Ectomycorrhizal Community Shifts at a Former Uranium Mining Site

被引:2
作者
Bogdanova, Olga [1 ]
Kothe, Erika [1 ]
Krause, Katrin [1 ]
机构
[1] Friedrich Schiller Univ Jena, Inst Microbiol, Microbial Commun, D-07743 Jena, Germany
关键词
ectomycorrhiza; morphotype; metal; plant; field; pot; inoculation; PINUS-SYLVESTRIS; FUNGI; MYCORRHIZAL; DIVERSITY; SEEDLINGS; COLONIZATION; TOLERANCE; ALUMINUM; PINASTER; METALS;
D O I
10.3390/jof9040483
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Ectomycorrhizal communities at young oak, pine, and birch stands in a former uranium mining site showed a low diversity of morphotypes with a preference for contact and short-distance exploration strategies formed by the fungi Russulaceae, Inocybaceae, Cortinariaceae, Thelephoraceae, Rhizopogonaceae, Tricholomataceae, as well as abundant Meliniomyces bicolor. In order to have better control over abiotic conditions, we established pot experiments with re-potted trees taken from the sites of direct investigation. This more standardized cultivation resulted in a lower diversity and decreased prominence of M. bicolor. In addition, the exploration strategies shifted to include long-distance exploration types. To mimic secondary succession with a high prevalence of fungal propagules present in the soil, inoculation of re-potted trees observed under standardized conditions for two years was used. The super-inoculation increased the effect of lower abundance and diversity of morphotypes. The contact morphotypes correlated with high Al, Cu, Fe, Sr, and U soil contents, the dark-colored short-distance exploration type did not show a specific preference for soil characteristics, and the medium fringe type with rhizomorphs on oaks correlated with total nitrogen. Thus, we could demonstrate that field trees, in a species-dependent manner, selected for ectomycorrhizal fungi with exploration types are likely to improve the plant's tolerance to specific abiotic conditions.
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页数:18
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共 64 条
[1]   Exploration types of ectomycorrhizae - A proposal to classify ectomycorrhizal mycelial systems according to their patterns of differentiation and putative ecological importance [J].
Agerer, R .
MYCORRHIZA, 2001, 11 (02) :107-114
[2]  
Agerer R., 1987, Colour atlas of ectomycorrhizae
[3]  
[Anonymous], 2015, APPL ENVIRON SOIL SC, DOI DOI 10.1155/2015/803821
[4]   Fine root distribution of trees and understory in mature stands of maritime pine (Pinus pinaster) on dry and humid sites [J].
Bakker, M. R. ;
Augusto, L. ;
Achat, D. L. .
PLANT AND SOIL, 2006, 286 (1-2) :37-51
[5]   Heavy-metal mobilization and uptake by mycorrhizal and nonmycorrhizal willows (Salix x dasyclados) [J].
Baum, Christel ;
Hrynkiewicz, Katarzyna ;
Leinweber, Peter ;
Meissner, Ralph .
JOURNAL OF PLANT NUTRITION AND SOIL SCIENCE, 2006, 169 (04) :516-522
[6]   Seedling biomass and element content of Pinus sylvestris and Pinus nigra grown in sandy substrates with lignite [J].
Baumann, K. ;
Rumpelt, A. ;
Schneider, B. U. ;
Marschner, P. ;
Huettl, R. F. .
GEODERMA, 2006, 136 (3-4) :573-578
[7]   The communities of ectomycorrhizal fungal species associated withBetula pendulaRothandPinus sylvestrisL. growing in heavy-metal contaminated soils [J].
Bierza, Wojciech ;
Bierza, Karolina ;
Trzebny, Artur ;
Gren, Izabela ;
Dabert, Miroslawa ;
Ciepal, Ryszard ;
Trocha, Lidia K. .
PLANT AND SOIL, 2020, 457 (1-2) :321-338
[8]   Ectomycorrhizal Cortinarius species participate in enzymatic oxidation of humus in northern forest ecosystems [J].
Bodeker, Inga T. M. ;
Clemmensen, Karina E. ;
de Boer, Wietse ;
Martin, Francis ;
Olson, Ake ;
Lindahl, Bjorn D. .
NEW PHYTOLOGIST, 2014, 203 (01) :245-256
[9]   Host specificity in ectomycorrhizal communities: What do the exceptions tell us? [J].
Bruns, TD ;
Bidartondo, MI ;
Taylor, DL .
INTEGRATIVE AND COMPARATIVE BIOLOGY, 2002, 42 (02) :352-359
[10]   THOUGHTS ON THE PROCESSES THAT MAINTAIN LOCAL SPECIES-DIVERSITY OF ECTOMYCORRHIZAL FUNGI [J].
BRUNS, TD .
PLANT AND SOIL, 1995, 170 (01) :63-73