Cite

Agostini L.R., Jimenez M.J.M., Ramon A.N., Gomez A.A., 2004. Determination of the antioxidant capacity of flavonoids in fruits and fresh and thermally treated vegetables. Arch. Latinoam. Nutr. 54: 89-92.Search in Google Scholar

Alasalvar C., Grigor J.M., Zhang D.L., Quantick P.C., Shahidi F., 2001. Comparison of volatiles, phenolics, sugars, antioxidant vitamins, and sensory quality of different colored carrot varieties. J. Agr. Food Chem. 49(3): 1410-1416.10.1021/jf000595hSearch in Google Scholar

Arscott S.A., Tanumihardj o S.A., 2010. Carrots of many colors provide basic nutrition and bioavailable phytochemicals acting as a functional food. Compr. Rev. Food Sci. Food Saf. 9: 223-239.10.1111/j.1541-4337.2009.00103.xSearch in Google Scholar

Ashworth D.J., Shaw G., 2006a. A comparison of the soil migration and plant uptake of radioactive chlorine and iodine from contaminated groundwater. J. Environ. Radioact. 89: 61-80.10.1016/j.jenvrad.2006.03.006Search in Google Scholar

Ashworth D.J., Shaw G., 2006b. Effects of moisture content and redox potential on in situ Kd values for radioiodine in soil. Sci. Total Environ. 359: 244-254.10.1016/j.scitotenv.2005.04.018Search in Google Scholar

Ashworth D.J., Shaw G., Butler A.P., Ciciani L., 2003. Soil transport and plant uptake of radio-iodine from near-surface groundwater. J. Environ. Radioact. 70: 99-114.10.1016/S0265-931X(03)00121-8Search in Google Scholar

Blasco B., Rios J.J., Cervilla L.M., Sánchez-Rodrigez E., Ruiz J.M., Romero L., 2008. Iodine biofortification and antioxidant capacity of lettuce: potential benefits for cultivation and human health. Ann Appl. Biol. 152: 289-299.10.1111/j.1744-7348.2008.00217.xSearch in Google Scholar

Cerretani L., Comandini P., Fumanelli D., Scazzina F., Chiavaro E., 2014. Evaluation of iodine content and stability in recipes prepared with biofortified potatoes. Int. J. Food Sci. Nutr. 65(7): 797-802.10.3109/09637486.2014.91715524828007Search in Google Scholar

Comandini P., Cerretani L., Rinaldi M., Cichelli A., Chiavaro E., 2013. Stability of iodine during cooking: investigation on biofortified and not fortified vegetables. Int. J. Food Sci. Nutr. 64(7): 857-861.10.3109/09637486.2013.79827023701028Search in Google Scholar

Dewanto V., Wu X., Adom K.K., Liu R.H., 2002. Thermal processing enhances the nutritional value of tomatoes by increasing total antioxidant activity. J. Agric. Food Chem. 50(10): 3010-3014.10.1021/jf011558911982434Search in Google Scholar

Dos Reis L.C., de Oliveira V.R., Hagen M.E., Jabloński A., Flôres S.H., de Oliveira Rios A., 2015. Effect of cooking on the concentration of bioactive compounds in broccoli (Brassica oleracea var. Avenger) and cauliflower (Brassica oleracea var. Alphina F1) grown in an organic system. Food Chem. 172: 770-777.10.1016/j.foodchem.2014.09.12425442619Search in Google Scholar

Faller A.L.K., Fialho E., 2009. The antioxidant capacity and polyphenol content of organic and conventional retail vegetables after domestic cooking. Food Res. Inter. 42: 210-215.10.1016/j.foodres.2008.10.009Search in Google Scholar

Gamboa-Santos J., Soria A.C., Pérez-Mateos M., Carra sco J.A., Montilla A., Villa miel M., 2013. Vitamin C content and sensorial properties of dehydrated carrots blanched conventionally or by ultrasound. Food Chem. 136(2): 782-788.10.1016/j.foodchem.2012.07.122Search in Google Scholar

Gębczyński P., 2008. Changes in the content of antioxidant compounds in frozen vegetables depending on the pretreatment conditions of storage and method of preparation for consumption. Scientific Papers of the Krakow Academy of Agricultural.Search in Google Scholar

