Mycorrhizal fungi supply nitrogen to host plants in Arctic tundra and boreal forests: 15 N is the key signalThis article is one of a selection of papers in the Special Issue on Polar and Arctic Microbiology.

Symbiotic fungi’s role in providing nitrogen to host plants is well-studied in tundra at Toolik Lake, Alaska, but little-studied in the adjoining boreal forest ecosystem. Along a 570 km north–south transect from the Yukon River to the North Slope of Alaska, the 15 N content was strongly reduced in e...

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Bibliographic Details
Published in:Canadian Journal of Microbiology
Main Authors: Hobbie, John E., Hobbie, Erik A., Drossman, Howard, Conte, Maureen, Weber, J. C., Shamhart, Julee, Weinrobe, Melissa
Format: Article in Journal/Newspaper
Language:English
Published: Canadian Science Publishing 2009
Subjects:
Online Access:http://dx.doi.org/10.1139/w08-127
http://www.nrcresearchpress.com/doi/full-xml/10.1139/W08-127
http://www.nrcresearchpress.com/doi/pdf/10.1139/W08-127
Description
Summary:Symbiotic fungi’s role in providing nitrogen to host plants is well-studied in tundra at Toolik Lake, Alaska, but little-studied in the adjoining boreal forest ecosystem. Along a 570 km north–south transect from the Yukon River to the North Slope of Alaska, the 15 N content was strongly reduced in ectomycorrhizal and ericoid mycorrhizal plants including Betula , Salix , Picea mariana (P. Mill.) B.S.P., Picea glauca Moench (Voss), and ericaceous plants. Compared with the 15 N content of soil, the foliage of nonmycorrhizal plants ( Carex and Eriophorum ) was unchanged, whereas content of the ectomycorrhizal fungi was very much higher (e.g., Boletaceae, Leccinum and Cortinarius ). It is hypothesized that similar processes operate in tundra and boreal forest, both nitrogen-limited ecosystems: (i) mycorrhizal fungi break down soil polymers and take up amino acids or other nitrogen compounds; (ii) mycorrhizal fungi fractionate against 15 N during production of transfer compounds; (iii) host plants are accordingly depleted in 15 N; and (iv) mycorrhizal fungi are enriched in 15 N. Increased N availability for plant roots or decreased light availability to understory plants may have decreased N allocation to mycorrhizal partners and increased δ 15 N by 3‰–4‰ for southern populations of Vaccinium vitis-idaea L. and Salix. Fungal biomass, measured as ergosterol, correlated strongly with soil organic matter and attained amounts similar to those in temperate forest soils.