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陆地塑料圈:土壤中与塑料相关的微生物群落的多样性及聚合物定殖潜力

The Terrestrial Plastisphere: Diversity and Polymer-Colonizing Potential of Plastic-Associated Microbial Communities in Soil.

作者信息

MacLean Joana, Mayanna Sathish, Benning Liane G, Horn Fabian, Bartholomäus Alexander, Wiesner Yosri, Wagner Dirk, Liebner Susanne

机构信息

GFZ German Research Centre for Geosciences, Section Geomicrobiology, 14473 Potsdam, Germany.

GFZ German Research Centre for Geosciences, Section Interface Geochemistry, 14473 Potsdam, Germany.

出版信息

Microorganisms. 2021 Sep 3;9(9):1876. doi: 10.3390/microorganisms9091876.

Abstract

The concept of a 'plastisphere microbial community' arose from research on aquatic plastic debris, while the effect of plastics on microbial communities in soils remains poorly understood. Therefore, we examined the inhabiting microbial communities of two plastic debris ecosystems with regard to their diversity and composition relative to plastic-free soils from the same area using 16S rRNA amplicon sequencing. Furthermore, we studied the plastic-colonizing potential of bacteria originating from both study sites as a measure of surface adhesion to UV-weathered polyethylene (PE) using high-magnification field emission scanning electron microscopy (FESEM). The high plastic content of the soils was associated with a reduced alpha diversity and a significantly different structure of the microbial communities. The presence of plastic debris in soils did not specifically enrich bacteria known to degrade plastic, as suggested by earlier studies, but rather shifted the microbial community towards highly abundant autotrophic bacteria potentially tolerant to hydrophobic environments and known to be important for biocrust formation. The bacterial inoculates from both sites formed dense biofilms on the surface and in micrometer-scale surface cracks of the UV-weathered PE chips after 100 days of in vitro incubation with visible threadlike EPS structures and cross-connections enabling surface adhesion. High-resolution FESEM imaging further indicates that the microbial colonization catalyzed some of the surface degradation of PE. In essence, this study suggests the concept of a 'terrestrial plastisphere' as a diverse consortium of microorganisms including autotrophs and other pioneering species paving the way for those members of the consortium that may eventually break down the plastic compounds.

摘要

“塑料球微生物群落”的概念源于对水生塑料碎片的研究,而塑料对土壤中微生物群落的影响仍知之甚少。因此,我们使用16S rRNA扩增子测序,研究了两个塑料碎片生态系统中栖息的微生物群落,比较了它们相对于同一地区无塑料土壤的多样性和组成。此外,我们使用高倍场发射扫描电子显微镜(FESEM),研究了来自两个研究地点的细菌在紫外线风化聚乙烯(PE)表面的附着潜力,以此作为表面附着力的一种衡量方式。土壤中高含量的塑料与微生物群落的α多样性降低和显著不同的结构有关。正如早期研究所表明的,土壤中塑料碎片的存在并没有特别富集已知能降解塑料的细菌,而是使微生物群落向高度丰富的自养细菌转变,这些细菌可能耐受疏水环境,并且已知对生物结皮的形成很重要。在体外培养100天后,来自两个地点的细菌接种物在紫外线风化的PE芯片表面和微米级表面裂缝中形成了密集的生物膜,可见丝状胞外聚合物结构和交叉连接有助于表面附着。高分辨率FESEM成像进一步表明,微生物定殖催化了PE的一些表面降解。从本质上讲,这项研究提出了“陆地塑料球”的概念,它是一个由自养生物和其他先锋物种组成的多样化微生物群落,为最终可能分解塑料化合物的群落成员铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1c15/8465064/9407ec5bde37/microorganisms-09-01876-g001.jpg

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