Grajek W., 2007. Antioxidants in Food. Health Aspects, Technological, and Molecular Analysis. WNT, Warszawa, Poland.Search in Google Scholar

Hazzani I., 1998. Influence of locality and way of cultivation on the nitrate and glycoalkaloid content in potato tubers. Rost. Vyroba. 45(11): 495-501.Search in Google Scholar

He F.J., Macgregor G.A., 2009. A comprehensive Review on salt and health and current experience of worldwide salt reduction programmes. J. Hum. Hypertens. 23: 363-384.10.1038/jhh.2008.144Search in Google Scholar

Jiménez-Monreal A.M., García-Diz L., Martínez-Tomé M., Mariscal M., Murcia M.A., 2009. Influence of cooking methods on antioxidant activity of vegetables. J. Food Sci. 74(3): 97-103.10.1111/j.1750-3841.2009.01091.xSearch in Google Scholar

Johanson K.J., 2000. Iodine in soil. Technical Report TR-00-21. Svensk Kärnbränslehantering AB. http://193.235.25.3/upload/publications/pdf/TR-00-21.pdf - version 22-01-2015.Search in Google Scholar

Kabata-Pendias A., 2011. Trace Elements in Soil and Plants. CRC Press: Taylor and Francis Group, Boca Raton, FL, USA.10.1201/b10158Search in Google Scholar

Kao F.J., Chiu Y.S., Chiang W.D., 2014. Effect of water cooking on antioxidant capacity of carotenoid-rich egetables in Taiwan. J. Food Drug Anal. 22(2): 202-209.10.1016/j.jfda.2013.09.010Search in Google Scholar

Kazeem M.I., Davies T.C., 2016. Anti-diabetic functional oods as sources of insulin secreting, insulin sensitizing and insulin mimetic agents. J. Funct. Foods 18: 122-138.10.1016/j.jff.2015.10.013Search in Google Scholar

Kiferle C., Gonzali S., Holwerda H.T., Real Ibaceta R., Perata P., 2013. Tomato fruits: a good target for iodine biofortification. Front. Plant Sci. 4: 205.10.3389/fpls.2013.00205Search in Google Scholar

Manzocco L., Calligaris S., Masrrocola D., Nicoli K.C., Lerici C.R., 2001. Review on non-enzymatic browning and antioxidant capacity in processed foods. Trends Food Sci. Technol. 11: 340-346.10.1016/S0924-2244(01)00014-0Search in Google Scholar

Mayer-Miebach E., Behsnilian D., Regier M., Schucgmann H.P., 2005. Thermal processing of carrots: Lycopene stability and isomerisation with regard to antioxidant potential. Food Res. Int. 38: 1103-1108.10.1016/j.foodres.2005.03.018Search in Google Scholar

Mazzeo T., N’dri D., Chiavaro E., Visconti A., Fogliano V., Pellegrini N., 2011. Effect of two cooking procedures on phytochemical compounds, total antioxidant capacity and colour of selected frozen vegetables. Food Chem. 128(3): 627-633.10.1016/j.foodchem.2011.03.070Search in Google Scholar

Meyer A., Hainonen M., Frenkell E., 1998. Antioxidant interactions of catechin, cyaniding, cafeic acid on human LDL oxidation. Food Chem. 61: 71-75.10.1016/S0308-8146(97)00100-3Search in Google Scholar

Miglio C., Chiavar o E., Visconti A., Fogliano V., Pellegrini N., 2008. Effects of different cooking methods on nutritional and physicochemical characteristics of selected vegetables. J. Agr. Food Chem. 56(1): 139-147.10.1021/jf072304bSearch in Google Scholar

Murador D.C., da Cunha D.T., de Rosso V.V., 2014. Effects of cooking techniques on vegetable pigments: A meta-analytic approach to carotenoid and anthocyanin levels. Food Res. Int. 65: 177-183.10.1016/j.foodres.2014.06.015Search in Google Scholar

Nicoli M.C., Anese M., Parpinel M., 1999. Influence of processing on the antioxidant properties of fruit and vegetables. Trends Food Sci. Technol. 22: 94-100.10.1016/S0924-2244(99)00023-0Search in Google Scholar

