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Modes of Action of Pantoea agglomerans CPA-2, an Antagonist of Postharvest Pathogens on Fruits

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Abstract

Pantoea agglomerans CPA-2 is an effective antagonist against the postharvest pathogens Penicillium digitatum and Penicillium italicum on citrus fruits but its mode of action is unknown. Possible mechanisms studied in this work were antibiosis, induced resistance, competition and production of chitinolytic enzymes. P. agglomerans CPA-2 was unable to produce antibiotics or chitinolytic enzymes under the conditions tested. Induction of resistance by P. agglomerans CPA-2 was studied in oranges by measuring phenylalanine ammonia lyase and peroxidase enzyme activity in the orange peel at different time points after inoculation with the antagonist and/or the pathogen. No significant augmentation of enzyme activity after inoculation of oranges with P. agglomerans CPA-2 in the presence or absence of the pathogen was observed. P. agglomerans was effective only when it is in close contact with the pathogens. Competition for nutrients was studied using tissue culture plates with cylinder inserts, which allowed competition for nutrients to be studied without competition for space since physical contact between pathogen and antagonist was avoided. The presence of P. agglomerans in the tissue culture wells clearly decreased the germination of Penicillium conidia present in the cylinder when diluted orange peel extract or diluted potato dextrose broth was the nutrient source. Germination of Penicillium conidia, however, was almost completely inhibited when pathogen and antagonist were in physical contact. These results indicate that competition for nutrients is one of the modes of action of P. agglomerans CPA-2, but that physical contact between pathogen and antagonist is important for effective control.

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References

  • Agresti A (1990) Categorical Data Analysis. Wiley and sons, New York

    Google Scholar 

  • Arras G, De Cicco V, Arru S and Lima G (1998) Biocontrol by yeasts of blue mould of citrus fruits and the mode of action of an isolate of Pichia guilliermondii. Journal of Horticultural Science and Biotechnology 73: 413-418

    Google Scholar 

  • Bancroft MC, Gardner PD, Eckert JW and Baritelle JL (1984) Comparison of decay control strategies in California lemon packing houses. Plant Disease 68: 24-28

    Google Scholar 

  • Braun-Kiewnick A, Jacobsen BJ and Sands DC (2000) Biological control of Pseudomonas syringae pv. syringae, the causal agent of basal kernel blight of barley by antagonistic Pantoea agglomerans. Phytopathology 90: 368-375

    Google Scholar 

  • Bryk H, Dyki B and Sobiczewski P (1998) Antagonistic effect of Erwinia herbicola on in vitro spore germination and germ tube elongation of Botrytis cinerea and Penicillium expansum. BioControl 43: 97-106

    Google Scholar 

  • Bull CT, Stack JP and Smilanick JL (1997) Pseudomonas syringae strains ESC-10 and ESC-11 survive in wounds on citrus and control green and blue molds of citrus. Biological Control 8: 81-88

    Google Scholar 

  • Bus VG, Bongers AJ and Risse LA (1991) Occurrence of Penicillium digitatum and Penicillium italicum resistant to benomyl, thiabendazole, and imazalil on citrus fruit from different geographic origins. Plant Disease 75: 1098-1100

    Google Scholar 

  • Castoria R, De Curtis F, Lima G, Caputo L, Pacifico S and De Cicco V (2001) Aureobasidium pullulans (LS-30) an antagonist of postharvest pathogens of fruits: Study on its modes of action. Postharvest Biology and Technology 22: 7-17

    Google Scholar 

  • Chernin L, Brandis A, Ismailov Z and Chet I (1996) Pyrrolnitrin production by an Enterobacter agglomerans strain with a broad spectrum of antagonistic activity towards fungal and bacterial phytopathogens. Current Microbiology 32: 208-212

    Google Scholar 

  • Chernin L, Ismailov Z, Haran S and Chet I (1995) Chitinolytic Enterobacter agglomerans antagonistic to fungal plant pathogens. Applied and Environmental Microbiology 61: 1720-1726

    Google Scholar 

  • Droby S, Chalutz E, Wilson CL and Wisniewski M (1989) Characterization of the biological control activity of Debaryomyces hansenii in the control of Penicillium digitatum on grapefruit. Canadian Journal of Microbiology 35: 794-800

    Google Scholar 

  • Droby S, Cohen L, Daus A, Weiss B, Horev B, Chalutz E, Katz H, Keren-Tzur M and Shachnai A (1998) Commercial testing of Aspire: A yeast preparation for the biological control of postharvest decay of citrus. Biological Control 12: 97-101

