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Leaching of genetically modified Pseudomonas fluorescens through organic soils: Influence of temperature, soil pH, and roots

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Summary

The effects of soil temperature and bulk soil pH on the vertical translocation of a genetically modified Pseudomonas fluorescens inoculum were studied in reconstituted soil microcosms, in the presence and absence of growing Lolium perenne roots. The inoculated microcosms received one rainfall event per day (5 mm h-1 for 6 h) for 5 days and the resulting leachate was quantitatively assayed for the presence of the modified pseudomonad. Soil temperature affected the total number of modified pseudomonads detected in the leachate over the 5 days, with significantly lower numbers detected at 25°C compared to 5°C. The bulk soil pH also affected leaching of the inoculum, with significantly greater numbers detected in the effluent at pH 7.5 than at pH 4.5. In the absence of L. perenne, greater numbers of the modified pseudomonads were detected in the pH 7.5 soil after 5 days of leaching compared to soil at pH 4.5. L. perenne roots decreased the number of cells of the inoculum that were leached and detected in the soil after 5 days of leaching. In the soil microcosms used for the pH study the distribution of the inoculum remaining with the soil was altered by L. perenne roots. At each pH value the proportion of cells detected within the soil below the surface 2 cm of the microcosms was greater in the presence of L. perenne roots. The results of this study indicate that soil temperature, bulk soil pH, and the presence of root systems are important factors in determining the extent of inoculum translocation, and should be considered in the design and interpretation of field experiments.

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References

  • Adams TMcM, Adams SN (1983) The effects of liming and soil pH on carbon and nitrogen contained in the soil biomass. J Agri Sci 101:553–558

    Google Scholar 

  • Anderson OR (1988) Comparative protozoology: Ecology, physiology, life history. Springer-Verlag, Berlin

    Google Scholar 

  • Bashan Y, Levanony H (1987) Horizontal and vertical movement of Azospirillum brasilense Cd in the soil and along the rhizosphere of wheat and weeds in controlled and field environments. J Gen Microbiol 133:3473–3480

    Google Scholar 

  • Bashan Y, Levanony H (1989) Wheat root tips as a vector for passive vertical transfer of Azospirillum brasilense Cd. J Gen Microbiol 135:2899–2908

    Google Scholar 

  • Beringer JE, Bale MJ (1988) The survival and persistence of genetically-engineered micro-organisms. In: Sussman M, Collins CH, Skinner FA, Stewart-Tull DE (eds) The release of genetically-engineered micro-organisms. Academic Press, London, pp 29–46

    Google Scholar 

  • Bertrand AR, Sor K (1962) The effects of rainfall intensity on soil structure and migration of colloid materials in soils. Soil Sci Soc Am Proc 26:297–300

    Google Scholar 

  • Bolton H Jr, Fredrickson JK, Bentjen SA, Workman DJ, Li SW, Thomas JM (1991 a) Field calibration of soil-core microcosms: Fate of a genetically altered rhizobacterium. Microb Ecol 21:163–173

    Google Scholar 

  • Bolton H Jr, Fredrickson JK, Thomas JM, Li SW, Workman DJ, Bentjen SA, Smith JL (1991 b) Field calibration of soil-core microcosms: Ecosystem structural and functional comparisons. Microb Ecol 21:175–189

    Google Scholar 

  • Brusseau ML, Rao PSC (1990) Modeling solute transport in structured soils: A review. Geoderma 46:169–192

    Google Scholar 

  • Carter MR (1986) Microbial biomass and mineralizable nitrogen in solonezetic soils: Influence of gypsum and lime amendments. Soil Biol Biochem 18:531–537

    Google Scholar 

  • Casida LE Jr (1980) Bacterial predators of Micrococcus luteus in soil. Appl Environ Microbiol 39:1035–1041

    Google Scholar 

  • Chao WL, Nelson EB, Harman GE, Hoch HC (1986) Colonization of the rhizosphere by biological control agents applied to seeds. Phytopathology 76:60–65

    Google Scholar 

  • Danso SKA, Keya SO. Alexander M (1975) Protozoa and the decline of Rhizobium populations added to soil. Can J Microbiol 21:884–895

