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Interactions between drought stress and vesicular-arbuscular mycorrhiza on the growth of Faidherbia albida (syn. Acacia albida) and Acacia nilotica in sterile and non-sterile soils

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Summary

Faidherbia albida (syn. Acacia albida) (Del.) A. Chev. and Acacia nilotica (L.) Willd. were grown for 18 weeks in sterile and non-sterile soils inoculated with Glomus clarum (Nicolson and Schenck). During this period, drought stress was imposed for the last 10 (F. albida) or 12 weeks (A. nilotica) at 2-week intervals. A greater number of leaves abscissed in drought-stressed mycorrhizal plants of A. nilotica than drought-stressed non-mycorrhizal and unstressed plants. In F. albida, the number of abscissed leaves was few and similar for all treatments. At the end of the drought stress, inoculation with vesicular-arbuscular mycorrhizal (VAM) fungi in sterile soil increased the plant biomass of the two tree species compared to the control plants. In non-sterile soil, the mycorrhizal growth response of introduced G. clarum equalled the effect of indigenous VAM fungi. There were significant interactions between the mycorrhizal and drought stress treatments and between the mycorrhizal and soil treatments for plant biomass and P uptake in F. albida. The absence of these interactions except for that between the mycorrhizal and soil treatments in A. nilotica indicates that the increased plant biomass and nutrient uptake cannot be attributed directly to a mycorrhizal contribution to drought tolerance. F. albida tolerated the drought stress by producing long tap roots and similar weights of dry matter in shoots and roots. Whereas A. nilotica tolerated the drought stress by developing larger root systems able to explore a greater volume of soil, in addition to leaf abscission, for a favourable internal water status. The introduction of G. clarum increased nodulation by A. nilotica under unstressed conditions, but at the expense of a reduced P uptake in sterile soil.

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References

  • Allen EB, Allen MF (1986) Water relations of xeric grasses in the field: interactions of mycorrhizas and competition. New Phytol 104: 559–571

    Google Scholar 

  • Allen MF (1982) Influence of vesicular-arbuscular mycorrhizae on water movement through Bouteloua gracilis (H.B.K.) Lag ex Steud. New Phytol 91:191–196

    Google Scholar 

  • Allen MF, Smith W, Moore TSJr, Christensen M (1981) Comparative water relations and photosynthesis of mycorrhizal Bouteloua gracilis (H.B.K.) Lag ex Steud. New Phytol 88:683–693

    Google Scholar 

  • Arines J, Vilarino A (1989) Use of nutrient: phosphorus ratios to evaluate the effects of vesicular-arbuscular mycorrhiza on nutrient uptake in unsterilized soils. Biol Fertil Soils 8:293–297

    Google Scholar 

  • Brundrett MC, Pichè Y, Peterson RL (1984) A new method for observing the morphology of vesicular-arbuscular mycorrhizae. Can J Bot 62:2128–2134

    Google Scholar 

  • Daft MS, El-Giahmi AA (1975) Effect of Glomus infection on tree legume. In: Sanders FE, Mosse B, Tinker PB (eds) Endomycorrhizae, Academic Press, New York, pp 581–592

    Google Scholar 

  • Fitter AH (1985) Functioning of vesicular-arbuscular mycorrhizas under field conditions. New Phytol 99:257–265

    Google Scholar 

  • Gianinazzi-Pearson V, Diem HG (1982) Endomycorrhizae in the tropics. In: Dommergues YR, Diem HG (eds) Microbiology of tropical soils and plant productivity. Martinus Nijhoff/Dr W Junk Publishing, The Hague, pp 209–251

    Google Scholar 

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

    Google Scholar 

  • Graham JH (1986) Citrus mycorrhizae: Potential benefits and interactions with pathogens. Hort Sci 21:1302–1306

    Google Scholar 

  • Graham JH, Syvertsen JP, Smith ML (1987) Water relations of mycorrhizal and phosphorus-fertilized non-mycorrhizal citrus under drought stress. New Phytol 105:411–419

    Google Scholar 

  • Harley JL, Smith SE (1983) Mycorrhizal symbiosis. Academic Press, London

    Google Scholar 

  • Hayman DS (1986) Mycorrhizae of nitrogen-fixing legumes. MIRCEN J Appl Microbiol Biotechnol 2:121–145

    Google Scholar 

  • Henderson JC, Davies FTJr (1990) Drought acclimation and the morphology of mycorrhiza Rosa Hybrida L. cv. ‘Ferdy’ is independent of leaf elemental content. New Phytol 115:503–510

    Google Scholar 

  • Hetrick BAD, Kitt DG, Wilson GT (1986) The influence of phosphorus fertilization, drought, fungal species, and nonsterile soil on mycorrhizal growth response in tall grass prairie plants. Can J Bot 64:1199–1203

    Google Scholar 

  • Huang RS, Smith WK, Yost RS (1985) Influence of vesicular-arbuscular mycorrhiza on growth, water relations and leaf orientation in Leucaena leucocephala (Lam.) de Wit. New Phytol 99:229–243

