Ectomycorrhizal fungi: the symbiotic route to the root for phosphorus in forest soils

被引:0
作者
John W. G. Cairney
机构
[1] University of Western Sydney,Centre for Plants and the Environment
来源
Plant and Soil | 2011年 / 344卷
关键词
Ectomycorrhizal fungi; Phosphorus; Translocation; Fungus:root interface; Climate change;
D O I
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中图分类号
学科分类号
摘要
Many forest trees have evolved mutualistic symbioses with ectomycorrhizal (ECM) fungi that contribute to their phosphorus (P) nutrition. Forest productivity is frequently limited by P, a phenomenon that is likely to become more widespread under future conditions of elevated atmospheric CO2 concentration [CO2]. It is thus timely that this review considers current understanding of the key processes (absorption, translocation and transfer to the plant host) in ECM fungus-mediated P nutrition of forest trees. Solubilisation of inorganic P (Pi) and hydrolysis of organic P by ECM fungi in soil occurs largely at the growing mycelial front, where Pi absorption is facilitated by high affinity transporters. While large gaps remain in our understanding of the physiological and molecular mechanisms that underpin movement of P in ECM mycelia in soil and P transfer to the plant, host P demand seems likely to be a key driver of these processes. ECM fungi may make considerable contributions to meeting the likely increased P demand of trees under elevated [CO2] via increased colonization levels, shifts in ECM fungal community structure and changed patterns of EMM production. Further research into the spatial scale of ECM-mediated P movements in soil, along with the interplay between ECM fungi and other soil microflora is advocated.
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页码:51 / 71
页数:20
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[1]  
Agerer R(2001)Exploration types of ectomycorrhizae Mycorrhiza 11 107-114
[2]  
Ahonen Jonnarth U(2000)Organic acids produced by mycorrhizal New Phytol 146 557-567
[3]  
van Hees PAW(1981) exposed to elevated aluminium and heavy metal concentrations Soil Biol Biochem 13 301-305
[4]  
Lundström US(2009)Surface phosphatase activity of Sitka spruce mycorrhizas from serpentine soil Tree Physiol 29 1587-1597
[5]  
Finlay RD(2001) seedlings and their fungal symbionts show high plasticity in phosphorus acquisition in acidic soils Protoplasma 215 218-225
[6]  
Alexander IJ(2004)Motile tubular vacuoles in extramatrical mycelium and sheath hyphae of ectomycorrhizal systems Mycologia 96 479-487
[7]  
Hardy K(2005)Surface-bound phosphatase activity in living hyphae of ectomycorrhizal fungi of Soil Biol Biochem 37 125-132
[8]  
Ali MA(2006)Anatomical-physiological determination of surface bound phosphatase activity in ectomycorrhizae of Biol Fertil Soils 42 561-568
[9]  
Louche J(2010)Surface-bound phosphatase activity in ectomycorrhizal fungi: a comparative study between a colorimetric and microscope-based method Braz J Microbiol 41 676-684
[10]  
Legname E(2007)Utilization of rocks and ectomycorrhizal fungi to promote growth of eucalypt FEMS Microbiol Rev 31 388-406