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Nursery treatments with non-conventional products against crown and root rot, caused by Phytophthora capsici, on zucchini

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Abstract

Phytophthora capsici, a pathogen causing crown and root rot of zucchini in southern Italy since the 1980s, has recently been observed in open field in northern Italy, causing severe losses. Since chemical control on zucchini is complicated by a limited availability of registered chemicals, as well as by the scalar harvest, a number of resistance inducers, organic amendments, biocontrol agents and fungicides were tested against P. capsici, under greenhouse conditions. Experiments were carried out at the nursery level, with different timing and number of applications. In the presence of a very high disease pressure, the best disease control was provided by mefenoxam, followed by the phosphite-based products, which acted as resistance inducers and also provided a positive effect on plant biomass. Acibenzolar-S-methyl, although effective, was sometimes phytotoxic. The biocontrol agents tested as well as the patented formulation of Brassica carinata defatted seed meals were not effective, providing results statistically similar to the untreated control. The efficacy of resistance inducers is interesting in view of their possible use in alternation with chemicals, or as stand-alone treatments in cultivation systems which do not adopt chemical control.

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References

  • Abbasi, P. A., Lazarovitis, G., & Weselowski, B. (2011). Effectiveness of AG3 phosphonate formulation in suppressing Phytophthora blight in cucumber and bell pepper plants under growth room conditions. Canadian Journal of Plant Pathology, 33, 150–158.

    Article  CAS  Google Scholar 

  • Akinsanmi, O. A., & Drenth, A. (2013). Phosphite and mefenoxam rejuvenate macadamia trees in decline caused by Phytophthora cinnamomi. Crop Protection, 53, 29–36.

    Article  CAS  Google Scholar 

  • Cristinzio, G. E., & Novello, C. (1980). Specializzazione della Phytophthora capsici in Campania. Rivista di Patologia Vegetale, 16, 25–36.

    Google Scholar 

  • Erwin, D. C., & Ribeiro, O. K. (1996). Phytophthora disease worldwide (2nd ed.). Minnesota, USA: APS Press.

    Google Scholar 

  • Garibaldi, A., & Gullino, M. L. (2010). Emerging soilborne diseases of horticultural crops and new trends in their management. Acta Horticolturae, 883, 37–47.

    Google Scholar 

  • Gilardi, G., Demarchi, S., Garibaldi, A., & Gullino, M. L. (2013). Managing of downy mildew of sweet basil (Ocimum basilicum) caused by Peronospora belbahrii by means of resistance inducers, fungicides, biocontrol agents and natural products. Phytoparasitica, 41, 59–72.

    Article  CAS  Google Scholar 

  • Gilardi, G., Demarchi, S., Gullino, M. L., & Garibaldi, A. (2014). Managing Phytophthora crown and root rot on tomato by pre-plant treatments with biocontrol agents, resistance inducers, organic and mineral fertilizers under nursery conditions. Phytopathologia Mediterranea, 53, 3–10.

    Google Scholar 

  • Gómez, J., Perez, A., Serrano, Y., Aguilar, M. I., & Gómez, R. (2013). Phytophthora crown and root rot of zucchini squash in Almerìa, Spain. Plant Disease, 97, 1249.

    Article  Google Scholar 

  • Gubler, W. D., & Davis, R. M. (1996). Phytophthora Root and Crown Rot. In T. A. Zitter, D. L. Hopkins, & C. E. Thomas (Eds.), Compendium of Cucurbit Diseases (pp. 19–20). St. Paul, MN: APS Press.

    Google Scholar 

  • Hausbeck, M. K., & Lamour, K. H. (2004). Phytophthora capsici on vegetable crops: research progress and management challengers. Plant Disease, 88, 1292–1303.

    Article  Google Scholar 

  • ISTAT, 2011. http://dati.istat.it/.

  • Jackson, K. L., Yin, J., & Ji, P. (2012). Sensitivity of Phytophthora capsici on vegetable crops in Georgia to Mandipropamid, dimethomorph, and cyazofamid. Plant Disease, 96, 1337–1342.

    Article  Google Scholar 

  • Ji, P., Koné, D., Yin, J., Jackson, K. L., & Csinos, A. (2012). Soil Amendments with Brassica cover crops for management of Phytophthora blight on squash. Pest Management Science, 68, 638–644.

    Article  Google Scholar 

  • Ji, P., Yin, D., & Koné, D. (2011). Application of acibenzolar-S-methyl and standard fungicides for control of Phytophthora blight on squash. Crop Protection, 30, 1601–1605.

    Article  CAS  Google Scholar 

  • Kim, H. S., Sang, M. K., Jeun, Y.-C., Hwang, B.-K., & Kim, K. D. (2008). Sequential selection and efficacy of antagonistic rhizobacteria for controlling Phytophthora blight of pepper. Crop Protection, 27, 436–443.

