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Mycorrhizas in the Kakadu region of tropical Australia

I. Propagules of mycorrhizal fungi and soil properties in natural habitats

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Abstract

This research represents the first part of a study which aimed to characterize the role of mycorrhizal associations in undisturbed and disturbed habitats in the Alligator Rivers Region of the Northern Territory of Australia. This is a seasonally dry tropical region with a climate consisting of a long dry season and a monsoonal wet season. Intact soil cores were sampled from 22 sites in this region, representing eucalypt savanna woodland, wetland, rocky hill and rainforest habitats. Clover, sorghum and eucalypt seedlings were grown in these cores in bioassays to measure the inoculum potential of vesicular-arbuscular mycorrhizal (VAM) and ectomycorrhizal (ECM) fungi. Propagules of VAM fungi were concentrated in the surface horizon, and were not adversely affected by 6 months dry storage of soil. Bioassays detected VAM fungus propagules at all sites, but these were less numerous in three sites with sparse herbaceous vegetation (a shrub-dominated woodland site, a sandstone area and a disturbed gravel pit without topsoil), than in other woodland sites. Propagules of VAM fungi were particularly numerous in soil from a rainforest habitat, which had much denser plant cover than any of the savanna sites. Propagules of ECM fungi colonized eucalypt seedling roots in some cores from all sites, except two wetland areas and a disturbed area without eucalypt trees. Physical and chemical properties of soils varied between sites and some properties (texture, organic carbon, etc.) were correlated with the inoculum potential of VAM fungi.

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References

  • Abbott, L K 1982 Comparative anatomy of vesicular-arbuscular mycorrhizas formed on subterranean clover. Aust. J. Bot. 30, 485–499.

    Google Scholar 

  • Abbott, L K and Robson, A D 1991 Factors influencing the occurrence of vesicular-arbuscular mycorrhizas. Agric. Ecosyst. Environ 35, 121–150.

    Google Scholar 

  • Anonymous 1991 Minitab Reference Manual, Release 8 Macintosh Version. Minitab Inc. State College, Philadelphia, USA.

  • Ba, M A, Garbaye, J and Dexheimer, J 1991 Influence of fungal propagules during the early stages of the time sequence of ectomycorrhizal colonization on Afzelia africana seedlings. Can. J. Bot. 69, 2442–2447.

    Google Scholar 

  • Bellgard, S E 1993 Soil disturbance and infection of Trifolium repens roots by vesicular-arbuscular mycorrhizal fungi. Mycorrhiza 3, 25–29.

    Google Scholar 

  • Brundrett, M C 1991 Mycorrhizas in natural ecosystems. In Advances in Ecological Research, Vol. 21. Eds. A, Macfayden, M, Begon, A H, Fitter. pp 171–313. Academic Press, London, UK.

    Google Scholar 

  • Brundrett, M C and Abbott, L K 1991 Roots of jarrah forest plants. I. Mycorrhizal associations of shrubs and herbaceous plants. Aust. J. Bot. 39, 445–457.

    Google Scholar 

  • Brundrett, M C and Abbott, L K 1994 Mycorrhizal fungus propagules in the jarrah forest. I. Seasonal study of inoculum levels. New Phytol. 127, 539–546.

    Google Scholar 

  • Brundrett M C and Abbott L K 1995 Mycorrhizal fungus propagules in the jarrah forest. II. Spatial variatibility in inoculum levels. New Phytol. (In press).

  • Brundrett M, Bougher N, Dell B, Grove T and Malajczuk N 1996 Working with Mycorrhizas in Agriculture and Forestry. ACIAR Monograph 32. Canberra, Australia.

  • Brundrett, M, Melville, L and Peterson, L 1994 Practical Methods in Mycorrhizal Research. Mycologue Publications Ltd., Waterloo.

    Google Scholar 

  • Campbell, C L and Noe, J P 1985 The spatial analysis of soilborne pathogens and root diseases. Annu. Rev. Phytopathol. 23, 129–148.

    Google Scholar 

  • Duncan, I 1992 Understanding and interpreting a CSBP soil analysis services report. CSBP Farmers Ltd. Product Focus 10, 1–8.

    Google Scholar 

  • Dunlop, C P and Webb, J T 1991 Flora and vegetation. In Monsoonal Australia-Landscape Ecology and Man in the Northern Lowlands. Eds. C H, Hayes, M G, Ridpath and M A J, Williams. pp 41–60. A A Balkema Publishers, Rotterdam, the Netherlands.

    Google Scholar 

  • Dutilleul, P 1983 Spatial heterogeneity and the design of ecological field experiments. Ecology 74, 1646–1658.

    Google Scholar 

  • Friese, C F and Koske, R E 1991 The spatial dispersion of spores of vesicular-arbuscular mycorrhizal fungi in a sand dune: microscale patterns associated with the root architecture of American beach-grass. Mycol. Res. 95, 952–957.

