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Responses by iron-efficient and inefficient oat cultivars to inoculation with siderophore-producing bacteria in a calcareous soil

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Abstract

Rhizosphere bacteria may enhance plant uptake of Fe by producing siderophores that chelate sparingly soluble Fe3+ in calcareous soils. To evaluate the extent to which plants benefit from colonization of the roots by prolific siderophore-producing bacteria, we inoculated two oat cultivars with six strains of bacteria that produced high concentrations of siderophores under Felimiting conditions in vitro. Oat cv Coker 227, an Fe-efficient cultivar, which produces the phytosiderophore avenic acid, and cv TAM 0-312, and Fe-inefficient cultivar, which does not produce the phytosiderophore, were grown in a calcareous soil (Weswood silt loam) on a light bench in the laboratory. Half of the plants were fertilized with a nutrient solution containing 5 mM Fe and half with a nutrient solution containing no Fe. After 6 weeks of growth, we compared colonization of the roots by the inoculant bacteria and the dry weight and Fe content of roots and shoots. Three species of Pseudomonas colonized the roots of both oat cultivars in high numbers (≥106 cells g-1 root dry weight), whereas the remaining bacteria colonized the roots in substantially lower numbers (≤104 cells g-1 root dry weight). Plants fertilized with 5 mM Fe were larger and supported greater numbers or rhizosphere bacteria per gram of root than plants not supplied with Fe. Comparisons of the Fe content and dry weight of roots and shoots revealed few significant differences between inoculated and uninoculated plants, or among the plants inoculated with the different strains of siderophore-producing bacteria. The differences that were observed revealed no consistent response to inoculation. We conclude that inoculation of the roots of the two oat cultivars with bacteria that produce high concentrations of siderophores in response to an Fe deficiency had little or no effect on Fe acquisition by the plants.

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References

  • Akers HA (1981) Multiple hydroxamic microbial chelators (siderophores) in soils. Soil Sci 135:156–159

    Google Scholar 

  • Alexander DB, Zuberer DA (1991a) Use of chrome azurol S reagents to evaluate siderophore production by rhizosphere bacteria. Biol Fertil Soils 12:39–45

    Google Scholar 

  • Alexander DB, Zuberer DA (1991b) Siderophore-producing bacteria isolated from roots of iron-efficient and inefficient grasses. In: Keister DL, Cregan PB (eds) The rhizosphere and plant growth. Kluwer Academic Publ, Dordrecht, p 308

    Google Scholar 

  • Bar-Ness E, Chen Y, Hadar Y, Marschner H, Romheld V (1991) Siderophores of Pseudomonas putida as an iron source for dicot and monocot plants. In: Chen Y, Hadar Y (eds) Iron nutrition and interactions in plants. Kluwer Academic Publ, Dordrecht pp 271–281

    Google Scholar 

  • Becker JO, Hedges RW, Messens E (1985a) Inhibitory effect of pseudobactin on the uptake of iron by higher plants. Appl Environ Microbiol 49:1090–1093

    Google Scholar 

  • Becker JO, Messens E, Hedges RW (1985b) Influence of agrobactin on the uptake of iron by plants. FEMS Microbiol Ecol 31:171–175

    Google Scholar 

  • Becker JO, Hedges RW, Messens E (1986) Diverse effects of some bacterial siderophores on the uptake of iron by plants. In: Swinburn TR (ed) Iron, siderophores, and plant diseases. Plenum Press, New York, pp 61–70

    Google Scholar 

  • Bienfait HF (1988) Mechanisms in Fe-efficiency reactions of higher plants. J Plant Nutr 11:605–629

    Google Scholar 

  • Bienfait HF, van den Briel W, Mesland-Mul NT (1985) Free space iron pools in roots. Plant Physiol 78:596–600

    Google Scholar 

  • Bossier P, Verstraete W (1988) Ecological significance of siderophores in soil. Adv Microbial Ecol 10:385–414

    Google Scholar 

  • Cline GR, Reid CPP, Szaniszlo PJ (1984) Effects of a hydroxamate siderophore on iron absorption by sunflower and sorghum. Plant Physiol 76:36–39

