MULTI-ELEMENT COMPOSITION OF RED AND WHITE WINES FROM BUJORU, SMULTI AND OANCEA WINE CENTER, ROMANIA
DOI:
https://doi.org/10.24193/subbchem.2018.4.09Keywords:
Dealu Bujorului vineyard, elemental composition, geographical traceability, wineAbstract
The ICP-MS technique was used to determine elemental composition (Pb, Sr, Cd, Ni, Co, Cu, Ni, Hg, As, Cr and Mn) of wines (Muscat Ottonel, Fetească Albă, Fetească Regală, Fetească Neagră, Merlot and Cabernet Sauvignon) wines produced in 2015, 2016 and 2017 from Bujoru, Smulti and Oancea wine-growing centers from Dealu Bujorului Vineyard. For all tested wine samples, the toxic metals contents were found in quantities below the limits established by legislation. The average data shows that the red wines contain highest concentration of Cd (0.17 µg/L), while the content of Cd in white wines are 0.11 µg/L. The concentration of U was 0.25 µg/L in red wines and 0.24 µg/L in white wines, while the concentration of Hg was 0.24 µg/L in red wines and 0.20 µg/L in white wines. The mean contents of Ni, Cr and Mn were 312.32 µg/L, 526.19±2.63 µg/L and 0.59±0.08mg/L, respectively. The concentration for Cu ranged from 0.45±0.10 mg/L to 0.90±0.04 mg/L, the last value being close to the law limit (1 mg/L). The four samples [Merlot 0.82±0.07 mg/L Bujoru wine-growing center (2015), Feteasca Alba 0.83±0.05 mg/L Smulti wine-growing center (2015), Merlot 0.83±0.05 mg/L Smulti wine-growing center (2015) and Cabernet Sauvignon 0.83±0.08 mg/L Oancea wine-growing center (2015)] showed relatively high concentration of Cu. Reporting the obtained results [Cd average 0.13±0.02 µg/L (0.1mg/kg M.L.A. = Maximum Limit Allowed) Pb average 40.64±1.85 µg/L (0.15 mg/kg M.A.L); As average 11.87±1.37 µg/L (0.2 mg/kg M.A.L); Cu average 0.67±0.09 mg/L (1 mg/kg M.A.L) to national and international legislation we can say that the wine from Dealu Bujorului vineyard falls within the limits set by the law. The content of potentially toxic elements such as Cd, Pb, U, Hg, As, Cu, Ni, Cr and Mn are lower than values found in literature, highlighting the safety and quality of the analyzed Romanian wines.
References
D. M. A. M. Luykx, S. M. Van Rush, Food Chemistry, 2008, 107, 897.
C. M. R. Almeida, M. T. S. D. Vasconcelors, Journal of Agricultural and Food Chemistry, 2003, 51, 4788.
M. Álvarez, J. M. Moreno, A. M. Jos, A. M. Cameán, G. González, Journal of Food Composition and Analysis, 2007, 20, 391.
R. D. Di Paola-Naranjo, M. V. Baroni, N. S. Podio, H. R. Rubinstein, M. P. Fabani, R. G. Badini, M. Inga, H. A. Ostera, M. Cagnoni, E. Gallegos, E. Gautier, P. Peral-Garcia, J. Hoogewerff, D. A. Wunderlin, Journal of Agricultural and Food Chemistry, 2011, 59(14), 7854.
I. S. Arvanitoyannis, M. N. Katsota, E. P. Psarra, E. H. Souflerous, S. Kallithraka, Trends in Food Science and Technology, 1999, 10, 321.
J. D. Greenough, H. P. Longerich, S. E. Jackson, Australian Journal of Grape and Wine Research, 1997, 3, 75.
M. M. Castiñeira-Gomez, R. Brant, N. Jakubowski, J. T. Andersson, Journal of Agricultural and Food Chemistry, 2004, 52, 2953.
M. Fabani, M. Toro, F. Vazquez, M. P. Díaz, D. A. Wunderlin, Journal of Agricultural and Food Chemistry, 2009, 57, 7409.
F. Galgano, F. Favati, M. Caruso, T. Scarpa, A. Palma, LWT-Food Science and Technology, 2008, 41, 1808.
P. Kment, M. Mihaljevic, V. Ettler, O. Šebek, L. Strnad, L. Rohlavá, Food Chemistry, 2005, 91, 157.
R. Larcher, G. Nicolini, P. Pangrazzi, Journal of Agricultural and Food Chemistry, 2003, 51(20), 5956.
V. Ivanova-Petropulos, H. Wiltsche, T. Stafilov, M. Stefova, H. Motter, E. Lankmayr, Macedonian Journal of Chemistry and Chemical Engineering, 2013, 32(2), 265.
S. Đurđic, M. Pantelic, J. Trifkovic, V. Vukojevic, M. Natic, ˇZ. Tesica, J. Mutic, RSC Advanced, 2017, 7, 2151.
V. Ivanova-Petropulos, B. Balavanova, S. Mitrev, D. Nedelkovski, V. Dimovska, R. Gulaboski, Food Analytical Methods, 2016, 9(1), 48.
V. Avram, C. Voica, A. Hosu, C. Cimpoiu, C. Măruțoiu, Revue Roumaine de Chimie, 2014, 59(11-12), 1009.
F. Galgano, F. Favati, M. Caruso, T. Scarpa, A. Palma, LWT-Food Science and Technology, 2008, 41, 1808.
D. Karataș, F. Aydin, I. Aydin, H. Karataș, Czech Journal of Food Sciences, 2015, 33(3), 228.
E. I. Geana, A. Marinescu, A. M. Iordache, C. Sandru, R. E. Ionete, C. Bala, Food Analytical Methods, 2014, 48(2), 2064.
D. Schiavo, I.Y. Neira, I.A. Nóbrega, Talanta, 2008, 76, 1113.
Z. Ajtony, N. Szoboszlai, E.K. Suskó, P. Mezei, K. György, L. Bencs, Talanta, 2008, 76, 627.
G. Dugo, L. La Pera, T.M Pellicanó, G. Di Bella, M. D'Imperio, Food Chemistry, 2005, 91, 355.
S. Galani-Nikolakaki, N. Kallithrakas-Kontos, A.A. Katsanos, Science of the Total Environment, 2002, 285, 155.
G. Thiel, G. Geisler, I. Blechschmidt, K. Danzer, Analytical and Bioanalytical Chemistry, 2004, 378, 1630.
I. Geana, A. Iordache, R. Ionete, A. Marinescu, A. Ranca, M. Culea, Food Chemistry, 2013, 138, 1125.
OIV, International Code of Oenological Practices, Annex: Maximum Acceptable Limits, 2015, Issue 2015/01. Paris, France.
F. D. Bora, A. Donici, T. Rusu, A. Bunea, D. Popescu, C. I. Bunea, Notulae Botanicae Horti Agrobotanici Cluj-Napoca, 2018, 46(1), 223.
E.I. Geana, C. Sandru, V. Stanciu, R.E. Ionete, Food Analytical Methods, 2017, 10(1), 63.
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