Plant Soil Environ., 2022, 68(9):415-423 | DOI: 10.17221/22/2022-PSE
Grapevine leaf ionome is shaped by soil factors and plant ageOriginal Paper
- 1 Department of Biology, Biotechnical Faculty, University of Ljubljana, Ljubljana, Slovenia
- 2 Department of Agronomy, Biotechnical Faculty, University of Ljubljana, Ljubljana, Slovenia
- 3 Department of Animal Science, Biotechnical Faculty, University of Ljubljana, Ljubljana, Slovenia
The concept of terroir relates the sensory attributes of wines attributable to the environmental conditions of the grapevines, and therefore it represents an important descriptor of the connection between wines and their origins. In ongoing efforts to improve the monitoring and geochemical fingerprinting of grapevine products, knowledge of the variability of grapevine elemental compositions, and factors that have strong influences on this, can significantly improve the traceability of wines to their origins. Here, we demonstrate a strong connection of grapevine elemental composition to the micro-location of the individual vineyard, with an important contribution from the biotic soil factors. The differences in measured leaf elements appear to be more closely connected to the grapevine age than to the viticultural practice (biological vs. conventional). Soil microbial communities have a substantial impact on grapevine leaf elements, with differences seen between fungi and bacteria. Bacteria appear to be more closely related to the environment in vineyards than fungi, with changes in their interplay reflected in the elemental composition of the grapevines. Nevertheless, both microbial groups explain 15% to 17% of the variation in the grapevine leaf elements, making the soil fungal and bacterial communities critical factors in the terroir concept.
Keywords: Vitis vinifera L.; copper; biotic factor; mycorrhizal fungi; nutrient
Published: September 15, 2022 Show citation
References
- Alef K., Nannipieri P. (1995): Methods in Applied Soil Microbiology and Biochemistry. San Diego, Academic Press. ISBN: 978-012-513840-6
- Bao L.J., Sun B., Wei Y.X., Xu N., Zhang S.W., Gu L.K., Bai Z.H. (2022): Grape cultivar features differentiate the grape rhizosphere microbiota. Plants, 11: 1111.
Go to original source...
Go to PubMed...
- Brataševec K., Sivilotti P.A.G., Mozeti Vodopivec B. (2013): Soil and foliar fertilization affects mineral contents in Vitis vinifera L. Cv. 'Rebula' leaves. Journal of Soil Science and Plant Nutrition, 13: 650-663.
- Brunetto G., Wellington Bastos de Melo G., Terzano R., Del Buono D., Astolfi S., Tomasi N., Pii Y., Mimmo T., Cesco S. (2016): Copper accumulation in vineyard soils: rhizosphere processes and agronomic practices to limit its toxicity. Chemosphere, 162: 293-307.
Go to original source...
Go to PubMed...
- Canfora L., Vendramin E., Felici B., Tarricone L., Florino A., Benedetti A. (2018): Vineyard microbiome variations during different fertilisation practices revealed by 16s rRNA gene sequencing. Applied Soil Ecology, 125: 71-80.
Go to original source...
- Clarkson D.T. (1984): Calcium transport between tissues and its distribution in the plant. Plant, Cell and Environment, 7: 449-456.
Go to original source...
- Čoga L., Slunjski S., Ćustić M., Gunjača J., Ćosić T. (2008): Phosphorous Dynamics in Grapevine on Acid and Calcareous Soils. Stara Lesna, Alps-Adria Scientific Workshop.
- Drake M., Bramlage W.J., Baker J.H. (1979): Effects of foliar calcium on McIntosh apple storage disorders. Communications in Soil Science and Plant Analysis, 10: 303-309.
Go to original source...
- FAO (1974): Soil Map of the World. Volumes 1-10. Paris, Food and Agriculture Organisation of the United Nations and UNESCO.
- FAO (1988): Soil Map of the World: Revised Legend. Rome, Food and Agriculture Organisation of the United Nations, 119.
- Hirschfelt D.J., Christensen L.P., Peacock W.L., Bianchi M.L. (1992): The effects of vineyard floor management on vine growth, production and quality. Vol 19. Report of Research for Fresh Table Grapes. Fresno, California Table Grape Commission.
- Humphries J., Stangoulis J., Graham R. (2007): Manganese. In: Barker A.V., Pilbeam D.J. (eds.): Handbook of Plant Nutrition. New York, Taylor Francis, 411-436. ISBN: 978-1-4398-8198-9
- Kandeler E. (1995): Organic matter by wet combustion. In: Schinner F., Öhlinger R., Kandeler E., Margesin R. (eds.): Methods in Soil Biology. Berlin, Springer, 397-398. ISBN: 978-3-642-60966-4
- Keller M. (2005): Deficit irrigation and vine mineral nutrition. American Journal of Enology and Viticulture, 56: 267-283.
Go to original source...
- Lewis R.W., LeTourneau M.K., Davenport J.R., Sullivan T.S. (2018): 'Concord' grapevine nutritional status and chlorosis rank associated with fungal and bacterial root zone microbiomes. Plant Physiology and Biochemistry, 129: 429-436.
