基岩调节了土壤微生物群落的海拔格局

IF 5.6 1区 农林科学 Q1 SOIL SCIENCE Geoderma Pub Date : 2024-12-13 DOI:10.1016/j.geoderma.2024.117136
Xianjin He, Ruiqi Wang, Daniel S. Goll, Laurent Augusto, Naoise Nunan, M.D. Farnon Ellwood, Quanzhou Gao, Junlong Huang, Shenhua Qian, Yonghua Zhang, Zufei Shu, Buhang Li, Chengjin Chu
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引用次数: 0

摘要

高程梯度通常被用来揭示土壤微生物将如何应对气候变化。然而,不同海拔横断面上不一致的微生物分布模式使人们对其实际应用性产生了怀疑。我们假设,影响土壤物理和化学性质的基岩变化可以解释这些不一致。因此,我们对亚热带森林中基岩(花岗岩和板岩)不同的两个相邻海拔断面的土壤微生物群落(细菌和真菌)进行了调查。我们的研究结果表明,土壤微生物群落是由基岩类型和海拔梯度环境因素之间复杂的相互作用形成的。板岩上的细菌生物量较高,而花岗岩上的真菌生物量较高。在花岗岩上,细菌和真菌的生物量都随着海拔的升高而增加,而在板岩上则观察到不同的模式,这可能是由于每种基岩上影响微生物生物量的不同土壤特性或特性组合造成的。基岩和海拔对微生物的贝塔多样性有很大影响,花岗岩上的贝塔多样性主要受土壤总磷和水分的影响,而板岩上的贝塔多样性则受土壤有机碳和 pH 值的影响。相比之下,α-多样性受基岩和海拔的影响较小,但其与环境因素的关系在不同基岩类型之间存在明显差异。总之,我们的研究结果凸显了基岩在决定海拔梯度土壤微生物群落结构及其对气候变化的潜在响应方面的重要影响。
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Bedrock modulates the elevational patterns of soil microbial communities
Elevational gradients are often used to reveal how soil microorganisms will respond to climate change. However, inconsistent microbial distribution patterns across different elevational transects have raised doubts about their practical applicability. We hypothesized that variations in bedrock, which influence soil physical and chemical properties, would explain these inconsistencies. We therefore investigated soil microbial communities (bacterial and fungal) along two adjacent elevational transects with different bedrocks (granite vs. slate) in a subtropical forest. Our findings reveal that soil microbial communities are shaped by complex interactions between bedrock type and environmental factors along elevational gradients. Bacterial biomass was higher on slate, whereas fungal biomass was higher on granite. On granite, both bacterial and fungal biomass increased with elevation, whereas divergent patterns were observed on slate, likely due to the distinct soil properties or combinations of properties influencing microbial biomass on each bedrock. Bedrock and elevation strongly influenced microbial beta-diversity, with beta-diversity on granite driven primarily by soil total phosphorus and moisture, and on slate by soil organic carbon and pH. In contrast, alpha-diversity was impacted less by bedrock and elevation, but its relationship with environmental factors varied markedly between bedrock types. Overall, our results highlight the critical influence of bedrock in determining soil microbial community structure along elevational gradients and their potential responses to climate change.
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来源期刊
Geoderma
Geoderma 农林科学-土壤科学
CiteScore
11.80
自引率
6.60%
发文量
597
审稿时长
58 days
期刊介绍: Geoderma - the global journal of soil science - welcomes authors, readers and soil research from all parts of the world, encourages worldwide soil studies, and embraces all aspects of soil science and its associated pedagogy. The journal particularly welcomes interdisciplinary work focusing on dynamic soil processes and functions across space and time.
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