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Stepping forward from relevance in mycorrhizal ecology.

Identifieur interne : 000169 ( Main/Corpus ); précédent : 000168; suivant : 000170

Stepping forward from relevance in mycorrhizal ecology.

Auteurs : Gabriel R. Smith ; Kabir G. Peay

Source :

RBID : pubmed:32053732

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DOI: 10.1111/nph.16432
PubMed: 32053732

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pubmed:32053732

Le document en format XML

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<Reference>
<Citation>Averill C, Dietze MC, Bhatnagar JM. 2018. Continental-scale nitrogen pollution is shifting forest mycorrhizal associations and soil carbon stocks. Global Change Biology 24: 4544-4553.</Citation>
</Reference>
<Reference>
<Citation>Averill C, Turner BL, Finzi AC. 2014. Mycorrhiza-mediated competition between plants and decomposers drives soil carbon storage. Nature 505: 543-545.</Citation>
</Reference>
<Reference>
<Citation>Bradford MA, Ciska GF, Bonis A, Bradford EM, Classen AT, Cornelissen JHC, Crowther TW, De Long JR, Freschet GT, Kardol P et al. 2017. A test of the hierarchical model of litter decomposition. Nature Ecology and Evolution 1: 1836-1845.</Citation>
</Reference>
<Reference>
<Citation>Brundrett MC, Tedersoo L. 2018. Evolutionary history of mycorrhizal symbioses and global host plant diversity. New Phytologist 220: 1108-1115.</Citation>
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<Citation>Bueno CG, Aldrich-Wolfe L, Chaudhary VB, Gerz M, Helgason T, Hoeksema JD, Klironomos J, Lekberg Y, Leon D, Maherali H et al. 2019. Misdiagnosis and uncritical use of plant mycorrhizal data are not the only elephants in the room. New Phytologist 224: 1415-1418.</Citation>
</Reference>
<Reference>
<Citation>Cotrufo MF, Ranalli MG, Haddix ML, Six J, Lugato E. 2019. Soil carbon storage informed by particulate and mineral-associated organic matter. Nature Geoscience 12: 989-994.</Citation>
</Reference>
<Reference>
<Citation>Fernandez CW, Kennedy PG. 2016. Revisiting the ‘Gadgil effect’: do interguild fungal interactions control carbon cycling in forest soils? New Phytologist 209: 1382-1394.</Citation>
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<Reference>
<Citation>Fernandez CW, See CR, Kennedy PG. 2020. Decelerated carbon cycling by ectomycorrhizal fungi is controlled by substrate quality and community composition. New Phytologist. 226: 569-582.</Citation>
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<Citation>GBIF.org. 2019. GBIF occurrence download. [WWW document] doi: 10.15468/dl.yzhjhl [accessed 15 December 2019].</Citation>
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<Reference>
<Citation>Orwin KH, Kirschbaum MUF, St John MG, Dickie IA. 2011. Organic nutrient uptake by mycorrhizal fungi enhances ecosystem carbon storage: a model-based assessment. Ecology Letters 14: 493-502.</Citation>
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<Citation>Phillips RP, Brzostek E, Midgley MG. 2013. The mycorrhizal-associated nutrient economy : a new framework for predicting carbon-nutrient couplings in temperate forests. New Phytologist 199: 41-51.</Citation>
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<Citation>Read DJ, Perez-Moreno J. 2003. Mycorrhizas and nutrient cycling in ecosystems - a journey towards relevance? New Phytologist 157: 475-492.</Citation>
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<Citation>Smith GR, Steidinger BS, Bruns TD, Peay KG. 2018. Competition-colonization tradeoffs structure fungal diversity. ISME Journal 12: 1758-1767.</Citation>
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<Citation>Smith GR, Wan J. 2019. Resource-ratio theory predicts mycorrhizal control of litter decomposition. New Phytologist 223: 1595-1606.</Citation>
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<Citation>Steidinger BS, Crowther TW, Liang J, Van Nuland ME, Werner GDA, Reich PB, Nabuurs GJ, De-Miguel S, Zhou M, Picard N et al. 2019. Climatic controls of decomposition drive the global biogeography of forest-tree symbioses. Nature 569: 404-408.</Citation>
</Reference>
<Reference>
<Citation>Terrer C, Vicca S, Hungate BA, Phillips RP, Prentice IC. 2016. Mycorrhizal association as a primary control of the CO2 fertilization effect. Science 353: 72-74.</Citation>
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<Citation>Wumen H. 1228. Case 46. In: The gateless gate. Hangzhou, China: Longxiang Monastery.</Citation>
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<Citation>Zanne AE, Abarenkov K, Afkhami ME, Aguilar-Trigueros CA, Bates S, Bhatnagar JM, Busby PE, Christian N, Cornwell WK, Crowther TW et al. 2019. Fungal functional ecology: bringing a trait-based approach to plant-associated fungi. Biological Reviews. brv.12570.</Citation>
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