Distinct microbial communities are linked to organic matter properties in millimetre-sized soil aggregates.

IF 10.8 1区 环境科学与生态学 Q1 ECOLOGY
Eva Simon, Ksenia Guseva, Sean Darcy, Lauren Alteio, Petra Pjevac, Hannes Schmidt, Kian Jenab, Christian Ranits, Christina Kaiser
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Abstract

Soils provide essential ecosystem services and represent the most diverse habitat on Earth. It has been suggested that the presence of various physico-chemically heterogeneous microhabitats supports the enormous diversity of microbial communities in soil. However, little is known about the relationship between microbial communities and their immediate environment at the micro- to millimetre scale. In this study, we examined whether bacteria, archaea, and fungi organize into distinct communities in individual 2-mm-sized soil aggregates and compared them to communities of homogenized bulk soil samples. Furthermore, we investigated their relationship to their local environment by concomitantly determining microbial community structure and physico-chemical properties from the same individual aggregates. Aggregate communities displayed exceptionally high beta-diversity, with 3-4 aggregates collectively capturing more diversity than their homogenized parent soil core. Up to 20%-30% of ASVs (particularly rare ones) were unique to individual aggregates selected within a few centimetres. Aggregates and bulk soil samples showed partly different dominant phyla, indicating that taxa that are potentially driving biogeochemical processes at the small scale may not be recognized when analysing larger soil volumes. Microbial community composition and richness of individual aggregates were closely related to aggregate-specific carbon and nitrogen content, carbon stable-isotope composition, and soil moisture, indicating that aggregates provide a stable environment for sufficient time to allow co-development of communities and their environment. We conclude that the soil microbiome is a metacommunity of variable subcommunities. Our study highlights the necessity to study small, spatially coherent soil samples to better understand controls of community structure and community-mediated processes in soils.

不同的微生物群落与毫米级土壤团聚体中有机物的特性有关。
土壤提供重要的生态系统服务,是地球上最多样化的栖息地。有人认为,土壤中存在的各种物理化学异质微生境支持了微生物群落的巨大多样性。然而,人们对微生物群落与其周围环境在微米到毫米尺度上的关系知之甚少。在这项研究中,我们考察了细菌、古生菌和真菌是否在单个 2 毫米大小的土壤聚集体中组织成不同的群落,并将它们与均质化大块土壤样本的群落进行了比较。此外,我们还通过同时测定相同个体聚集体的微生物群落结构和物理化学特性,研究了它们与当地环境的关系。聚合体群落显示出极高的β-多样性,3-4 个聚合体共同捕获的多样性超过了其均质化母体土壤核心。多达 20-30% 的 ASV(尤其是稀有的 ASV)是在几厘米范围内选取的单个聚集体所独有的。聚集体和大体积土壤样本显示出部分不同的优势门类,这表明在分析大体积土壤时,可能无法识别在小尺度上推动生物地球化学过程的分类群。单个聚合体的微生物群落组成和丰富度与聚合体特定的碳和氮含量、碳稳定同位素组成和土壤湿度密切相关,这表明聚合体在足够长的时间内提供了稳定的环境,使群落与其环境共同发展。我们的结论是,土壤微生物组是一个由可变亚群落组成的元群落。我们的研究强调了研究小规模、空间一致的土壤样本的必要性,以便更好地了解群落结构的控制和群落介导的土壤过程。
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来源期刊
ISME Journal
ISME Journal 环境科学-生态学
CiteScore
22.10
自引率
2.70%
发文量
171
审稿时长
2.6 months
期刊介绍: The ISME Journal covers the diverse and integrated areas of microbial ecology. We encourage contributions that represent major advances for the study of microbial ecosystems, communities, and interactions of microorganisms in the environment. Articles in The ISME Journal describe pioneering discoveries of wide appeal that enhance our understanding of functional and mechanistic relationships among microorganisms, their communities, and their habitats.
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