    Google Scholar 

  • Dunigan EP, Bollich PK, Hutchinson RL, Hicks PM, Zaunbrecher FC, Scott SG, Mowers RP (1984) Introduction and survival of an inoculant strain of Rhizobium japonicum in soil. Agron J 76:463–466

    Google Scholar 

  • Engebrecht J, Nealson K, Silverman M (1983) Bacterial bioluminescence: Isolation and genetic analysis of functions from Vibrio fischeri. Cell 32:773–781

    Google Scholar 

  • Filip Z, Schmelz P, Smed-Hildmann R (1991) Bdellovibrio sp. — a predator under groundwater conditions? A short communication. Water Sci Technol 24:321–324

    Google Scholar 

  • Fletcher M (1977) The effects of culture concentration and age, time and temperature on bacterial attachment to polystyrene. Can J Microbiol 23:1–6

    Google Scholar 

  • Gammack SM, Paterson E, Kemp JS, Cresser MS, Killham K (1992) Factors affecting the movement of microbial inocula in soils. In: Bollag J-M, Stotzky G (eds) Soil biochemistry. Marcel Dekker, New York, vol 7, pp 263–305

    Google Scholar 

  • Grant FA, Prosser JI, Killham K, Glover LA (1992) Luminescence based detection of Erwinia carotovora subsp. carotovora in soil. Soil Biol Biochem (in press)

  • Habte M, Alexander M (1975) Protozoa as agents responsible for the decline of Xanthomonas campestris in soil. Appl Microbiol 29:159–164

    Google Scholar 

  • Habte M, Alexander M (1977) Further evidence for the regulation of bacterial populations in soil by protozoa. Arch Microbiol 113: 181–183

    Google Scholar 

  • Higashida S, Takao K (1986) Relationship between soil microbial activity and soil properties in grassland. Soil Sci Plant Nutr 32:587–597

    Google Scholar 

  • Hojito M, Higashida S, Nishimune A, Takao K (1987) Effects of liming on grass growth, soil solution composition, and microbial activities. Soil Sci Plant Nutr 33:177–185

    Google Scholar 

  • Jain RK, Sayler GS (1987) Problems and potential for in situ treatment of environmental pollutants by engineered microorganisms. Microbiol Sci 4:59–63

    Google Scholar 

  • Jardine PM, Wilson GV, Luxmoore RJ (1990) Unsaturated solute transport through a forest soil during rain storm events. Geoderma 46:103–118

    Google Scholar 

  • Laybourn-Parry J (1987) Protozoa. In: Pandian TJ, Vernberg FJ (eds) Animal energetics, vol 1, Protozoa through Insecta. Academic Press, London, pp 1–25

    Google Scholar 

  • Levy SB, Marshall B (1988) Genetic transfer in the natural environment. In: Sussman M, Collins CH, Skinner FA, Stewart-Tull DE (eds) The release of genetically-engineered micro-organisms. Academic Press, London, pp 61–76

    Google Scholar 

  • Liddell CM, Parke JL (1989) Enhanced colonization of pea taproots by a fluorescent pseudomonad biocontrol agent by water infiltration into soil. Phytopathology 79:1327–1332

    Google Scholar 

  • Lindow SE (1983) Methods of preventing frost injury caused by epiphytic ice-nucleation-active bacteria. Plant Dis 67:327–333

    Google Scholar 

  • Loper JE, Haack C, Schroth MN (1985) Population dynamics of soil pseudomonads in the rhizosphere of potato (Solanum tuberosum L.). Appl Environ Microbiol 49:416–422

    Google Scholar 

  • Luxmoore RJ (1981) Micro-, meso-, and macroporosity of soil. Soil Sci Soc Am J 45:671

    Google Scholar 

  • Madsen EL, Alexander M (1982) Transport of Rhizobium and Pseudomonas through soil. Soil Sci Soc Am J 46:557–560

    Google Scholar 

  • Marshall TJ (1959) Relations between water and soil. Commonwealth Agricultural Bureaux, Farnham Royal, UK

    Google Scholar 

  • Meharg AA, Killham K (1989) Distribution of assimilated carbon within the plant and rhizosphere of Lolium perenne: Influence of temperature. Soil Biol Biochem 21:487–489

    Google Scholar 

  • Meharg AA, Killham K (1990) The effect of soil pH on rhizosphere carbon flow of Lolium perenne. Plant and Soil 123:1–7

