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Effects of pH on mycorrhizal colonisation and nutrient uptake in cowpea under conditions that minimise confounding effects of elevated available aluminium

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Abstract

Effects of the arbuscular mycorrhizal (AM) fungi Gigaspora margarita and Glomus etunicatum on the growth of cowpea (Vigna unguiculata L. Walp.) were assessed at low pH by growing plants, with and without AM inoculation, individually in pots containing a mixture of sand and soil adjusted to pH 4.7, 4.9 or 5.2 at the start of the experiment, and with soluble aluminium (Al) concentrations at a sub-toxic level for the plant. Cowpea grew poorly in the absence of AM colonisation, particularly at pH 4.7. Growth was enhanced both by increasing the pH and by inoculating with the AM fungi, with plant responses greater with inoculation. The relative growth improvement by mycorrhizas (mycorrhizal growth response) was highest at pH 4.7, and decreased as the pH increased, although effects were not always significant. Gi. margarita was much more effective than G. etunicatum. There were differential effects of the two fungi on uptake of mineral elements. Plants inoculated with Gi. margarita took up a range of elements, including P and Zn as well as Al, to a much greater extent than those inoculated with G. etunicatum, regardless of medium pH. The effectiveness of Gi. margarita in increasing plant growth was closely correlated with colonised root length.

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References

  • Abbott L K and Robson A D 1985 The effect of soil pH on the formation of vesicular arbuscular mycorrhiza by two species of Glomus. Aust. J. Agric. Res. 23, 235–261.

    Google Scholar 

  • Abbott L K and Robson A D 1991 Factors influencing the occurrence of vesicular arbuscular mycorrhizae. Agric. Ecosyst. Environ. 35, 665–671.

    Google Scholar 

  • Bartolome-Esteban H and Schenck N C 1994 Spore germination and hyphal growth of arbuscular mycorrhizal fungi in relation to soil aluminum saturation. Mycologia 86, 217–226.

    Google Scholar 

  • Borie F and Rubio R 1999 Effects of arbuscular mycorrhizae and liming on growth and mineral acquisition of aluminium tolerant and aluminium sensitive barley cultivars. J. Plant Nutr. 22, 121–137.

    Google Scholar 

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

    Google Scholar 

  • Buurman P, van Lagen B and Velthorst E J 1996 Manual for soil and water analysis. Backhuys Publisher, Leiden.

    Google Scholar 

  • Clark R B 1997 Arbuscular mycorrhizal adaptation, spore germination, root colonization, and host plant growth and mineral acquisition at low pH. Plant Soil 192, 15–35.

    Google Scholar 

  • Clark R B and Zeto S K 1996a Growth and root colonization of mycorrhizal maize grown on acid soil and alkaline soil. Soil Biol. Biochem. 28, 1505–1511.

    Google Scholar 

  • Clark R B and Zeto S K 1996b Mineral acquisition by mycorrhizal maize grown on acid soil and alkaline soil. Soil Biol. Biochem. 28, 1495–1503.

    Google Scholar 

  • Clark R B and Zeto S K 2000 Mineral acquisition by arbuscular mycorrhizal plants. J. Plant Nutr. 23, 867–902.

    Google Scholar 

  • Clark R B, Zeto S K and Zobel R W 1999 Arbuscular mycorrhizal fungal isolate effectiveness on growth and root colonization of Panicum virgatum in acidic soil. Soil Biol. Biochem. 31, 1757–1763.

    Google Scholar 

  • Close E A and Powell H K J 1989 Rapidly extracted (0.02 MCaCl 2-soluble) ‘reactive’ aluminium as a measure of aluminium toxicity in soils. Aust. J. Soil Res. 27, 663–672.

    Google Scholar 

  • Drew E A, Murray R S, Smith S E and Jakobsen I 2003 Beyond the rhizosphere: growth and function of arbuscular mycorrhizal external hyphae in sands of varying pore sizes. Plant Soil 251, 105–114.

    Google Scholar 

  • Edmeades D C, Blamey F P C and Farina M P W 1995 Techniques for assessing plant responses on acid soils. In Plant and Soil Interactions at Low pH: Principles and Management. Eds. R A Date, N J Grundon, G E Rayment and ME Probert. pp. 221–233. Kluwer Academic Publishers, Dordrecht, The Netherlands.

    Google Scholar 

  • Fageria N K, Baligar V C and Jones C A 1997 Growth and mineral nutrition of field crops. 2nd Edition. Marcel Dekker, New York.

    Google Scholar 

  • Giovannetti M and Mosse B 1980 An evaluation of techniques for measuring vesicular-arbuscular mycorrhizal infection in roots. New Phytol. 84, 489–500.

    Google Scholar 

  • Green WE, Graham S O and Schenck N C 1976 The influence of pH on the germination of vesicular arbuscular mycorrhizal spores. Mycologia 68, 929–934.

    Google Scholar 

  • Habte M 1999 Soil acidity as a constraint to the application of arbuscular mycorrhizal technology. In Mycorrhiza, Structure, Function, Molecular Biology and Biotechnology. 2nd Edition. Eds. A Varma and B Hock. pp. 667–569. Springer-Verlag, Berlin.

    Google Scholar 

  • Hanson W C 1950 The photometric determination of phosphorus in fertilisers using the phosphovanado-molybdate complex. J. Sci. Food Agric. 1, 172–173.