    Google Scholar 

  • Eckert JW (1990) Impact of fungicide resistance on citrus fruit decay control. In: Managing resistance to agrochemicals. (286 pp) American Chemical Society, Washington DC

    Google Scholar 

  • Eckert JW and Brown GE (1986) Postharvest citrus diseases and their control. In: Wardowski WF, Nagy S and Grierson W (eds) Fresh Citrus Fruits (pp 315-360) Van Nostrand Reinhold Company Inc., New York, USA

    Google Scholar 

  • Eckert JW, Sievert JR and Ratnayake M (1994) Reduction of imazalil effectiveness against citrus green mold in California packinghouses by resistant biotypes of Penicillium digitatum. Plant Disease 78: 971-974

    Google Scholar 

  • El-Goorani MA, Hassanein FM and Shoeib AA (1992) Antibacterial and antifungal spectra of antibiotics produced by different strains of Erwinia herbicola (=Pantoea agglomerans). Journal of Phytopathology 136: 335-339

    Google Scholar 

  • Ewing WH and Fife MF (1972) Enterobacter agglomerans (Beijerinck) comb. nov. (the herbicola-lathry bacteria). International Journal of Systematic Bacteriology 22: 4-11

    Google Scholar 

  • Gavini F, Mergaert J, Beji A, Mielcarek C, Izard D, Kersters K and De Ley J (1989) Transfer of Enterobacter agglomerans (Beijerinck 1888) Ewing and Fife 1972 to Pantoea gen. nov. as Pantoea agglomerans comb. nov. and description of Pantoea dispersa sp. nov. International Journal of Systematic Bacteriology 39: 337-345

    Google Scholar 

  • Greiner M and Winkelmann G (1991) Fermentation and isolation of herbicolin A, a peptide antibiotic produced by Erwinia herbicola strain A111. Applied Microbiology and Biotechnology 34: 565-569

    Google Scholar 

  • Han DY, Coplin DL, Bauer WD and Hoitink HAJ (2000) A rapid bioassay for screening rhizosphere microorganisms for their ability to induce systemic resistance. Phytopathology 90: 327-332

    Google Scholar 

  • Ishimaru CA, Klos EJ and Brubaker RR (1988) Multiple antibiotic production by Erwinia herbicola. Phytopathology 78: 746-750

    Google Scholar 

  • Ismail MA and Brown GE (1979) Postharvest wound healing in citrus fruits: Induction of phenylalanine ammonia-lyase in injured 'Valencia' orange flavedo. Journal of the American Society of Horticultural Science 104: 126-129

    Google Scholar 

  • Janisiewicz WJ and Jeffers SN (1997) Efficacy of commercial formulation of two biofungicides for control of blue mold and gray mold of apples in cold storage. Crop Protection 16: 629-633

    Google Scholar 

  • Janisiewicz WJ and Korsten L (2002) Biological control of postharvest diseases of fruits. Annual Review of Phytopathology 40: 411-441

    Google Scholar 

  • Janisiewicz WJ, Tworkoski, TJ and Sharer C (2000) Characterizing the mechanism of biological control of postharvest diseases on fruits with a simple method to study competition for nutrients. Phytopathology 90: 1196-1200

    Google Scholar 

  • Janisiewicz WJ, Yourman L, Roitman J and Mahoney N (1991) Postharvest control of blue mold and gray mold of apples and pears by dip treatment with pyrrolnitrin, a metabolite of Pseudomonas cepacia. Plant Disease 75: 490-494

    Google Scholar 

  • Kearns LP and Hale CN (1996) Partial characterization of an inhibitory strain of Erwinia herbicola with potential as a biocontrol agent for Erwinia amylovora, the fire blight pathogen. Journal of Applied Bacteriology 81: 369-374

    Google Scholar 

  • Kearns LP and Mahanty HK (1998) Antibiotic production by Erwinia herbicola Eh1087: Its role in inhibition of Erwinia amylovora and partial characterization of antibiotic biosynthesis genes. Applied and Environmental Microbiology 64: 1837-1844

    Google Scholar 

  • Kempf HJ, Bauer PH and Schroth MN (1993) Herbicolin A associated with crown and roots of wheat after seed treatment with Erwinia herbicola B247. Phytopathology 83: 213-216

    Google Scholar 

  • Kempf HJ and Wolf G (1989) Erwinia herbicola as a biocontrol agent of Fusarium culmorum and Puccinia reconditai f. sp. tritici on wheat. Phytopathology 79: 990-994