Ninfali P., Bacchiocca M., 2003. Polyphenols and antioxidant capacity of vegetables under fresh and frozen conditions. J. Agric. Food Chem. 51: 2222-2226.10.1021/jf020936m12670160Search in Google Scholar

Palermo M., Pellegrini N., Fogliano V., 2014. The effect of cooking on the phytochemical content of vegetables. J. Sci. Food Agric. 94: 1057-1070.10.1002/jsfa.647824227349Search in Google Scholar

Pascual -Teresa S., Moreno D.A., Garcia-Viguera C., 2010. Flavanols and anthocyanins in cardiovascular health: a review of current evidence. Int. J. Mol. Sci. 11: 1679-703.10.3390/ijms11041679287113320480037Search in Google Scholar

Patrick L., 2008. Iodine: deficiency and therapeutic considerations. Altern. Med. Rev. 13(2): 116-127.Search in Google Scholar

Pellegrini N., Del Rio D., Colombi B., Bianchi M., Brighenti F., 2003. Application of the 2’2azobis (3-ethylenebenzothiazoline-6-sulfonic acid) radical cation assay to flow injection system for the avaluation of antioxidant activity of some pure compounds and bevereges. J. Agric. Food Chem. 51: 164-260.10.1021/jf020657z12502418Search in Google Scholar

Pinheiro-Sant’ana H.M., Stringheta P.C., Brandao S.C.C., Paez H.H., de Queiroz V.M.V., 1998. Evaluation of total carotenoids, alpha- and betacarotene in carrots (Daucus carota) during home processing. Ciênc. Tecnol. Aliment. 18: 39-44.10.1590/S0101-20611998000100009Search in Google Scholar

Pinto E., Ferreira I.M., 2015. Cation transporters/ channels in plants: Tools for nutrientbiofortification. J. Plant Physiol. 179: 64-82.10.1016/j.jplph.2015.02.010Search in Google Scholar

Poli-Swain T., Hillis W.E., 1959. The phenolic constituents of Prunus domesticus (L.). The quantity of analisys of phenolic constituents. J. Sci. Food Agric. 10: 63-68.10.1002/jsfa.2740100110Search in Google Scholar

POLISH STANDARD, 1990 PN-90/A-75101/12. Polish Committee for Standardization. Food products - Determination of total carotenoids and β-carotene.Search in Google Scholar

Re R., Pellegrini N., Proteggente A., Pannala A., Yang M., Rice-Evans C., 1999. Antioxidant activity applying an improved ABTS radical cation decolorization assay. Free Radic. Biol. Med. 26: 1231-1237.10.1016/S0891-5849(98)00315-3Search in Google Scholar

Salau B.A., Ajani E.O., Odufuwa K.T., Adegbesan B.O., Soladoye M.O., 2010. Effect of processing on iodine content of some selected plants food. Afr. J. Biotechnol. 9(8): 1200-1204.10.5897/AJB09.1455Search in Google Scholar

Schlegel M.L., Reiller P., Mercier-Bion F., Barré N., Moulin V., 2006. Molecular environment of iodine in naturally iodinated humic substances: Insight from X-ray absorption spectroscopy. Geochim. Cosmochim. Acta 70: 5536-5551.10.1016/j.gca.2006.08.026Search in Google Scholar

Scott E C., Eldridge L.A., 2005. Comparison of carotenoid content in fresh, frozen and canned corn. J. Food Comp. Anal. 18: 551-559.10.1016/j.jfca.2004.04.001Search in Google Scholar

Schweiggert R.M., Kopec R.E., Villalobos-Gutierrez M.G., Högel J., Quesada , S., Esquivel P., Schwartz S.J., Carl e R., 2014. Carotenoids are more bioavailable from papaya than from tomato and carrot in humans: a randomised cross-over study. Br. J. Nutr. 111(03): 490-498.10.1017/S0007114513002596Search in Google Scholar

Sheppard M.I., Hawkins J.L., 1995. Iodine and microbial interactions in an organic soil. J. Environ. Radioact. 29(2): 91-109.10.1016/0265-931X(95)00022-3Search in Google Scholar

Sikora E., Cieślik E., Leszczyńska T., Filipiak-Florkiewicz A., Pisulewski P.M., 2008. The antioxidant activity of selected cruciferous vegetables subjected to aquathermal processing. Food Chem. 107: 55-59.10.1016/j.foodchem.2007.07.023Search in Google Scholar

