Testing the sequence of successional processes in miniature ecosystems.

IF 3.7 2区 生物学 Q2 MICROBIOLOGY
Microbiology spectrum Pub Date : 2024-10-03 Epub Date: 2024-08-27 DOI:10.1128/spectrum.01227-24
Maximilian Hanusch, Xie He, Laura Böll, Robert R Junker
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引用次数: 0

Abstract

Dispersal, environmental filtering, and biotic interactions define the species inventory of local communities. Along successional gradients, these assembly processes are predicted to sequentially vary in their relative importance with dispersal as the dominating process early in succession, followed by environmental filtering and biotic interactions at later stages. While observational data from field studies supported this prediction, controlled experiments confirming a sequence of successional processes are still lacking. We designed miniature ecosystems to explicitly test these assumptions under controlled laboratory conditions. Our "Ecosystems on a Plate" (EsoaP) are 3D-printed customized microplates with 24 connected wells allowing us to track dispersal, niche filtering, and biotic interactions among bacteria and plants in time and space. Within EsoaPs, we created heterogeneous habitat landscapes by well-specific nutrient levels or by providing plant seedlings as mutualistic partners in a checkerboard pattern. Bacteria of a single strain were released in one well and subsequently distributed themselves within the plates. We measured the spatial distribution of bacterial abundances at two time points as a function of abiotic or biotic heterogeneity. Bacterial abundance distribution confirmed a shift from initial dispersal-dominated processes to later niche filtering and biotic interactions as more important processes. Our approach follows the principles of open science as the affordable availability of 3D printers as well as shared STL files makes EsoaPs disseminatable and accessible to all levels of society, facilitating future experimental research.

Importance: Hypotheses regarding the underlying processes of ecological successions have primarily emerged from and have been tested in observational studies, lacking substantial support through controlled experiments. The design of such experiments should focus on testing contemporary ecological theories at the intersection of community assembly and successional research. To achieve this, we developed and employed 3D-printed "Ecosystems on a Plate" (EsoaP) within controlled laboratory settings. EsoaPs surmount several limitations of nanoscale instruments that had hindered their application in ecologically meaningful research. By sharing 3D printing designs, experimental protocols, and data openly, we facilitate reproducibility of our experiments by researchers across diverse ecological disciplines. Moreover, our approach facilitates cost-effective replication of experiments, democratizing access to tools for ecological research, and thus holds the potential to serve as a model for future studies and educational purposes.

测试微型生态系统的演替过程顺序。
扩散、环境过滤和生物相互作用决定了当地群落的物种清单。根据预测,沿着演替梯度,这些集合过程的相对重要性会依次变化,在演替早期,散布是主要过程,随后是环境过滤和生物相互作用。虽然野外研究的观察数据支持这一预测,但仍然缺乏证实演替过程顺序的对照实验。我们设计了微型生态系统,以便在受控实验室条件下明确测试这些假设。我们的 "平板上的生态系统"(EsoaP)是三维打印的定制微孔板,有 24 个相连的孔,允许我们在时间和空间上跟踪细菌和植物之间的扩散、生态位过滤和生物相互作用。在 EsoaPs 中,我们通过特定的营养水平或提供植物幼苗作为棋盘格模式的互惠伙伴,创造了不同的生境景观。单一菌株的细菌被释放到一个孔中,随后在平板内自行分布。我们测量了两个时间点细菌丰度的空间分布,将其作为非生物或生物异质性的函数。细菌丰度分布证实,从最初的分散过程为主,到后来的生态位过滤和生物相互作用成为更重要的过程。我们的方法遵循了开放科学的原则,因为三维打印机和共享的 STL 文件价格低廉,使得 EsoaPs 可向社会各阶层传播和获取,促进了未来的实验研究:有关生态演替基本过程的假设主要来自观察研究并在观察研究中得到验证,缺乏对照实验的实质性支持。此类实验的设计应侧重于在群落集合和演替研究的交叉点上检验当代生态理论。为此,我们在受控实验室环境中开发并使用了三维打印的 "平板生态系统"(EsoaP)。EsoaPs 克服了纳米级仪器的一些局限性,这些局限性阻碍了它们在生态学研究中的应用。通过公开共享 3D 打印设计、实验方案和数据,我们促进了不同生态学科的研究人员对实验的可重复性。此外,我们的方法还有助于以具有成本效益的方式复制实验,使生态研究工具的获取平民化,从而有可能成为未来研究和教育目的的典范。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Microbiology spectrum
Microbiology spectrum Biochemistry, Genetics and Molecular Biology-Genetics
CiteScore
3.20
自引率
5.40%
发文量
1800
期刊介绍: Microbiology Spectrum publishes commissioned review articles on topics in microbiology representing ten content areas: Archaea; Food Microbiology; Bacterial Genetics, Cell Biology, and Physiology; Clinical Microbiology; Environmental Microbiology and Ecology; Eukaryotic Microbes; Genomics, Computational, and Synthetic Microbiology; Immunology; Pathogenesis; and Virology. Reviews are interrelated, with each review linking to other related content. A large board of Microbiology Spectrum editors aids in the development of topics for potential reviews and in the identification of an editor, or editors, who shepherd each collection.
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