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担子菌真菌在景观尺度上的孢子传播受随机和确定性过程驱动,并在植物与真菌的相互作用中产生变异性。

Spore dispersal of basidiomycete fungi at the landscape scale is driven by stochastic and deterministic processes and generates variability in plant-fungal interactions.

作者信息

Peay Kabir G, Bruns Thomas D

机构信息

Department of Biology, Stanford University, Stanford, CA, 94305, USA.

Department of Plant and Microbial Biology, University of California, Berkeley, Berkeley, CA, 94720, USA.

出版信息

New Phytol. 2014 Oct;204(1):180-191. doi: 10.1111/nph.12906. Epub 2014 Jun 30.

DOI:10.1111/nph.12906
PMID:24975121
Abstract

Fungi play an important role in plant communities and ecosystem function. As a result, variation in fungal community composition can have important consequences for plant fitness. However, there are relatively few empirical data on how dispersal might affect fungal communities and the ecological processes they mediate. We established sampling stations across a large area of coastal landscape varying in their spatial proximity to each other and contrasting vegetation types. We measured dispersal of spores from a key group of fungi, the Basidomycota, across this landscape using qPCR and 454 pyrosequencing. We also measured the colonization of ectomycorrhizal fungi at each station using sterile bait seedlings. We found a high degree of spatial and temporal variability in the composition of Basidiomycota spores. This variability was in part stochastic and in part explained by spatial proximity to other vegetation types and time of year. Variation in spore community also affected colonization by ectomycorrhizal fungi and seedling growth. Our results demonstrate that fungal host and habitat specificity coupled with dispersal limitation can lead to local variation in fungal community structure and plant-fungal interactions. Understanding fungal communities also requires explicit knowledge of landscape context in addition to local environmental conditions.

摘要

真菌在植物群落和生态系统功能中发挥着重要作用。因此,真菌群落组成的变化可能会对植物适应性产生重要影响。然而,关于扩散如何影响真菌群落及其介导的生态过程的实证数据相对较少。我们在大面积的沿海景观中设立了采样站,这些采样站彼此之间的空间距离不同,植被类型也形成对比。我们使用定量聚合酶链反应(qPCR)和454焦磷酸测序技术,测量了担子菌门这一关键真菌类群的孢子在该景观中的扩散情况。我们还使用无菌诱饵幼苗测量了每个采样站外生菌根真菌的定殖情况。我们发现担子菌门孢子的组成在空间和时间上存在高度变异性。这种变异性部分是随机的,部分是由与其他植被类型的空间距离和一年中的时间所解释的。孢子群落的变化也影响了外生菌根真菌的定殖和幼苗生长。我们的结果表明,真菌宿主和栖息地特异性以及扩散限制会导致真菌群落结构和植物 - 真菌相互作用的局部变化。除了当地环境条件外,了解真菌群落还需要明确了解景观背景。

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