    Google Scholar 

  • Meteorological Office (1989) Monthly weather report 106, Bracknell, UK

    Google Scholar 

  • Morré DJ, Jones DD (1967) Golgi apparatus mediated polysaccharide secretion by outer root cap cells of Zea mays. Planta 74:286–301

    Google Scholar 

  • Obukowicz MG, Perlak FJ, Kusano-Kretzmer K, Mayer EJ, Bolten SL, Watrud LS (1986) Tn5-mediated integration of the delta-endotoxin gene from Bacillus thuringiensis into the chromosome of root-colonizing pseudomonads. J Bacteriol 168:982–989

    Google Scholar 

  • Parke JL, Moen R, Rovira AD, Bowen GD (1986) Soil water flow affects the rhizosphere distribution of a seed-borne biological control agent, Pseudomonas fluorescens. Soil Biol Biochem 18:583–588

    Google Scholar 

  • Postma J, van Veen JA, Walter S (1989) Influence of different initial soil moisture contents on the distribution and population dynamics of introduced Rhizobium leguminosarum biovar trifolii. Soil Biol Biochem 21:437–442

    Google Scholar 

  • Rattray EAS, Prosser JI, Killham K, Glover LA (1990) Luminescence-based nonextractive technique for in situ detection of Escherichia coli in soil. Appl Environ Microbiol 56:3368–3374

    Google Scholar 

  • Salas SD, Geesey GG (1983) Surface attachment of a sediment isolate of Enterobacter cloacae. Microb Ecol 9:307–315

    Google Scholar 

  • Schilf W, Klingmüller W (1983) Experiments with Escherichia coli on the dispersal of plasmids in environmental samples. Recombinant DNA Tech Bull 6:101–102

    Google Scholar 

  • Schippers B (1988) Biological control of pathogens with rhizobacteria. Phil Trans R Soc London Ser B 318:283–293

    Google Scholar 

  • Schneider WR Jr, Doetsch RN (1977) Temperature effects on bacterial movement. Appl Environ Microbiol 34:695–700

    Google Scholar 

  • Skiba U, Cresser MS (1986) Effects of precipitation acidity on the chemistry and microbiology of Sitka spruce litter leachate. Environ Pollut Ser A 42:65–78

    Google Scholar 

  • Stotzky G (1972) Activity, ecology and population dynamics of microorganisms in soil. Crit Rev Microbiol 2:59–137

    Google Scholar 

  • Stotzky G, Babich H (1986) Survival of, and genetic transfer by, genetically engineered bacteria in natural environments. Adv Appl Microbiol 31:93–138

    Google Scholar 

  • Trevors JT, van Elsas JD, van Overbeek LS, Starodub M-E (1990) Transport of a genetically engineered Pseudomonas fluorescens strain through a soil microcosm. Appl Environ Microbiol 56:401–408

    Google Scholar 

  • Ueda S, Momii F, Osajima K, Ito K (1981) Extracellular polysaccharide produced by strain no. 626 of Aeromonas hydrophila. Agric Biol Chem 45:1977–1981

    Google Scholar 

  • van Elsas JD, Trevors JT, Starodub ME, van Overbeek LS (1990) Transfer of plasmid RP 4 between pseudomonads after introduction into soil; influence of spatial and temporal aspects of inoculation. FEMS Microb Ecol 73:1–11

    Google Scholar 

  • van Elsas JD, Trevors JT, van Overbeek LS (1991) Influence of soil properties on the vertical movement of genetically marked Pseudomonas fluorescens through large soil microcosms. Biol Fertil Soils 10:249–255

    Google Scholar 

  • White RE (1985) The influence of macropores on the transport of dissolved and suspended matter through soil. Adv Soil Sci 3:95–120

    Google Scholar 

  • Worral V, Roughley RJ (1991) Vertical movement of Rhizobium leguminosarum bv trifolii in soil as influenced by soil water potential and water flow. Soil Biol Biochem 23:485–486

    Google Scholar 

Download references

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Kemp, J.S., Paterson, E., Gammack, S.M. et al. Leaching of genetically modified Pseudomonas fluorescens through organic soils: Influence of temperature, soil pH, and roots. Biol Fertil Soils 13, 218–224 (1992). https://doi.org/10.1007/BF00340579

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