    Google Scholar 

  • Ford, E D, Mason, P A and Pelham, J 1980 Spatial patterns of sporophore distribution around a young birch tree in three successive years. Trans. B. Mycol. Soc. 75, 287–296.

    Google Scholar 

  • Garrett, S D 1956 Biology of Root Infecting Fungi. Cambridge University Press, Cambridge, UK.

    Google Scholar 

  • Griffiths, R P and Caldwell, B A 1992 Mycorrhizal mat communities in forest soils. In Mycorrhizas in Ecosystems. Eds. D J, Read, D H, Lewis, A H, Fitter and I J, Alexander. pp 98–105 CAB International, Wallingford, UK.

    Google Scholar 

  • Gregory, P H 1982 Fairy rings; free and tethered. Bull. B. Mycol. Soc. 16, 161–163.

    Google Scholar 

  • Jasper, D A, Abbott, L K and Robson, A D 1989a Soil disturbance reduces the infectivity of external hyphae of VA mycorrhizal fungi. New Phytol. 112, 93–99.

    Google Scholar 

  • Jasper, D A, Abbott, L K and Robson, A D 1989b Hyphae of a VA mycorrhizal fungus maintain infectivity in dry soil, except when the soil is disturbed. New Phytol. 112, 101–107.

    Google Scholar 

  • Jasper, D A, Abbott, L K and Robson, A D 1991 The effect of soil disturbance on vesicular-arbuscular mycorrhizal fungi in soils from different vegetation types. New Phytol. 118, 471–476.

    Google Scholar 

  • McGee, P A 1989 Variations in propagule numbers of vesicular-arbuscular mycorrhizal fungi in a semi-arid soil. Mycol. Res. 92, 28–33.

    Google Scholar 

  • Ogawa, M 1985 Ecological characters of ectomycorrhizal fungi and their mycorrhizae. An introduction to the ecology of higher fungi. Agric. Res. Q. 18, 305–314.

    Google Scholar 

  • Rayment, G E and Higginson, F R 1992 Australian laboratory hand-book of soil and water chemical methods. Inkata Press, Sydney, Australia.

    Google Scholar 

  • Rose, C W 1966 Agricultural Physics. Pergamon Press Ltd, Oxford, UK.

    Google Scholar 

  • Scheltema, M A, Abbott, L K and Robson, A D 1987 Seasonal variation in the infectivity of VA mycorrhizal fungi in annual pastures in a mediterranean environment. Aust. J. Agric. Res. 38, 707–715.

    Google Scholar 

  • Skinner, M F and Bowen, G D 1974 The penetration of soil by mycelial strands of ectomycorrhizal fungi. Soil Biol. Biochem. 6, 57–61.

    Google Scholar 

  • St, John, T V, Coleman, D C and Reid, C P P 1983 Growth and spatial distribution of nutrient-absorbing organs: selective exploitation of soil heterogeneity. Plant and Soil 71, 487–493.

    Google Scholar 

  • St, John, T V and Hunt, H W 1983 Statistical treatment of VAM infection data. Plant and Soil 73, 307–313.

    Google Scholar 

  • Taylor, R J 1992 Distribution and abundance of fungal sporocarps and diggings of the Tasmanian bettong, Bettongia gaimardi. Aust. J. Ecol. 17, 155–160.

    Google Scholar 

  • Tester, M, Smith, S E, Smith, F A and Walker, N A 1986 Effects of photon irradiance on the growth of shoots and roots, on the rate of initiation of mycorrhizal infection and on the growth of infection units in Trifolium subterraneum L. New Phytol. 103, 375–390.

    Google Scholar 

  • Tews, L L and Koske, R E 1986 Towards a sampling strategy for vesicular-arbuscular mycorrhizas. Trans. Br. Mycol. Soc. 87, 353–358.

    Google Scholar 

  • Virginia, R A, Jenkins, M B and Jarrell, W M 1986 Depth of root symbiont occurrence in soil. Soil Biol. Biochem. 2, 127–130.

    Google Scholar 

  • Wilson, B A, Brocklehurst, P S, Clark, M J and Dickinson, K J M 1990 Vegetation Survey of the Northern Territory, Australia. Northern Territory Conservation Commission, Palmerston, Australia.

    Google Scholar 

  • Zajicek, J M, Daniels Hetrick, B A and Owensby, C E 1986 The influence of soil depth on mycorrhizal colonization of forbs in the tallgrass prairie. Mycologia 78, 316–320.

    Google Scholar 

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Brundrett, M.C., Ashwath, N. & Jasper, D.A. Mycorrhizas in the Kakadu region of tropical Australia. Plant Soil 184, 159–171 (1996). https://doi.org/10.1007/BF00029285

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