    Google Scholar 

  • International Institute of Tropical Agriculture (IITA) (1982) Selected methods for soil and plant analysis. Manual series no. 7, IITA, Nigeria

    Google Scholar 

  • Jasper DA, Abbott LK, Robson AD (1989) Acacias respond to additions of phosphorus and to inoculation with VA mycorrhizal fungi in soils stockpiled during mineral sand mining. Plant and Soil 115:99–108

    Google Scholar 

  • Levy Y, Dodd J, Krikun J (1983) Effect of irrigation, water salinity and rootstock on the vertical distribution of vesicular-arbuscular mycorrhiza in citrus roots. New Phytol 15:397–403

    Google Scholar 

  • Menge JA (1982) Utilization of vesicular-arbuscular mycorrhizal fungi in agriculture. Can J Bot 61:1015–1024

    Google Scholar 

  • Michelsen A, Rosendahl S (1990) The effect of VA mycorrhizal fungi, phosphorus and drought stress on the growth of Acacia nilotica and Leucaena leucocephala seedlings. Plant and Soil 124:7–13

    Google Scholar 

  • Miller RM (1979) Some occurrences of vesicular-arbuscular mycorrhiza in natural and disturbed ecosystems of the Red Desert. Can J Bot 57:619–623

    Google Scholar 

  • Mosse B (1977) Plant growth responses to vesicular mycorrhiza: X. Responses of Stylosanthes and maize to inoculation in unsterile soils. New Phytol 78:277–288

    Google Scholar 

  • Mosse B, Hayman DS, Ide GJ (1969) Growth responses of plants in unsterilized soil to inoculation with vesicular-arbuscular mycorrhiza. Nature (London) 224:1031–1032

    Google Scholar 

  • Murphy J, Riley JP (1962) A modified single solution method for the determination of phosphate in natural waters. Anal Chim Acta 27:31–35

    Google Scholar 

  • Nelsen CE, Safir GR (1982) Increased drought tolerance of mycorrhizal onion plants caused by improved phosphorus nutrition. Planta 154:407–413

    Google Scholar 

  • Osonubi O (1989) Osmotic adjustment in mycorrhizal Gmelina arborea Roxb. seedlings. Funct Ecol 3:143–151

    Google Scholar 

  • Osonubi O, Mulongoy K (1991) Responses of two Acacia species to drought and inoculation with an ectomycorrhizal fungus. In: Keister DL, Cregan PB (eds) The rhizosphere and plant growth. Kluwer Academic Publishers, Dordrecht, p 375

    Google Scholar 

  • Osonubi O, Mulongoy K, Awotoye OO, Atayese MO, Okali DUU (1991) Effects of ectomycorrhizal and vesicular-arbuscular mycorrhizal fungi on drought tolerance of four leguminous woody seedlings. Plant and Soil 136:131–143

    Google Scholar 

  • Osonubi O, Okon IE, Bamiduro TA (1990) Effect of different fungal inoculation periods on performance of Gmelina seedlings under dry soil conditions. For Ecol Manage 37:223–232

    Google Scholar 

  • Reddell P, Warren P (1986) Inoculation of acacias with mycorrhizal fungi: Potential benefits. In: Turnbull JW (ed) Australian acacias in developing countries. ACIAR Proceedings no. 16, Brown Prior Anderson Press, Victoria, pp 50–53

    Google Scholar 

  • Ritchie GA, Hinckley TM (1975) The pressure chamber as an instrument for ecological research. Adv Ecol Res 9:165–254

    Google Scholar 

  • Ross JP, Harper JA (1970) Effect of Endogone mycorrhiza on soyabean yields. Phytopathology 60:1552–1556

    Google Scholar 

  • Sanginga N, Danso SKA, Bowen GD (1989) Nodulation and growth response of Allocasuarina and Casuarina species to phosphorus fertilization. Plant and Soil 118:125–132

    Google Scholar 

  • Skujins J, Allen MF (1986) Use of mycorrhizae for land rehabilitation. MIRCEN J Appl Microbiol Biotechnol 2:161–176

    Google Scholar 

  • Smith SE, Daft MJ (1977) Interactions between growth, phosphate content and nitrogen fixation in mycorrhizal and non-mycorrhizal Medicago sativa. Aust J Plant Physiol 4:403–413

    Google Scholar 

  • Stribley DP, Tinker PB, Snellgrove RC (1980) Effect of vesicular-arbuscular mycorrhiza fungi on the relations of plant growth, internal phosphorus concentration and soil phosphate analyses. J Soil Sci 31:655–672

    Google Scholar 

  • Tennant D (1975) A test of modified line intersect method of estimating root length. J Ecol 63:995–1001

    Google Scholar 

  • Young A (1989) Agroforestry for soil conservation. International Council for Research in Agroforestry, Nairobi and C.A.B. International, Oxford

    Google Scholar 

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Osonubi, O., Bakare, O.N. & Mulongoy, K. Interactions between drought stress and vesicular-arbuscular mycorrhiza on the growth of Faidherbia albida (syn. Acacia albida) and Acacia nilotica in sterile and non-sterile soils. Biol Fertil Soils 14, 159–165 (1992). https://doi.org/10.1007/BF00346056

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