug 18;11(16):2571. doi: 10.3390/cells11162571.
This paper analyses the impact of the diatomaceous earth/peat (DEP; 3:1) microbial carrier on changes in the bacterial microbiome and the development of biofilm in the anaerobic digestion (AD) of confectionery waste, combined with digested sewage sludge as inoculum. The physicochemical properties of the carrier material are presented, with particular focus on its morphological and dispersion characteristics, as well as adsorption and thermal properties. In this respect, the DEP system was found to be a suitable carrier for both mesophilic and thermophilic AD. The evaluation of quantitative and qualitative changes in the genetic diversity of bacterial communities, carried out using next-generation sequencing (NGS), showed that the material has a modifying effect on the bacterial microbiome. While Actinobacteria was the most abundant cluster in the WF-control sample (WF-waste wafers), Firmicutes was the dominant cluster in the digested samples without the carrier (WF-dig.; dig.-digested) and with the carrier (WF + DEP). The same was true for the count of Proteobacteria, which decreased twofold during biodegradation in favor of Synergistetes. The cluster was identified as the most abundant genus in the two samples, particularly in WF + DEP. This information was supplemented by observations of morphological features of microorganisms carried out using fluorescence microscopy. The biodegradation process itself had a significant impact on changes in the microbiome of samples taken from anaerobic bioreactors, reducing its biodiversity. As demonstrated by the results of this innovative method, namely the BioFlux microfluidic flow system, the decrease in the number of taxa in the digested samples and the addition of DEP contributed to the microbial adhesion in the microfluidic system and the formation of a stable biofilm.
本文分析了硅藻土/泥炭(DEP;3:1)微生物载体对添加消化污水污泥作为接种物的糖果废物厌氧消化(AD)中细菌微生物组变化和生物膜形成的影响。介绍了载体材料的物理化学性质,特别关注其形态和分散特性以及吸附和热性能。在这方面,DEP 系统被发现是适用于中温和高温 AD 的合适载体。使用下一代测序(NGS)评估细菌群落遗传多样性的定量和定性变化表明,该材料对细菌微生物组具有修饰作用。虽然放线菌是 WF-对照样品(WF-废物薄片)中最丰富的簇,但在没有载体的消化样品(WF-dig.;dig.-digested)和有载体的消化样品(WF+DEP)中,厚壁菌门是优势簇。同样适用于变形菌计数,其在生物降解过程中减少了两倍,有利于互营杆菌。 该簇被确定为两个样品中最丰富的属,特别是在 WF+DEP 中。这一信息通过使用荧光显微镜观察微生物的形态特征得到了补充。正如生物通量微流控流动系统这一创新方法的结果所证明的那样,厌氧生物反应器中样品的微生物组的生物多样性减少,消化样品中分类单元数量的减少和 DEP 的添加有助于微生物在微流系统中的粘附和稳定生物膜的形成。