    Google Scholar 

  • Houba V J G, Temminghoff E J M, Gaikhorst G A and van Vark W 2000 Soil analysis procedures using 0.01 M Calcium chloride as extraction reagent. Commun. Soil Sci. Plant Anal. 31, 1299–1396.

    Google Scholar 

  • Jakobsen I, Abbott L K and Robson A D 1992 External hyphae of vesicular-arbuscular mycorrhizal fungi associated with Trifolium subterraneum L. 1. Spread of hyphae and phosphorus inflow into roots. New Phytol. 120, 371–380.

    Google Scholar 

  • Marschner H 1991 Mechanisms of adaptation of plants to acid soils. Plant Soil 134, 1–20.

    Google Scholar 

  • Medeiros C A B, Clark R B and Ellis J R 1994 Effects of excess aluminium on mineral uptake in mycorrhizal sorghum. J. Plant Nutr. 17, 1399–1416.

    Google Scholar 

  • Mendoza J and Borie F 1998 Effect of Glomus etunicatum inoculation on aluminium, phosphorus, calcium and magnesium uptake of two barley genotypes with different aluminium tolerance. Commun. Soil Sci. Plant Anal. 29, 681–695.

    Google Scholar 

  • Miyasaka S C and Habte M 2001 Plant mechanisms and my-corrhizal symbioses to increase phosphorus uptake efficiency. Commun. Soil Sci. Plant Anal. 32, 1101–1147.

    Google Scholar 

  • Muthukumar T and Udaiyan K 2000 Influence of organic manures on arbuscular mycorrhizal fungi associated with Vigna unguiculata (L) Walp. in relation to tissue nutrients and soluble carbohydrate in roots under field conditions. Biol. Fertil. Soils 31, 114–120.

    Google Scholar 

  • Nurlaeny N, Marschner H and George E 1996 Effects of liming and mycorrhizal colonization on soil phosphate depletion and phosphate uptake by maize (Zea mays L.) and soybean (Glycine max L.) grown in two tropical acid soils. Plant Soil 181, 275–285.

    Google Scholar 

  • Phillips J M and Hayman D S 1970 Improved procedures for clearing roots and staining parasite and vesicular arbuscular my-corrhizal fungi for rapid assessment on infection. Trans. Br. Mycol. Soc. 55, 158–161.

    Google Scholar 

  • Porter WM, Robson A D and Abbott L K 1987a Field survey of the distribution of vesicular-arbuscular mycorrhizal fungi in relation to soil pH. J. Appl. Ecol. 24, 659–662.

    Google Scholar 

  • Porter WM, Robson A D and Abbott L K 1987b Factors controlling the distribution of VA mycorrhizal fungi in relation to soil pH. J. Appl. Ecol. 24, 663–672.

    Google Scholar 

  • Raju P S, Clark R B, Ellis J L and Maranville J W 1988 Effects of VA mycorrhizae on growth and mineral uptake of sorghum grown at varied levels of soil acidity. Commun. Soil Sc. Plant Anal. 19, 919–931.

    Google Scholar 

  • Reuter D, Robinson J B (eds) 1986 Plant analysis: An interpretation manual, Inkata Press, Melbourne and Sydney.

    Google Scholar 

  • Robert M 1995 Aluminum toxicity: A major stress for microbes in the environment. In Environmental impact of soil component interactions. Vol. 2. Metal, Other Inorganics, and Microbial Activities. Eds. P M Huang, J Berthelin, J M Bollag, WB McGill and A L Page. pp. 227–242. CRC Press, Boca Raton.

    Google Scholar 

  • Robson A D and Abbott L K 1989 The effect of soil acidity on microbial activity in soils. In Soil acidity and plant growth. Ed A D Robson. pp. 139–166. Academic Press, Sydney.

    Google Scholar 

  • Rohyadi A 2003 Effects of aluminium on arbuscular mycorrhizal symbiosis in cowpea plant growth. PhD Thesis. The University of Adelaide, South Australia, Australia.

    Google Scholar 

  • Smith G S, Johnston C M and Cornforth I S 1983 Comparison of nutrient solutions for growth of plants in sand culture. New Phytol. 94, 537–548.

    Google Scholar 

  • Smith S E and Read D J 1997 Mycorrhizal symbiosis. 2nd Edition. Academic Press, San Diego.

    Google Scholar 

  • van Aarle I, Olsson P A and Sőderstrőm B. 2002 Arbuscular my-corrhizal fungi respond to the substrate pH of their extraradical mycelium by altered growth and root colonization. New Phytol. 155, 173–182.

    Google Scholar 

  • Yawney W, Schultz J and Kormanik P P 1982 Soil phosphorus and soil pH influence the growth of mycorrhizal sweetgum. Soil Sci. Soc. Am. J. 46, 1315–1332.

    Google Scholar 

  • Yost R S and Fox R L 1979 Contribution of mycorrhizae to P nutrition of crops growing on an Oxisol. Agron. J. 71, 903–908.

    Google Scholar 

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Rohyadi, A., Smith, F., Murray, R. et al. Effects of pH on mycorrhizal colonisation and nutrient uptake in cowpea under conditions that minimise confounding effects of elevated available aluminium. Plant and Soil 260, 283–290 (2004). https://doi.org/10.1023/B:PLSO.0000030183.87228.0b

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