    Google Scholar 

  • Crowley DE, Reid CPP, Szaniszlo PJ (1987) Microbial siderophores as iron sources for plants. In: Winkelmann G, van der Helm D, Neilands JB (eds) Iron transport in microbes, plants and animals. VCH Publ, New York, pp 375–386

    Google Scholar 

  • Crowley DE, Reid CPP, Szaniszlo PJ (1988) Utilization of microbial siderophores in iron acquisition by oat. Plant Physiol 87:680–685

    Google Scholar 

  • Crowley DE, Wang YC, Reid CPP, Szaniszlo PJ (1991) Mechanisms of iron acquisition from siderophores by microorganisms and plants. In: Chen Y, Hadar Y (eds) Iron nutrition and interactions in plants. Kluwer Academic Publ, Dordrecht, pp 213–232

    Google Scholar 

  • Hemming BC (1986) Microbial-iron interactions in the plant rhizosphere. An overview J Plant Nutr 9:505–521

    Google Scholar 

  • Hoagland DR, Arnon DI (1950) The water-culture method for growing plants without soil. Calif Agric Exp St Cire 347

  • Jolley VD, Brown JC (1989) Iron efficient and inefficient oats. I. Differences in phytosiderophore release. J Plant Nutr 12:423–435

    Google Scholar 

  • Leong J (1986) Siderophores: Their biochemistry and possible role in the biocontrol of plant pathogens. Annu Rev Phytopathol 24: 187–209

    Google Scholar 

  • Lindsay WL, Schwab AP (1982) The chemistry of iron in soils and its availability to plants. J Plant Nutr 5:821–840

    Google Scholar 

  • Maniatis T, Fritsch EF, Sambrook J (1982) Molecular cloning. Cold Spring Harbor Laboratory, Cold Spring Harbor, New York

    Google Scholar 

  • Neilands JB (1982) Microbial envelope proteins related to iron. Annu Rev Microbiol 36:285–309

    Google Scholar 

  • Orlando JA, Neilands JB (1982) Ferrichrome compounds as a source of iron for higher plants. In: Kehl H (ed) Chemistry and biology of hydroxamic acids. S. Karger, Basel, pp 123–129

    Google Scholar 

  • Powell PE, Cline GR, Reid CPP, Szaniszlo PJ (1980) Occurrence of hydroxamate siderophore iron chelators in soils. Nature (London) 287:833–834

    Google Scholar 

  • Powell PE, Szaniszlo PJ, Cline GR, Reid CPP (1982) Hydroxamate siderophores in the iron nutrition of plants. J Plant Nutr 5:653–673

    Google Scholar 

  • Powell PE, Szaniszlo PJ, Reid CPP (1983) Confirmation of hydroxamate siderophores in soil by a novel Escherichia coli bioassay. Appl Environ Microbiol 46:1080–1083

    Google Scholar 

  • Reid CPP, Crowley DE, Powell PE, Kim HJ, Szaniszlo PJ (1984a) Utilization of iron by oat when supplied as ferrated hydroxamate siderophore or as ferrated synthetic chelate. J Plant Nutr 7:437–447

    Google Scholar 

  • Reid RK, Reid CPP, Powell PE, Szaniszlo PJ (1984b) Comparison of siderophore concentrations in aqueous extracts of rhizosphere and adjacent bulk soils. Pedobiologia 26:263–266

    Google Scholar 

  • Reid CPP, Szaniszlo PJ, Crowley DE (1986) Siderophore involvement in plant iron nutrition. In: Swinburne TR (ed) Iron, siderophores, and plant diseases Plenum Press, New York, pp 29–42

    Google Scholar 

  • Römheld V (1987) Different strategies for iron acquisition in higher plants. Physiol Plant 70:231–234

    Google Scholar 

  • Römheld V, Marschner H (1983) Mechanisms of iron uptake by peanut plants. I. FeIII reduction, chelate splitting and release of phenolics. Plant Physiol 71:949–954

    Google Scholar 

  • Schwyn B, Neilands JB (1987) Universal chemical assay for the detection and determination of siderophores. Anal Biochem 160:47–56

    Google Scholar 

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Alexander, D.B., Zuberer, D.A. Responses by iron-efficient and inefficient oat cultivars to inoculation with siderophore-producing bacteria in a calcareous soil. Biol Fert Soils 16, 118–124 (1993). https://doi.org/10.1007/BF00369412

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