Smoleń S., Ledwożyw-Smoleń I., 2011. The effect of humic acid concentrate on the effectiveness of iodine biofortification and biological quality of spinach plants. Environ. Prod. Nat. Resour. 48: 49-58.Search in Google Scholar

Smoleń S., Rożek S., Strzetelski P., Ledwożyw I., 2011. Preliminary evaluation of the influence of soil fertilization and foliar nutrition with iodine on the effectiveness of iodine biofortification and mineral composition of carrot. J. Elem. 16(1): 103-114.10.5601/jelem.2011.16.2.11Search in Google Scholar

Smoleń S., Sady W., 2011. Influence of iodine fertilization and soil application of sucrose on the effectiveness of iodine biofortification, yield, nitrogen metabolism and biological quality of spinach. Acta Sci. Pol., Hortorum Cultus 10(4): 51-63.Search in Google Scholar

Smoleń S., Sady W., Strzetelski P., Rożek S., Ledwożyw I., 2009. The effect of iodine and nitrogen fertilization on quantity and quality of carrot yield well as on biological quality of carrot. Environ. Prod. Nat. Resour. 40: 286-292.Search in Google Scholar

Strzetelski P., Smoleń S., Rożek S., Sady W., 2010. The effect of differentiated fertilization and foliar application of iodine on yielding and antioxidant properties in radish (Raphanus sativus L.) plants. Ecol. Chem. Eng. A. 17(9): 1189-1195.Search in Google Scholar

Sultana B., Anwar F., Iqbal S., 2008. Effect of different cooking methods on the antioxidant activity of some vegetables from Pakistan. Int. J. Food Sci. Technol. 43: 560-567.10.1111/j.1365-2621.2006.01504.xSearch in Google Scholar

Turkmen N., Sari F., Velioglu S., 2005. The effect of cooking methods on total phenolics and antioxidant activity of selected green vegetables. Food Chem. 93: 713-718.10.1016/j.foodchem.2004.12.038Search in Google Scholar

Volden J., Bengtsson B.G., Wicklund T., 2009. Glucosinolates, L-ascorbic acid, total phenols, anthocyanins, antioxidant capacities and colour in cauliflower (Brassica oleracea L. ssp. botrytis); effect of long-term freezer storage. Food Chem. 112: 967-976.10.1016/j.foodchem.2008.07.018Search in Google Scholar

Vtorushina E.A., Saprykin A.I., Knapp G., 2009. Use of oxidation and reduction vapor generation for lowering the detection limits of iodine in biological samples by inductively coupled plasma atomic emission spectrometry. J. Anal. Chem. 6 4(2): 129-135.10.1134/S1061934809020063Search in Google Scholar

White P.J., Broadley M.R., 2009. Biofortification of crops with seven mineral elements often lacking in human diets - iron, zinc, copper, calcium, magnesium, selenium and iodine. New Phytol. 182(1): 49-84.10.1111/j.1469-8137.2008.02738.xSearch in Google Scholar

WHO/UNICEF, 2007. Iodine deficiency in Europe: a continuing public health problem. Geneva ISBN 9789241593960.Search in Google Scholar

Winger R.J., König J., House D.A., 2008. Technological issues associated with iodine fortification of foods. Trends Food Sci. Tech. 19: 94-101.10.1016/j.tifs.2007.08.002Search in Google Scholar

Winkel-Shirley B., 2002. Biosynthesis of flavonoids and effects of stress. Curr. Opin. Plant Biol. 5: 218.10.1016/S1369-5266(02)00256-XSearch in Google Scholar

Włodarek D., Głąbska D., 2010. Vegetables and fruits consumption by individuals with diabetes mellitus type 2. Practical Diabet. 11(6): 221-229.Search in Google Scholar

Yuita K., Kihou N., Yabusaki S., Takahashi Y., Saitoh T., Tsumura A., Ichihashi H., 2005. Behavior of iodine in a forest plot, an upland field and a paddy field in the upland area of Tsukuba, Japan. Iodine concentration in precipitation, irrigation water, ponding water and soil water to a depth of 2.5 m. J. Plant Nutr. Soil Sci. 51: 1011-1021.10.1111/j.1747-0765.2005.tb00140.xSearch in Google Scholar

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