    Google Scholar 

  • Martinez-Tellez MA and Lafuente MT (1997) Effect of high temperature conditioning on ethylene, phenylalanine ammonialyase, peroxidase and polyphenol oxidase activities in flavedo of chilled 'Fortune' mandarin fruit. Journal of Plant Physiology 150: 674-678

    Google Scholar 

  • Monreal J and Reese ET (1969) The chitinase of Serratia marcescens. Canadian Journal of Microbiology 15: 689-696

    Google Scholar 

  • Nelson EB (1988) Biological control of Pythium seed rot and preemergence damping-off of cotton with Enterobacter cloacae and Erwinia herbicola applied as seed treatments. Plant Disease 72: 140-142

    Google Scholar 

  • Nunes C, Usall J, Teixidó N, Fons E and Viñas I (2002) Postharvest biological control by Pantoea agglomerans CPA-2 on Golden Delicious apples. Journal of Applied Microbiology 92: 247-255

    Google Scholar 

  • Nunes C, Usall J, Teixidó N and Viñas I (2001) Biological control of postharvest pear diseases using a bacterium, Pantoea agglomerans CPA-2. International Journal of Food Microbiology 70: 53-61

    Google Scholar 

  • Ritte E, Lurie S, Droby S, Ismailov Z, Chet I and Chernin L (2002) Biocontrol of postharvest fungal pathogens of peaches and apples by Pantoea agglomerans IC1270. IOBC wprs Bulletin 25: 199-202

    Google Scholar 

  • Smilanick JL and Denis-Arrue R (1992) Control of green mold of lemons with Pseudomonas species. Plant Disease 76: 481-485

    Google Scholar 

  • Stockwell VO, Johnson KB, Sugar D and Loper JE (2002) Antibiosis contributes to biological control of fire blight by Pantoea agglomerans strain Eh252 in orchards. Phytopathology 92: 1202-1209

    Google Scholar 

  • Vanneste JL, Cornish DC, Yu J and Voyle MD (2002) P10c: A new biocontrol agent against fire blight. IOBC wprs Bulletin 25: 13-16

    Google Scholar 

  • Vanneste JL, Yu J and Beer SV (1992) Role of antibiotic production by Erwinia herbicola Eh252 in biological control of Erwinia amylovora. Journal of Bacteriology 174: 2785-2796

    Google Scholar 

  • Viñas I, Usall J, Nunes C and Teixidó N (1999) Nueva cepa bacteriana Pantoea agglomerans; Beijerinck (1888) Gavini, Mergaert, Beji, Mielcareck, Izard, Kersters y, De Ley (1989) y su utilización como agente de control biológico de las enfermedades fÚngicas de fruta. Solicitud P9900612. Oficina Española de Patentes y Marcas

  • Wilson CL, Epton HAS and Sigee DC (1992) Interactions between Erwinia herbicola and E. amylovora on the stigma of hawthorn blossoms. Phytopathology 82: 914-918

    Google Scholar 

  • Winkelmann G, Lupp R and Jung G (1980) Herbicolins-New peptide antibiotics from Erwinia herbicola. Journal of Antibiotics 33: 353-358

    Google Scholar 

  • Wodzinski RS, Beer SV, Zumoff CH, Clardy JC and Coval SJ (1990) Antibiotics produced by strains of Erwinia herbicola that are highly effective in suppressing the fire blight. Acta Horticulturae 273: 411-412

    Google Scholar 

  • Wodzinski RS and Paulin JP (1994) Frequency and diversity of antibiotic production by putative Erwinia herbicola strains. Journal of Applied Bacteriology 76: 603-607

    Google Scholar 

  • Wodzinski RS, Umholtz TE, Rundle JR and Beer SV (1994) Mechanisms of inhibition of Erwinia amylovora by Erwinia herbicola in vitro and in vivo. Journal of Applied Bacteriology 76: 22-29

    Google Scholar 

  • Wright SA, Zumoff CH, Schneider L and Beer SV (2001) Pantoea agglomerans strain Eh318 produces two antibiotics that inhibit Erwinia amylovora in vitro. Applied and Environmental Microbiology 67: 284-292

    Google Scholar 

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Correspondence to Monica Höfte.

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Poppe, L., Vanhoutte, S. & Höfte, M. Modes of Action of Pantoea agglomerans CPA-2, an Antagonist of Postharvest Pathogens on Fruits. European Journal of Plant Pathology 109, 963–973 (2003). https://doi.org/10.1023/B:EJPP.0000003747.41051.9f

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  • DOI: https://doi.org/10.1023/B:EJPP.0000003747.41051.9f

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