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Biomineralogical investigation of late-harvest grapes colonised by Botrytis cinerea Pers. Cover

Biomineralogical investigation of late-harvest grapes colonised by Botrytis cinerea Pers.

Open Access
|Oct 2020

References

  1. Bertoldi, D., Larcher, R., Bertamini, M., Otto, S., Concheri, G., and Nicolini, G. (2011). Acumulation and distribution pattern of macro- and microelements and trace elements in Vitis vinifera cv. Chardonnay berries. Journal of Agricultural and Food Chemistry, 59(13), 7224–7236.
  2. Bindon, K., Varela, C., Kennedy, J., Holt, H., and Herderich, M. (2013). Relationships between harvest time and wine composition. Vitis vinifera cv. Cabernet Sauvignon grapes. Grape and wine chemistry. Food Chemistry, 138(2), 1696–1705.
  3. Blanco-Ulate, B., Amrine, K. C., Collins, T. S., Rivero, R. M., Vincente, A. R., Morales-Cruz, A., Doyle, C. L., Ye, Z., Allen, G., Heymann, H., Ebeler, S. E., and Cantu, D. (2015). Developmental and metabolic plasticity of white-skinned grape berries in response to Botrytis cinerea during noble rot. Plant Physiology, 169, 2422–2443.
  4. Butzke, C. E., and Boulton, B. E. (1997). Acidity, pH and potassium for grape growers. Practical Winery and Vineyard, 18, 10–16.
  5. Carabajal-Ida, D., Maury, C., Salas, E., Siret, R., and Mehinagic, E. (2016). Physico-chemical properties of botrytised Chenin blanc grapes to assess the extent of noble rot. European Food Research and Technology, 242, 117–126.
  6. Cozzolino, D. (2015). Elemental composition in grapes and wine. In M. de la Guardia and S. Garrigues (Eds), Handbook of mineral elements in Food (pp. 473–487). Chichester, UK: John Wiley & Sons, Ltd.
  7. Deytieux-Belleau, C., Geny, L., Roudet, J., Doneche, B., and Fermaud, M. (2009). Grape berry skin features related to ontogenic resistance to Botrytis cinerea. European Journal of Plant Pathology, 125, 551–563.
  8. Fournier, E., Gladieux, P., and Giraud, T. (2013). The “Dr Jekyll and MR Hyde fungus”: Noble rot versus gray mold symptoms of Botrytis cinerea on grapes. Evolutionary Applications, 6(6), 960–969.
  9. Gąstoł, M. (2015). Vineyard performance and fruit quality of some interspecific grapevine cultivars in cool climate conditions. Folia Horticulturae, 27(1), 21–31.
  10. Gubler, W. D., Hashim, J. M., Smilanick, J. L., and Leavitt, G. M. (2013). Gray mold (Botrytis cinerea). Grape Pest Management UCANR, 3343, 133–136.
  11. Hegyi-Kalo, J., Holb, J., Lengyel, S., Juhasz, A., and Vaczy, K. Z. (2019). Effect of year, sampling month and grape cultivar on noble rot incidence, mycelial growth rate and morphological type of Botrytis cinerea during noble rot development. European Journal of Plant Pathology, 155(1), 339–348.
  12. Izajasz-Parchańska, M., Cioch, M., and Tuszyński, T. (2014). Monitoring parametrów dojrzałości technologicznej winogron na terenie małopolskiej Winnicy Srebrna Góra, w sezonie wegetacyjnym 2012. [Monitoring parameters of technological maturity of grapes in malopolska Silver Mountain Vineyard in the growing season 2012] Acta Agrophysica, 21(3), 263–278.
  13. Keller, M. (2010). The science of grapevines. Anatomy and physiology. Burlington, VT: Academic Press.
  14. Kopeć, B. (2009). Uwarunkowania termiczne wegetacji winorośli na obszarze południowo-wschodniej Polski. [Thermal conditions of grapes vegetation in south-eastern Poland]. Infrastruktura i Ekologia Terenów Wiejskich, 4, 251–262.
  15. Kuhn, N., Guan, L., Dai, Z. W., Wu, B. H., Laubergeat, V., Gormes, E., Li, S. H., Godoy, F., Arce-Johnson, P., and Delrot, S. (2014). Berry ripening: Recently heard through the grapevine. Journal of Experimental Botany, 65(16), 4543–4559.
