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Relationships between agronomic factors and epidemics of Phytophthora branch canker of citrus in southwestern Spain

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Abstract

Phytophthora branch canker, caused by Phytophthora citrophthora, has been an increasing problem in clementine (Citrus reticulata) production in Spain during last years. The disease was particularly severe in the new citrus-growing areas of the southwestern coastal areas in Huelva Province. Recent studies revealed that disease emergence was not related to either genetic drift or host specificity changes in P. citrophthora population. Therefore, the possible association of agronomic factors with the disease was investigated. A total of 110 orchards were selected arbitrarily from the main citrus-growing areas in Huelva Province. The presence of branch cankers together with agronomic factors including soils, cultivars, rootstocks, irrigation, pruning, techniques to improve fruit production, fungicide treatments, presence of brown rot of fruit and frost damage were recorded. Logistic regression analysis was used to detect correlations between the agronomic factors studied and disease prevalence. Phytophthora branch canker was significantly associated with mature clementine orchards. Sweet orange and hybrid cultivars as well as young clementine orchards were less affected by the disease. Although disease was less frequent in Salorthid soils, alternative high resolution procedures are required to draw conclusions about the effect of soil properties on disease prevalence. As in other Phytophthora-induced diseases, soil flooding during the rainy season was correlated positively with the prevalence of branch cankers. Improving fruit production by branch scoring showed a strong positive correlation with Phytophthora branch canker. This is the first time that girdling has been associated with Phytophthora disease epidemics on a fruit tree crop, but further research is needed to determine the cause of this relationship. Cultural practices including pruning, regulated deficit irrigation, additional phosphonate sprays, and abiotic and disease factors such as frost damage and presence of brown rot of fruit were not significantly correlated with disease prevalence.

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References

  • Álvarez, L. A., Vicent, A., De la Roca, E., Bascón, J., Abad-Campos, P., Armengol, J., & García-Jiménez, J. (2008a). Branch cankers on citrus trees in Spain caused by Phytophthora citrophthora. Plant Pathology, 57, 84–91.

    Google Scholar 

  • Álvarez, L. A., Vicent, A., Soler, J. M., De la Roca, E., Bascón, J., & García-Jiménez, J. (2008b). Comparison of application methods of systemic fungicides to suppress branch cankers in Clementine trees caused by Phytophthora citrophthora. Plant Disease, 92, 1357–1363.

    Article  Google Scholar 

  • Álvarez, L. A., Gramaje, D., Abad-Campos, P., & García-Jiménez, J. (2009a). Seasonal susceptibility of citrus scions to Phytophthora citrophthora and P. nicotianae and the influence of environmental and host-linked factors on infection development. European Journal of Plant Pathology, 124, 621–635.

    Article  Google Scholar 

  • Álvarez, L. A., Gramaje, D., Abad-Campos, P., & García-Jiménez, J. (2009b). Role of the Helix aspersa snail as a vector of Phytophthora citrophthora causing branch cankers on Clementine trees in spain. Plant Pathology, 58, 956–963.

    Article  Google Scholar 

  • Álvarez, L. A., León, M., Abad-Campos, P., García-Jiménez, J., & Vicent, A. (2011). Genetic variation and host specificity of Phytophthora citrophthora isolates causing branch cankers in Clementine trees in spain. European Journal of Plant Pathology, 129, 103–117.

    Article  Google Scholar 

  • Anonymous. (1992). Atlas nacional de España. Mapa de suelos de España. Madrid: Instituto Geográfico Nacional.

    Google Scholar 

  • Anonymous (1999). Soil taxonomy. A basic system of soil classification for making and interpreting soil surveys. 2nd ed. Washington DC: Soil Survey Staff, USDA-NRCS. 871 pp.

  • Bland, J. M., & Altman, D. G. (2000). The odds ratio. British Medical Journal, 320, 1468.

    Article  PubMed  CAS  Google Scholar 

  • Bright, D. B., Graham, J. H., Irey, M. S., & Baucum, L. E. (2004). Soil, rootstock and climatic factors affect populations of Phytophthora nicotianae in south Florida citrus plantings. Proceedings of the Florida State Horticultural Society, 117, 148–151.

    Google Scholar 

  • Buol, S. W., Hole, F. D., & McCracken, R. J. (2003). Soil genesis and classification (5th ed., p. 494). Ames: Wiley-Blackwell.

    Google Scholar 

  • Cohen, S., Allasia, V., Venard, P., Notter, S., Verniere, C., & Panabieres, F. (2003). Intraspecific variation in Phytophthora citrophthora from citrus trees in eastern Corsica. European Journal of Plant Pathology, 109, 791–805.

    Article  CAS  Google Scholar 

  • De la Rosa, D., Mayol, F., Diaz-Pereira, E., Fernandez, M., & De la Rosa, D. J. (2004). A land evaluation decision support system (MicroLEIS DSS) for agricultural soil protection with special reference to the Mediterranean region. Environmental Modelling and Software, 19, 929–942.

    Article  Google Scholar 

  • Del Rivero, J. M., Veyrat, P., & Gomez de Barreda, D. (1969). Improving fruit set in clementine mandarin with chemical treatments in Spain. In Proceedings of the First International Citrus Symposium. Berkeley and Los Angeles, 1969 (pp. 1121–1123). University of California Press.

  • Elhamalawi, Z. A., & Menge, J. A. (1995). Seasonal fluctuations in the extent of colonization of avocado plants by the stem canker pathogen Phytophthora citricola. Journal of the American Society for Horticultural Science, 120, 157–162.

