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Potential to improve transfer of N in intercropped systems by optimising host-endophyte combinations

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Abstract

Possibilities for improving N transfer from N2-fixing plants to non-N2-fixing plants by mycorrhiza have been investigated. Initially, the genetic variability with respect to N uptake was assessed by screening five varieties of chicory (Cichorium intybus L.), four of peas (Pisum sativum L.) and three of red clover (Trifolium pratense L.) in combination with eight isolates of arbuscular mycorrhizal fungi. The most promising plant - fungi combinations identified through the cultivar screening were used to optimise conditions for N transfer between intercropped N2-fixing plants (peas and clover) and non-N2-fixing chicory. In the first experiment, the recovery of fixed legume N was investigated using three cultivars, of chicory intercropped with pea variety, and inoculated with one of four mycorrhizal isolates. Roots of the N2-fixing pea and the non-N2-fixing chicory were separated by a root-free soil layer in a three-compartment container. A section of the legume roots was forced to grow into a separate compartment which received four split applications of 15N. The percentage of N in the chicory derived from transfer ranged between 3% and 50%. In a second experiment one chicory variety was intercropped with one red clover variety and inoculated with four mycorrhizal isolates respecetively. A harvest regime was chosen in which the shoots were harvested from intercropped plants at 3,4.5 and 6 months of age. At three months the percentage of N in the chicory derived from transfer ranged between 15% and 18% and at a plant age of 4.5 months from 46 to 77%. At six months the percentage of N in the chicory roots derived from transfer of legume N ranged from 20 to 34% and varied with fungal isolate. Our results show that there is potential for improving N transfer in intercropped plant systems through the methodological selection of suitable plant and mycorrhizal partners.

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References

  • Abbott L K and Robson A D 1981 Infectivity and effectiveness of five endomycorrhizal fungi in field soils. Aust. J. Agric. Res. 32, 621-630.

    Google Scholar 

  • Aiyer A K Y N 1949 Mixed cropping in India. Indian J. Agric. Sci. 19, 439-543.

    Google Scholar 

  • Butler G W and Bathurst N O 1956 The underground transference of nitrogen from clover to associated grass. In Proceedings of the Seventh International Grassland Congress. pp 168-178. Wright and Carman, Wellington, New Zealand.

    Google Scholar 

  • Chiarello N, Hickman J C and Mooney H A 1982 Endomycorrhizal role for interspecific transfer of phosphorus in a community of annual plants. Science 217, 941-943.

    Google Scholar 

  • Coolman R M and Hoyt G D 1993 Increasing sustainability by intercropping. HortTechn. 3, 309-312.

    Google Scholar 

  • Eason W R, Newman E I and Chuba P N 1991 Specificity of interplant cycling of phosphorus: The role of mycorrhizas. Plant Soil 137, 267-274.

    Google Scholar 

  • Egnér H, Riehm H and Domingo WR 1960 Untersuchungen uber die chemische Bodenanalyse als Grundlage für Beurteilung des Nåhrstoffzustandes der Böden. II. Chemische Extraktionsmethoden zur Phosphor-und Kaliumbestimmung. Kungliga Lantbrukshögskolans Annaler 26, 199-215.

    Google Scholar 

  • Estaun V, Calvet C and Hayman D 5 1987 Influence of plant genotype on mycorrhizal infection: response of three pea cultivars. Plant Soil 103, 295-298.

    Google Scholar 

  • Frey B and Schüepp H 1993 A role of vesicular-arbuscular (VA) mycorrhizal fungi in facilitating inter-plant nitrogen transfer. Soil Biol. Biochem. 25, 651-658.

    Google Scholar 

  • Giller K E, Ormesher J and Awah F M 1991 Nitrogen transfer from Phaseolus bean to intercropped maize measured using 15N-enrichment and 15N-isotope dilution methods. Soil Biol. Biochem. 23, 339-346.

    Google Scholar 

  • Hamel C and Smith D L 1991 Interspecific N-transfer and plant development in a mycorrhizal field-grown mixture. Soil Biol. Biochem. 23, 661-665.

    Google Scholar 

  • Hamel C, Barrantes-Cartín U, Furlan V and Smith D L 1991a Endomycorrhizal fungi in nitrogen transfer from soybean to maize. Plant Soil 138, 33-40.

    Google Scholar 

  • Hamel C, Nesser C, Barrantes-Cartín U and Smith D L 1991b Endomycorrhizal fungal species mediate 15N transfer from soybean to maize in non-fumigated soil. Plant Soil 138, 41-47.

    Google Scholar 

  • Hamel C, Furlan V and Smith D L 1992 Mycorrhizal effects on interspecific plant competition and nitrogen transfer in legumegrass mixtures. Crop Sci. 32, 991-996.

    Google Scholar 

  • Haystead A, Malajczuk N and Grove T S 1988 Underground transfer of nitrogen between pasture plants infected with vesicular-arbuscular mycorrhizal fungi. New Phytol. 108, 417-423.

