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土壤真菌的地方性和脆弱性的全球格局。

Global patterns in endemicity and vulnerability of soil fungi.

机构信息

Mycology and Microbiology Center, University of Tartu, Tartu, Estonia.

Institute of Ecology and Earth Sciences, University of Tartu, Tartu, Estonia.

出版信息

Glob Chang Biol. 2022 Nov;28(22):6696-6710. doi: 10.1111/gcb.16398. Epub 2022 Sep 2.

DOI:10.1111/gcb.16398
PMID:36056462
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9826061/
Abstract

Fungi are highly diverse organisms, which provide multiple ecosystem services. However, compared with charismatic animals and plants, the distribution patterns and conservation needs of fungi have been little explored. Here, we examined endemicity patterns, global change vulnerability and conservation priority areas for functional groups of soil fungi based on six global surveys using a high-resolution, long-read metabarcoding approach. We found that the endemicity of all fungi and most functional groups peaks in tropical habitats, including Amazonia, Yucatan, West-Central Africa, Sri Lanka, and New Caledonia, with a negligible island effect compared with plants and animals. We also found that fungi are predominantly vulnerable to drought, heat and land-cover change, particularly in dry tropical regions with high human population density. Fungal conservation areas of highest priority include herbaceous wetlands, tropical forests, and woodlands. We stress that more attention should be focused on the conservation of fungi, especially root symbiotic arbuscular mycorrhizal and ectomycorrhizal fungi in tropical regions as well as unicellular early-diverging groups and macrofungi in general. Given the low overlap between the endemicity of fungi and macroorganisms, but high conservation needs in both groups, detailed analyses on distribution and conservation requirements are warranted for other microorganisms and soil organisms.

摘要

真菌是高度多样化的生物,提供多种生态系统服务。然而,与有魅力的动物和植物相比,真菌的分布模式和保护需求还很少被探索。在这里,我们使用高分辨率、长读长测序宏条形码方法,通过六项全球调查,研究了土壤真菌功能群的特有性模式、对全球变化的脆弱性和保护优先领域。我们发现,所有真菌和大多数功能群的特有性峰值出现在热带生境中,包括亚马逊、尤卡坦半岛、中西非、斯里兰卡和新喀里多尼亚,与植物和动物相比,岛屿效应可以忽略不计。我们还发现,真菌主要易受干旱、高温和土地覆盖变化的影响,特别是在人口密度高的干燥热带地区。真菌保护的高优先领域包括草本湿地、热带森林和林地。我们强调,应更加关注真菌的保护,特别是热带地区的根共生丛枝菌根真菌和外生菌根真菌,以及单细胞早期分化群和一般的大型真菌。鉴于真菌和大型生物特有性之间的低重叠,但两者都有很高的保护需求,因此需要对其他微生物和土壤生物进行分布和保护要求的详细分析。

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Ecol Lett. 2022 Jan;25(1):65-76. doi: 10.1111/ele.13904. Epub 2021 Oct 25.
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Include all fungi in biodiversity goals.将所有真菌纳入生物多样性目标。
墨西哥特瓦坎-库伊卡特兰生物圈保护区的真菌和黏菌:全面综述与未来展望
IUBMB Life. 2025 Jun;77(6):e70034. doi: 10.1002/iub.70034.
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BMC Microbiol. 2025 Jun 7;25(1):360. doi: 10.1186/s12866-025-04079-0.
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Soil Nutrient Dynamics and Fungal Community Shifts Drive the Degradation of var. Plantations in the Loess Plateau.土壤养分动态与真菌群落变化驱动黄土高原××人工林退化
Plants (Basel). 2025 Apr 26;14(9):1309. doi: 10.3390/plants14091309.
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