    Article  Google Scholar 

  • Koné, D., Csinos, A. S., Jackson, K. L., & Ji, P. (2009). Evaluation of systemic acquired resistance inducers for the control of Phytophthora capsici on squash. Crop Protection, 28, 533–538.

    Article  Google Scholar 

  • Krasnow, C. S., Naegele, R. P., & Hausbeck, M. K. (2014). Evaluation of fruit rot resistance in cucurbita germplasm resistant to Phytophthora capsici crown rot. HortScience, 49, 285–288.

    Google Scholar 

  • Lamour, K. H., Stam, R., Jupe, J., & Huitema, E. (2012). The oomycete broad-host range pathogen Phytophthora capsici. Molecular Plant Pathology, 13, 329–337.

    Article  PubMed  Google Scholar 

  • Larkin, R. P., Ristaino, J. B., & Campbell, C. L. (1995). Detection and quantification of Phytophthora capsici in soil. Phytopathology, 85, 1057–1063.

    Article  Google Scholar 

  • Masago, H., Yoshikawa, M., Fukada, M., & Nakanishi, N. (1977). Selective inhibition of Pythium spp. on a medium for direct isolation of Phytophthora spp. from soil and plants. Phytopathology, 67, 425–428.

    Article  CAS  Google Scholar 

  • Matheron, M. E., & Porchas, M. (2002). Suppression of Phytophthora root and crown rot on pepper plants treated with acibenzolar-S-methyl. Plant Disease, 86, 292–297.

    Article  CAS  Google Scholar 

  • McDonald, A. E., Grant, B. R., & Plaxton, W. C. (2001). Phosphite (phosphorous acid): its relevance in the environment and agriculture and influence on plant phosphate starvation response. Journal Plant Nutrition, 24, 1505–1519.

    Article  CAS  Google Scholar 

  • Mersha, Z., Zhang, S., & Raid, R. N. (2012). Evaluation of systemic acquired resistance inducers for control of downy mildew on basil. Crop Protection, 40, 83–90.

    Article  CAS  Google Scholar 

  • Ozgonen, H., & Erkilic, A. (2007). Growth enhancement and Phytophthora blight (Phytophthora capsici Leonian) control by arbuscular mycorrhizal fungal inoculation in pepper. Crop Protection, 26, 1682–1688.

    Article  Google Scholar 

  • Padley, L. D., Jr., Kabelka, E. A., Roberts, P., & French, R. (2008). Evaluation of Cucurbita pepo accessions for crown rot resistance to isolates of Phytophthora capsici. HortScience, 43, 1996–1999.

    Google Scholar 

  • Romero, A. M., Kousik, C. S., Ritchie, & D. F. (2001). Resistance to bacterial spot in bell pepper induced by acibenzolar-S-methyl. Plant Diseas, 85, 189–194.

  • Sang, K. M., Chun, S.-C., & Kim, K. D. (2008). Biological control of Phytophthora blight of pepper by antagonistic rhizobacteria selected from a sequential screening procedure. Biological Control, 46, 424–433.

    Article  Google Scholar 

  • Sanogo, S., & Ji, P. (2012). Integrated management of Phytophthora capsici on solanaceous and cucurbitaceous crops: current status, gaps in knowledge and research needs. Canadian Journal of Plant Pathology, 34, 479–492.

    Article  Google Scholar 

  • Tamietti, G., & Valentino, D. (2001). Physiological characterisation of a population of Phytophthora capsici Leon. from Northern Italy. Journal of Plant Pathology, 83, 199–205.

    Google Scholar 

  • Termorshuizen, A. J., & Jeger, M. J. (2014). Assessing inoculum of soilborne plant pathogens: theory and practice in decision-making for soil disinfestation. Acta Horticolturae, 1044, 75–80.

    Google Scholar 

  • Walters, D. R., Ratsep, J., & Havis, N. D. (2013). Controlling crop diseases using induced resistance: challenges for the future. Journal of Experimental Botany, 64, 1263–1280.

    Article  CAS  PubMed  Google Scholar 

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Acknowledgements

The research leading to these results has received funding from the European Union’s Horizon 2020 research and innovation programme under grant agreement No 634179 "Effective Management of Pests and Harmful Alien Species - Integrated Solutions" (EMPHASIS).

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Correspondence to Maria Lodovica Gullino.

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Gilardi, G., Demarchi, S., Gullino, M.L. et al. Nursery treatments with non-conventional products against crown and root rot, caused by Phytophthora capsici, on zucchini. Phytoparasitica 43, 501–508 (2015). https://doi.org/10.1007/s12600-015-0461-6

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  • DOI: https://doi.org/10.1007/s12600-015-0461-6

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