    Google Scholar 

  • Erwin, D. C., & Ribeiro, O. K. (1996). Phytophthora diseases worldwide (p. 592). St. Paul, MN: APS Press, Inc.

    Google Scholar 

  • Fabre, B., Piou, D., Desprez-Loustau, M. L., & Marcais, B. (2011). Can the emergence of pine Diplodia shoot blight in France be explained by changes in pathogen pressure linked to climate change? Global Change Biology, 17, 3218–3227.

    Article  Google Scholar 

  • Fawcett, H. S. (1936). Citrus diseases and their control (2nd ed., p. 656). New York: McGraw-Hill Book Company, Inc.

    Google Scholar 

  • Fussler, L., Kobes, N., Bertrand, F., Maumy, M., Grosman, J., & Savary, S. (2008). A characterization of grapevine trunk diseases in France from the National Grapevine Wood Diseases Survey. Phytopathology, 98, 571–579.

    Article  PubMed  CAS  Google Scholar 

  • Goren, R., Huberman, M., & Goldschmidt, E. E. (2003). Girdling: physiological and horticultural aspects. Horticultural Reviews, 30, 1–36.

    Google Scholar 

  • Graham, J. H., & Menge, J. A. (1999). Root diseases. In L. W. Timmer & L. W. Duncan (Eds.), Citrus health management (pp. 126–135). St. Paul, MN: APS Press, Inc.

    Google Scholar 

  • Graham, J. H., Timmer, L. W., Drouillard, D. L., & Peever, T. L. (1998). Characterization of Phytophthora spp. causing outbreaks of citrus brown rot in Florida. Phytopathology, 88, 724–729.

    Article  PubMed  CAS  Google Scholar 

  • Ippolito, A., Nigro, F., Lima, G., & Salerno, M. (1994). Phytophthora gummosis and root rot of citrus as influenced by girdling. In Proceedings of the Ninth Congress of the Mediterranean Phytopathological Union. Kusadasi, 1994 (pp. 109–111). MPU and Turkish Phytopathological Society.

  • Jeffers, S. N., & Martin, S. B. (1986). Comparison of two media selective for Phytophthora and Pythium species. Plant Disease, 70, 1038–1043.

    Article  Google Scholar 

  • Mila, A. L., Carriquiry, A. L., & Yang, X. B. (2004). Logistic regression modeling of prevalence of soybean Sclerotinia stem rot in the northcentral region of the United States. Phytopathology, 94, 102–110.

    Article  PubMed  CAS  Google Scholar 

  • Palti, J. (1981). Cultural practices and infectious crop diseases (p. 242). Berlin: Springer.

    Book  Google Scholar 

  • Patzold, S., Mertens, F. M., Bornemann, L., Koleczek, B., Franke, J., Feilhauer, H., & Welp, G. (2008). Soil heterogeneity at the field scale: A challenge for precision crop protection. Precision Agriculture, 9, 367–390.

    Article  Google Scholar 

  • R Development Core Team (2008) R: a language and environment for statistical computing. Vienna: R Foundation for Statistical Computing. Available at http://www.R-project.org.

  • Schutte, G. C., & Botha, W. J. (2010). Phytophthora citrophthora trunk and branch canker on Clementine mandarins in the Western Cape province of South Africa. South African Journal of Plant and Soil, 27, 215–220.

    Google Scholar 

  • Thébaud, G., Sauvion, N., Chadoeuf, J., Dufils, A., & Labonne, G. (2006). Identifying risk factors for European stone fruit yellows from a survey. Phytopathology, 96, 890–899.

    Article  PubMed  Google Scholar 

  • Tuset, J. J. (1987). Podredumbres de los frutos cítricos. Valencia: Generalitat Valenciana, Consellería d’Agricultura i Pesca. 206 pp.

  • Verniere, C., Cohen, S., Raffanel, B., Dubois, A., Venard, P., & Panabieres, F. (2004). Variability in pathogenicity among Phytophthora spp. isolated from citrus in Corsica. Journal of Phytopathology, 152, 476–483.

    Article  Google Scholar 

  • White, T. J., Bruns, T., Lee, S., & Taylor, J. W. (1990). Amplification and direct sequencing of fungal ribosomal RNA genes for phylogenetic. In M. A. Innis, D. H. Gelfand, J. J. Sninsky, & T. J. White (Eds.), PCR Protocols, A guide to methods and applications (pp. 315–322). San Diego: Academic.

    Google Scholar 

  • Zadoks, J. C., & Schein, R. D. (1979). Epidemiology and plant disease management (p. 427). New York: Oxford University Press.

    Google Scholar 

  • Zewdea, T., Fininsaa, C., Sakhujaa, P. K., & Ahmed, S. (2007). Association of white rot (Sclerotium cepivorum) of garlic with environmental factors and cultural practices in the North Shewa highlands of Ethiopia. Crop Protection, 26, 1566–1573.

    Article  Google Scholar 

Download references

Acknowledgments

This research was partially funded by Asociación de Citricultores de la Provincia de Huelva. We thank M.M. Dewdney (CREC-IFAS, University of Florida), C. Mesejo (IAM, Universidad Politécnica de Valencia), and two anonymous reviewers for their valuable comments.

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Correspondence to Antonio Vicent.

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Vicent, A., Botella-Rocamora, P., López-Quílez, A. et al. Relationships between agronomic factors and epidemics of Phytophthora branch canker of citrus in southwestern Spain. Eur J Plant Pathol 133, 577–584 (2012). https://doi.org/10.1007/s10658-011-9930-z

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  • DOI: https://doi.org/10.1007/s10658-011-9930-z

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