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Use of a lux-based procedure to rapidly visualize root colonisation by Pseudomonas fluorescens in the wheat rhizosphere

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Abstract

The bioluminescently marked Pseudomonas fluorescens strain 5RL, has been used previously to follow colonisation of soy bean roots (De Weger et al. [1991] Appl. Environ. Microbiol. 57:36-41). In the present paper the method has been further developed and optimized for wheat roots and it is used to get a quick overview of the colonisation patterns of many different root systems at the same time. Colonisation was followed on wheat plants grown in our gnotobiotic sand system (Simons et al., 1996. Mol Plant Microbe Interact 9: 600–607) and the following results were obtained. (i) A spatio-temporal analysis of the colonisation of wheat roots showed that 4 days after planting the highest bacterial activity was observed at the upper part of the root. After 6 days the high bacterial activity at the upper part was further increased, whereas spot-like activities were observed on the lower root parts, possibly due to micro-colonies. (ii) Bacterial mutations causing lack of motility or auxotrophy for amino acids resulted in impaired colonisation of the lower root parts, indicating that motility and prototrophy for the involved amino acid(s) are important factors for wheat root colonisation by strain 5RL. (iii) Coinoculation of strain 5RL with other wild type Pseudomonas strains on the root influenced the colonisation pattern observed for strain 5RL. Colonisation was not visually affected when the competing strain was a poor root coloniser, but was severely reduced when the competing strain was a good root coloniser. The results show that the spatio-temporal colonisation of wheat root by P. fluorescens strain 5RL and derivatives is similar to that of strain WCS365 on tomato. The advantage of the use of lux-marked strains is that the results are obtained much quicker than when conventional methods are used and that the result is supplied as an image of the colonisation pattern of many different roots.

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References

  • Bahme J.B. & M.N. Schroth, (1987). Spatial-temporal colonisation patterns of a rhizobacterium on underground organs of potato. Phytopathology 77: 1093–1100.

    Google Scholar 

  • Beauchamp, C.J., J.W. Kloepper & P.A. Lemke, (1993). Luminometric analyses of plant root colonization by bioluminescent pseudomonads. Can J Microbiol 39: 434–441.

    Google Scholar 

  • Brazil, G.M., L. Kenefick, M. Callanan, A. Haro, V. de Lorenzo, D.N. Dowling & F. O'Gara, (1995). Construction of a rhizosphere pseudomonad with potential to degrade polychlorinated biphenyls and detection of bph gene expression in the rhizosphere. Appl Environ Microbiol 61: 1946–1952.

    Google Scholar 

  • Chin-A-Woeng, T.F.C., W. de Priester, A.J. van der Bij & B.J.J. Lugtenberg, (1997). Description of the colonization of a gnotobiotic tomato rhizosphere by Pseuomonas fluorescens biocontrol strain WCS365, using scanning electron microscopy. Mol Plant Microbe Inter 10: 79–86.

    Google Scholar 

  • De Weger, L.A., C.I.M. van der Vlugt, A.H.M. Wijfjes, P.A.H.M. Bakker, B. Schippers & B. Lugtenberg, (1987). Flagella of a plant growth-stimulating Pseudomonas fluorescens strain are required for colonization of potato roots. J Bacteriol 169: 2769–2773.

    Google Scholar 

  • De Weger, L.A., P. Dunbar, W. Mahaffee, B.J.J. Lugtenberg & G.S. Sayler, (1991). Use of bioluminescence markers to detect Pseudomonas spp. in the rhizosphere. Appl Environ Microbiol 57: 3641–3644.

    Google Scholar 

  • De Weger, L.A., A.J. van der Bij, L.C. Dekkers, M. Simons, C.A. Wijffelman & B.J.J. Lugtenberg, (1995). Colonization of the rhizosphere of crop plants by plant-beneficial pseudomonads. FEMS Microbiology Ecology 17: 221–228.

    Google Scholar 

  • Dowling, D.N. & W.J. Broughton, (1986). Competition for nodulation of legumes. Annu Rev Microbiol 40: 131–157.

    Google Scholar 

  • Frederickson, J.K. & L.F. Elliott, (1985). Colonization of winter wheat roots by inhibitory rhizobacteria. Soil Sci Soc Am J 49: 1172–1177.

    Google Scholar 

  • Geels, F.P. & B. Schippers, (1983). Selection of antagonistic fluorescent Pseudomonas spp. and their root colonization and persistence following treatment of seed potatoes. Phytopathol Z 108: 207–214.

    Google Scholar 

  • Hofland, E., G.R. Findenegg & J.A. Nielemans, (1989). Solubilization of rock phosphate by rape. Plant and Soil 113: 161–165.

    Google Scholar 

  • King, E.O., M.K. Ward & D.E. Raney, (1954). Two simple media for the demonstration of pyocyanin and fluorescin. J Lab Clin Med 44: 301–307.

    Google Scholar 

  • King, J.M.H., P.M. Digrazzia, B. Applegate, R. Burlage, J. Sanseverino, P. Dunbar, F, Larimer & G.S. Sayler, (1990). Rapid sensitive bioluminescent reporter technology for naphthalene exposure and biodegradation. Science 249: 778–781.

    Google Scholar 

  • Kloepper, J.W. & C.J. Beauchamp, (1992). A review of issues related to measuring colonization of plant roots by bacteria. Can J Microbiol 38: 1219–1232.

    Google Scholar 

  • Lugtenberg, B.J.J., L.A. de Weger & J.W. Bennett, (1991). Microbial stimulation of plant growth and protection from disease. Current Opinion in Biotechnology 2: 457–464.

    Google Scholar 

  • Meyer, J.M. & M.A. Abdallah, (1978). The fluorescent pigment of Pseudomonas fluorescens: biosynthesis, purification and physicochemical properties. J Gen Microbiol 107: 319–328.

    Google Scholar 

  • Schippers, B., R.J. Scheffer, B.J.J. Lugtenberg & P.J.J. Weisbeek, (1995). Biocoating of seeds with plant growth-promoting rhizobacteria to improve plant establishment. Outlook on Argiculture 24: 179–185.

    Google Scholar 

  • Shaw, J.J., L.G. Settles & C.I. Kado, (1987). Transposon Tn4431 mutagenesis of Xanthomonas campestris pv. campestris: Characterization of a non pathogenic mutant and cloning of a locus for pathogenicity. Mol Plant-Microbe Interactions 1: 39–45.

    Google Scholar 

  • Simon, R., U. Priefer & A. Pühler, (1983). A broad host range mobilization system for in vivo genetic engineering: transposon mutagenesis in Gram-negative bacteria. Bio technology 1: 784–791.

    Google Scholar 

  • Simons, M., A.J. van der Bij, I. Brand, L.A. de Weger, C.A. Wijffelman & B.J.J. Lugtenberg, (1996). Gnotobiotic system for studying rhizosphere colonization by plant growth-promoting Pseudomonas bacteria. Mol Plant Microbe Interactions 9: 600–607.

    Google Scholar 

  • Simons, M., H. Permentier, L.A. de Weger, C.A. Wijffelman & B.J.J. Lugtenberg, (1997). Amino acids synthesis is necessary for tomato root colonization by Pseudomonas flourescens strain WCS365. Mol Plant Microbe Interactions 10: 102–106.

    Google Scholar 

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de Weger, L.A., Kuiper, I., van der Bij, A.J. et al. Use of a lux-based procedure to rapidly visualize root colonisation by Pseudomonas fluorescens in the wheat rhizosphere. Antonie Van Leeuwenhoek 72, 365–372 (1997). https://doi.org/10.1023/A:1000565413024

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