Go to original source...
Go to PubMed...
- Likar M., Grašič M., Stres B., Regvar M., Gaberščik A. (2022): Original leaf colonisers shape fungal decomposer communities of Phragmites australis in intermittent habitats. Journal of Fungi, 8: 284.
Go to original source...
Go to PubMed...
- Likar M., Stres B., Rusjan D., Potisek M., Regvar M. (2017): Ecological and conventional viticulture gives rise to distinct fungal and bacterial microbial communities in vineyard soils. Applied Soil Ecology, 113: 86-95.
Go to original source...
- Likar M., Vogel-Mikuš K., Potisek M., Hančević K., Radić T., Nečemer M., Regvar M. (2015): Importance of soil and vineyard management in the determination of grapevine mineral composition. Science of The Total Environment, 505: 724-731.
Go to original source...
Go to PubMed...
- Mulidzi A.R., Clarke C.E., Myburgh P.A. (2019): Response of soil chemical properties to irrigation with winery wastewater on a well-drained sandy soil. South African Journal of Enology and Viticulture, 40: 1.
Go to original source...
- Muñoz-Leoz B., Garbisu C., Antigüedad I., Ruiz-Romera E. (2012): Fertilization can modify the non-target effects of pesticides on soil microbial communities. Soil Biology and Biochemistry, 48: 125-134.
Go to original source...
- Nečemer M., Kump P., Ščančar J., Jaćimović R., Simčič J., Pelicon P., Budnar M., Jeran Z., Pongrac P., Regvar M., Vogel-Mikuš K. (2008): Application of X-ray fluorescence analytical techniques in phytoremediation and plant biology studies. Spectrochimica Acta Part B: Atomic Spectroscopy, 63: 1240-1247.
Go to original source...
- OIV (2010): Resolution OIV/VITI 333/2010. Definition of vitivinicultural "terroir". Paris, International Organisation of Vine and Wine. Available at: https://www.oiv.int/public/medias/379/viti2010-1-en.pdf
- Olsen S., Sommers L. (1982): Phosphorus. In: Page A.L., Miller R.H., Keeney D.R. (eds.): Methods of Soil Analysis, Part 2. Madison, American Society of Agronomy, 403-430. ISBN: 978-0-89118865-0
Go to original source...
- Radić T., Likar M., Hančević K., Bogdanović I., Pasković I. (2014): Occurrence of root endophytic fungi in organic versus conventional vineyards on the Croatian coast. Agriculture, Ecosystems and Environment, 192: 115-121.
Go to original source...
- Roivainen P., Makkonen S., Holopainen T., Juutilainen J. (2012): Element interactions and soil properties affecting the soil-to-plant transfer of six elements relevant to radioactive waste in boreal forest. Radiatiation and Environmental Biophysics, 51: 69-78.
Go to original source...
Go to PubMed...
- Rorison I.H., Robinson D. (1984): Calcium as an environmental variable. Plant, Cell and Environment, 7: 381-390.
Go to original source...
- Rusjan D., Strlič M., Pucko D., Šelih V.S., Korošec-Koruza Z. (2006): Vineyard soil characteristics related to content of transition metals in a sub-Mediterranean winegrowing region of Slovenia. Geoderma, 136: 930-936.
Go to original source...
- Trouvelot S., Bonneau L., Redecker D., van Tuinen D., Adrian M., Wipf D. (2015): Arbuscular mycorrhiza symbiosis in viticulture: a review. Agronomy for Sustainable Development, 35: 1449-1467.
Go to original source...
- Vogel-Mikuš K., Arčon I., Kodre A. (2010): Complexation of cadmium in seeds and vegetative tissues of the cadmium hyperaccumulator Thlaspi praecox as studied by X-ray absorption spectroscopy. Plant and Soil, 331: 439-451.
Go to original source...
- Watts-Williams S.J., Andrew Smith F., McLaughlin M.J., Patti A.F., Cavagnaro T.R. (2015): How important is the mycorrhizal pathway for plant Zn uptake? Plant and Soil, 390: 157-166.
Go to original source...
- Wooldridge J., Louw P.J.E., Conradie W.J. (2010): Effects of rootstock on grapevine performance, petiole and must composition, and overall wine score of Vitis vinifera cv. Chardonnay and Pinot Noir. South African Journal of Enology and Viticulture, 31: 45-48.
Go to original source...
- Yamamoto K., Hashimoto Y., Kang J., Kobayashi K. (2018): Speciation of phosphorus zinc and copper in soil and water-dispersible colloid affected by a long-term application of swine manure compost. Environment Science and Technology, 52: 13270-13278.
Go to original source...
Go to PubMed...
This is an open access article distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 International (CC BY NC 4.0), which permits non-comercial use, distribution, and reproduction in any medium, provided the original publication is properly cited. No use, distribution or reproduction is permitted which does not comply with these terms.