在降水量多变的温暖气候中与高山草甸多功能性相关的丛枝菌根真菌

IF 9.8 1区 农林科学 Q1 SOIL SCIENCE Soil Biology & Biochemistry Pub Date : 2024-08-15 DOI:10.1016/j.soilbio.2024.109555
He Mao , Joann K. Whalen , Zhenkuan Zhang , Xiongjie Sheng , Guorui Hu , Bo Chen , Miaojun Ma
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引用次数: 0

摘要

除了支持植物生产力和养分循环外,丛枝菌根真菌(AM)还对陆地生态系统的多种功能做出了贡献。然而,随着生态系统面临温度升高和降水量变化,这些因素可能会影响AM真菌如何与生态系统的多功能性相互作用。在此,我们在青藏高原东部的一个高寒草甸进行了一项野外实验,研究了气候变暖和降水变化如何影响植物和AM真菌群落以及生态系统的多功能性。气候变暖和降水增加导致AM真菌多样性和均匀度降低。降水增加通过直接影响草地生物量,进而影响AM真菌群落组成,对生态系统多功能性产生了显著的负面间接影响。气候变暖和降水都对生态系统的多功能性产生了积极的间接影响,对AM真菌多样性产生了直接的负面影响,对土壤水分产生了积极影响。我们的结论是,气候变暖和降水量变化导致的调控真菌物种多样性和群落组成的改变,对生态系统的多功能性起着中介作用。在气候变化引起的植物与AM真菌之间的相互作用的推动下,更温暖、潮湿的条件有助于提高生态系统的多功能性。
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Arbuscular mycorrhizal fungi associated with alpine meadow multifunctionality in a warmer climate with variable precipitation

In addition to supporting plant productivity and nutrient cycling, arbuscular mycorrhizal (AM) fungi contribute to multiple functions within terrestrial ecosystems. However, as ecosystems face increasing temperatures and changes in precipitation, these factors may affect how AM fungi interact with ecosystem multifunctionality. Here, we investigated how warming and precipitation changes affected plant and AM fungal communities, as well as ecosystem multifunctionality in a field experiment in an alpine meadow on the eastern Tibetan Plateau that had warming and precipitation change (40% increase or decrease) manipulated experimentally from 2017. Less AM fungal diversity and evenness resulted from warming combined with increased precipitation. Increased precipitation had a significant negative indirect effect on ecosystem multifunctionality through its direct effect on grass biomass and then on AM fungal community composition. Both warming and precipitation had a positive indirect effect on ecosystem multifunctionality through their direct negative effect on AM fungal diversity and positive effect on soil moisture. We conclude that alterations in the species diversity and community composition of AM fungi due to warming and precipitation change mediate ecosystem multifunctionality. Warmer, humid conditions contribute to higher ecosystem multifunctionality, driven by climate change-induced interactions between plants and AM fungi.

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来源期刊
Soil Biology & Biochemistry
Soil Biology & Biochemistry 农林科学-土壤科学
CiteScore
16.90
自引率
9.30%
发文量
312
审稿时长
49 days
期刊介绍: Soil Biology & Biochemistry publishes original research articles of international significance focusing on biological processes in soil and their applications to soil and environmental quality. Major topics include the ecology and biochemical processes of soil organisms, their effects on the environment, and interactions with plants. The journal also welcomes state-of-the-art reviews and discussions on contemporary research in soil biology and biochemistry.
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