Department of Conservation Biology, Institute of Environmental Sciences (CML), Leiden University Leiden, Netherlands.
Department of Aquatic Ecology and Ecotoxicology, Institute for Biodiversity and Ecosystem Dynamics, University of Amsterdam Amsterdam, Netherlands.
Front Microbiol. 2015 Feb 24;6:105. doi: 10.3389/fmicb.2015.00105. eCollection 2015.
Decomposition of organic matter is an important ecosystem process governed in part by bacteria. The process of decomposition is expected to benefit from interspecific bacterial interactions such as resource partitioning and facilitation. However, the relative importance of resource niche breadth (metabolic diversity) and resource niche overlap (functional redundancy) on decomposition and the temporal stability of ecosystem processes received little scientific attention. Therefore, this study aims to evaluate the effect of an increase in bacterial community resemblance on both decomposition and the stability of bacterial metabolism in aquatic sediments. To this end, we performed laboratory microcosm experiments in which we examined the influence of bacterial consortia differing in number and composition of species on bacterial activity (Electron Transport System Activity, ETSA), dissolved organic carbon production and wavelet transformed measurements of redox potential (Eh). Single substrate affinities of the individual bacterial species were determined in order to calculate the metabolic diversity of the microbial community. Results presented here indicate that bacterial activity and organic matter decomposition increase with widening of the resource niche breadth, and that metabolic stability increases with increasing overlap in bacterial resource niches, hinting that resource niche overlap can promote the stability of bacterial community metabolism.
有机物的分解是一个重要的生态系统过程,部分受细菌控制。预计分解过程将受益于种间细菌相互作用,如资源划分和促进。然而,资源生态位宽度(代谢多样性)和资源生态位重叠(功能冗余)对分解的相对重要性以及生态系统过程的时间稳定性很少受到科学关注。因此,本研究旨在评估细菌群落相似性增加对水生沉积物中分解和细菌代谢稳定性的影响。为此,我们进行了实验室微宇宙实验,研究了具有不同物种数量和组成的细菌共生体对细菌活性(电子传递系统活性,ETS)、溶解有机碳产生和氧化还原电位(Eh)的小波变换测量的影响。为了计算微生物群落的代谢多样性,确定了单个细菌物种的单一底物亲和力。这里呈现的结果表明,细菌活性和有机物分解随着资源生态位宽度的扩大而增加,而代谢稳定性随着细菌资源生态位重叠的增加而增加,这表明资源生态位重叠可以促进细菌群落代谢的稳定性。