  16. Lorenzini, M., Azzolini, M., Tosi, E., and Zapparoli, G. (2012). Postharvest grape infection of Botrytis cinerea and its interactions with other moulds under withering conditions to produce noble-rotten grapes. Journal of Applied Microbiology, 114, 762–770.
  17. Magyar, I., and Benz, Z. (2006). Morphological and taxonomic study on mycobionte of noble rotted grapes in the Tokaji wine district. Acta Alimentaria, 35, 237–246.
  18. Miele, A., Rizzon, L. A., Queiroz, S. C., and Gianello, C. (2015). Physicochemical composition, minerals, and pesticide residues in organic grape juices. Food Science and Technology (Campinas), 35(1), 120–126.
  19. Negri, S., Lovato, A., Boscaini, F., Salvetti, E., Toriani, S., Commisso, M., Danzi, R., Ugliano, M., Polverari, A., Tornieli, G., and Guzzo, F. (2017). The induction of noble rot (Botrytis cinerea) infection during postharvest withering changes the metabolome of grapevine berries (Vitis vinifera L., cv. Garganega). Frontiers in Plant Science, 8, 1002, doi: 10.3389/fpls.2017.01002.
  20. Orduna, R. M. (2010). Climate change associated effects on grape and wine quality and production. Food Research International, 43(7), 1844–1855.
  21. Pachnowska, K., and Ochmian, I. (2018). Cane pruning intensity of vine as a substantial factor influencing physico-chemical attributes of berries cultivar ‘Regent’. Folia Pomeranae Universitatis Technologiae Stetinensis, Agricultura, Alimentaria, Piscaria et Zootechnica, 343(47)3, 43–54.
  22. Pereira, G. E., Gandillere, J. P., Pieri, P., Hilbert, G., Mancurt, M., Deborade, C., Moing, A., and Rolin, D. (2006). Microclimate influence on mineral and metabolic profiles of grape berries. Journal of Agricultural and Food Chemistry, 54(18), 6765–6775.
  23. Rogiers, S. Y., Coetzee, Z. A., Walker, R. R., Deloire, A., and Tyerman, S. D. (2017). Potassium in the grape (Vitis vinifera) berry: Transport and function. Frontiers in Plant Science, 8, 1629, doi: 10.3389/fpls.2017.01629.
  24. Santos, A. O., Wample, R. J., Sachidhanatham, S., and Kaye, O. (2012). Grape quality mapping for vinegard differential harvesting. Brazilian Archives of Biology and Technology, 55(2), 193–204.
  25. Schulz, H. R., and Jones, G. V. (2010). Climate induced historic and future changes in viticulture. Journal of Wine Research, 21, 137–145.
  26. Simonato, B., Lorenzini, M., Capriani, M., Finato, F., and Zapparoli, G. (2019). Correlating noble rot infection of Garganega withered grapes with key molecules and odorants of botrytised passito wine. Foods, 8(12), 642.
  27. Sluys, S. L. (2006). Climatic influences on the grapevine: A study of viticulture in the Waipara Basin. Christchurch, New Zealand: University of Canterbury.
  28. Tarko, T., Duda-Chodak, A., Sroka, P., Satora, P., and Jurasz, E. (2008). Physicochemical and antioxidant properties of selected Polish grape and fruit wines. Acta Scientiarum Polonorum, Hortorum Cultus, 7(3), 35–45.
  29. Vail, M., and Marios, J. (1991). Grape cluster architecture and the susceptibility of berries to Botrytis cinerea. Phytopathology, 81, 188–191.
DOI: https://doi.org/10.2478/fhort-2020-0016 | Journal eISSN: 2083-5965 | Journal ISSN: 0867-1761
Language: English
Page range: 171 - 178
Submitted on: Mar 10, 2020
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Accepted on: Aug 14, 2020
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Published on: Oct 17, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 2 issues per year

© 2020 Marek Grabowski, Maciej Pawlikowski, published by Polish Society for Horticultural Sciences (PSHS)
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.