    Google Scholar 

  • Heap A J and Newman E I 1980 Links between roots by hyphae of vesicular-arbuscular mycorrhizas. New Phytol. 85, 169-171.

    Google Scholar 

  • Ikram A, Jensen E S and Jakobsen I 1994 No significant transfer of N and P from Pueraris phaseoloides to Hevea brasiliensis via hyphal links of arbuscular mycorrhiza. Soil Biol. Biochem. 26, 1541-1547.

    Google Scholar 

  • Jensen E 5 1996 Barley uptake of N deposited in the rhizosphere of associated field pea. Soil Biol. Biochem. 28, 159-168.

    Google Scholar 

  • Johansen A and Jensen E S 1996 Transfer of N and P from intact or decomposing roots of pea to barley interconnected by an arbusuclar mycorrhizal fungus. Soil Biol. Biochem. 28, 73-81.

    Google Scholar 

  • Karlsson-Strese E-M, Umaerus M and Rydberg I 1996 Strategy for catch crop development. I. Hypothetical ideotype and screening of species. Acta Agric. Scand. Sect. B 46, 106-111.

    Google Scholar 

  • Laidlaw A S, Christie P and Lee H W 1996 Effect of white clover cultivar on apparent transfer of nitrogen from clover to grass and estimation of relative turnover rates of nitrogen in roots. Plant Soil 179, 243-253.

    Google Scholar 

  • Ledgard S F and Steele K W 1992 Biological nitrogen fixation in mixed legume/grass pastures. Plant Soil 141, 137-153.

    Google Scholar 

  • Mark G L and Cassells A C 1996 Genotype-dependence in the interaction between Glomus fistulosum, Phytophtora fragariae and the wild strawberry (Fragaria vesca). Plant Soil 185, 233-239.

    Google Scholar 

  • Mårtensson A M and Rydberg 1994 Variability among pea varieties for infection with arbuscular mycorrhizal fungi. Swed. J. Agric. Res. 24, 13-19.

    Google Scholar 

  • Mårtensson A M and Rydberg 1996 Variety × rhizobial strain interactions in peas with respect to early symbiosis, nodule initiation and N uptake. Plant Breed. 115, 402-406.

    Google Scholar 

  • Mårtensson A M and Torstensson L 1996 Monitoring sewage sludge using heterotrophic nitrogen-fixing microorganisms. Soil Biol. Biochem. 28, 1621-1630.

    Google Scholar 

  • Newman E I 1988 Mycorrhizal links between plants: their functioning and ecological significance. Adv. Ecol. Res. 18, 243-270.

    Google Scholar 

  • Overholt E, Engqvist G, Lindblad P, Mårtensson A, Rydberg I and Zagal E 1996 Pea-rhizobial and mycorrhizal symbiotic systems: a review of their commonalities with other plant-microbe systems. Symbiosis 21, 95-113.

    Google Scholar 

  • Raznikiewicz H, Carlgren K and Mårtensson A 1994 Impact of phosphorus fertilisation and liming on the presence of arbuscular mycorrhizal spores in a Swedish long-term field experiment. Swed. J. Agric. Res. 24, 157-164.

    Google Scholar 

  • Sah R N, Geng 5, Pun Y P and Rubatzky V E 1987 Evaluation of four crops for nitrogen utilisation and carbohydrate yield. Fert. Res. 13, 55-70.

    Google Scholar 

  • SAS 1988 SAS Procedures Guide, version 6.03. SAS Institute Inc., Cary, USA.

    Google Scholar 

  • Stern W R 1993 Nitrogen fixation and transfer in intercrop systems. Field Crops Res. 34, 335-356.

    Google Scholar 

  • Tomm G O, van Kessel C and Slinkard A E 1994 Bi-directional transfer of nitrogen between alfalfa and bromegrass: short and long term evidence. Plant Soil 164, 77-86.

    Google Scholar 

  • Van Kessel C, Singleton P W and Hoben H J 1985 Enhanced N-transfer from a soybean to maize by vesicular arbuscular mycorrhizal (VAM) fungi. Plant Physiol. 79, 562-563.

    Google Scholar 

  • Vestberg M 1992 The effect of vesicular-arbuscular mycorrhizal inoculation on the growth and root colonization of ten strawberry cultivars. Agric. Sci. Finland 1, 527-535.

    Google Scholar 

  • Vincent J M 1970 A Manual for the Practical Study of the Root Nodule Bacteria. IBP Handbook no. 15. Blackwell, Oxford, UK.

    Google Scholar 

  • Wasiuddin A, Afridi M M R K, Afaq S H and Samiullah 1979 Effect of nitrogen on growth and yield of Chichorium intybus L. (Chicory). Indian J. Pharm. Sci. 41, 196-198.

    Google Scholar 

  • Wonnacott T H and Wonnacott R J 1972 Introductory Statistics. Wiley, New York.

    Google Scholar 

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Mårtensson, A.M., Rydberg, I. & Vestberg, M. Potential to improve transfer of N in intercropped systems by optimising host-endophyte combinations. Plant and Soil 205, 57–66 (1998). https://doi.org/10.1023/A:1004312413711

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