Rago Laura, Zecchin Sarah, Marzorati Stefania, Goglio Andrea, Cavalca Lucia, Cristiani Pierangela, Schievano Andrea
e-Bio Center, Department of Environmental Science and Policy, Università degli Studi di Milano, via Celoria 2, 20133 Milan, Italy.
Department of Biology, University of Konstanz, Konstanz, Germany; e-Bio Center, Department of Food, Environmental and Nutritional Sciences (DeFENS), Università degli Studi di Milano, Via Celoria 2, 20133 Milan, Italy.
Bioelectrochemistry. 2018 Apr;120:18-26. doi: 10.1016/j.bioelechem.2017.11.005. Epub 2017 Nov 11.
Recently, terracotta has attracted interest as low-cost and biocompatible material to build separators in microbial fuel cells (MFCs). However, the influence of a non-conductive material like terracotta on electroactive microbiological communities remains substantially unexplored. This study aims at describing the microbial pools developed from two different seed inocula (bovine and swine sewage) in terracotta-based air-breathing MFC. A statistical approach on microbiological data confirmed different community enrichment in the MFCs, depending mainly on the inoculum. Terracotta separators impeded the growth of electroactive communities in contact with cathodes (biocathodes), while a thick biofilm was observed on the surface (anolyte-side) of the terracotta separator. Terracotta-free MFCs, set as control experiments, showed a well-developed biocathode, Biocathode-MFCs resulted in 4 to 6-fold higher power densities. All biofilms were analyzed by high-throughput Illumina sequencing applied to 16S rRNA gene. The results showed more abundant (3- to 5-fold) electroactive genera (mainly Geobacter, Pseudomonas, Desulfuromonas and Clostridia MBA03) in terracotta-free biocathodes. Nevertheless, terracotta separators induced only slight changes in anodic microbial communities.
最近,赤陶作为一种低成本且具有生物相容性的材料,在构建微生物燃料电池(MFCs)的分离器方面引起了人们的关注。然而,像赤陶这样的非导电材料对电活性微生物群落的影响仍基本未被探索。本研究旨在描述基于赤陶的空气呼吸式MFC中由两种不同种子接种物(牛和猪污水)形成的微生物库。对微生物数据的统计分析证实,MFCs中存在不同的群落富集情况,这主要取决于接种物。赤陶分离器阻碍了与阴极(生物阴极)接触的电活性群落的生长,而在赤陶分离器的表面(阳极液侧)观察到一层厚厚的生物膜。作为对照实验设置的无赤陶MFCs显示出发育良好的生物阴极,生物阴极MFCs的功率密度高出4至6倍。所有生物膜均通过应用于16S rRNA基因的高通量Illumina测序进行分析。结果表明,无赤陶生物阴极中的电活性属(主要是地杆菌属、假单胞菌属、脱硫单胞菌属和梭菌属MBA03)更为丰富(3至5倍)。然而,赤陶分离器仅对阳极微生物群落产生了轻微变化。