Antioxidant Compounds, Nutritional Quality and Colour of Two Strawberry Genotypes from Fragaria × Ananassa

Violeta Nour1, Ion Trandafir2, Sina Cosmulescu1
1Department of Horticulture & Food Science, Faculty of Horticulture, University of Craiova, Craiova, Romania
2Department of Chemistry, Faculty of Sciences, University of Craiova, Craiova, Romania

Tóm tắt

Từ khóa


Tài liệu tham khảo

Aaby K, Mazur S, Nes A, Skrede G (2012) Phenolic compounds in strawberry (Fragaria × ananassa Duch.) fruits: composition in 27 cultivars and changes during ripening. Food Chem 132:86–97

Anttonen M, Hoppula KI, Nestby R, Verheul MJ, Karjalainen RO (2006) Influence of fertilization, mulch colour, early forcing, fruit order, planting date, shading, growing environment and genotype on the content of selected phenolics in strawberry (Fragaria × ananassa Duch) fruits. J Agric Food Chem 54:2614–2620

Ayala-Zavala FJ, Shiow WY, Chien WY, Gonzalez-Aguilar GA (2007) High oxygen treatment increases antioxidant capacity and postharvest life of strawberry fruit. Food Technol Biotech 45:166–173

Buettner GR (1993) The pecking order of free radicals and antioxidants: lipid peroxidation, R‑tocopherol, and ascorbate. Arch Biochem Biophys 300:535–543

Capocasa F, Scalzo J, Mezzetti B, Battino M (2008) Combining quality and antioxidant attributes in the strawberry: the role of genotype. Food Chem 111:872–878

Connor AM, Stephens MJ, Hall HK, Alspach PA (2005) Variation and heritabilities of antioxidant activity and total phenolic content estimated from a red raspberry factorial experiment. J Am Soc Hortic Sci 130:403–411

Cordenunsi BR, Nascimento JRO, Genovese MI, Lajolo FM (2002) Influence of cultivar on quality parameters and chemical composition of strawberry fruits grown in Brazil. J Agric Food Chem 50:2581–2586

Cosmulescu S, Trandafir I (2012) Anti-oxidant activities and total phenolics contents of leaf extracts from 14 cultivars of walnut (Juglans regia L.). J Hortic Sci Biotech 87:504–508

Crespo P, Bordonaba JG, Terry LA, Carlen C (2010) Characterization of major taste and health-related compounds of four strawberry genotypes grown at different Swiss production sites. Food Chem 122:16–24

Fraga CG (2005) Relevance, essentiality and toxicity of trace elements in human health. Mol Aspects Med 26(4–5):235–244

Galletta GJ, Maas JL, Enns JM, Draper AD, Fiola JA, Scheerens JC, Archbold DD, Ballington JR Jr (1995) ‘Delmarvel’ strawberry. HortScience 30(5):1099–1103

Giampieri F, Tulipani S, Alvarez-Suarez JM, Quiles JL, Mezzetti B, Battino M (2012) The strawberry: composition, nutritional quality, and impact on human health – review. Nutrition 28:9–19. doi: 10.1016/j.nut.2011.08.009

Gil MI, Holcroft DM, Kader AA (1997) Changes in strawberry anthocyanins and other polyphenols in response to carbon dioxide treatments. J Agric Food Chem 45:1662–1667

Giusti MM, Wrolstad RE (2001) Unit F1.2: Anthocyanins. Characterization and measurement of anthocyanins with Uv visible spectroscopy. In: Wrolstad RE (ed) Current protocols in food analytical chemistry. John Wiley & Sons, New York, pp 1–13

Hakala M, Lapveteläinen A, Huopalahti R, Kallio H, Tahvonen R (2003) Effects of varieties and cultivation conditions on the composition of strawberries. J Food Compost Anal 16(1):67–80

Häkkinen S, Törrönen AR (2000) Content of flavonol and selected phenolic acids in strawberries and vaccinium species: influence of cultivar, cultivation site and technique. Food Res Int 33:517–524

Hatano T, Kagawa H, Yasuhara T, Okuda T (1988) Two new flavonoids and other constituents in licorice root: their relative astringency and radical scavenging effects. Chem Pharm Bull 36:2090–2097

Hernanz D, Recamales AF, Melendez-Martinez AJ, Gonzalez-Miret ML, Heredia FJ (2007) Assessment of the differences in the phenolic composition of five strawberry cultivars (Fragaria ananassa Duch.) grown in two different soilless systems. J Agric Food Chem 55(5):1846–1852

Hossain A, Begum P, Zannat MS, Rahman MH, Ahsan M, Islam SN (2016) Nutrient composition of strawberry genotypes cultivated in a horticulture farm. Food Chem 199:648–652

Huang W, Zhang H, Liu W, Li C (2012) Survey of antioxidant capacity and phenolic composition of blueberry, blackberry, and strawberry in Nanjing. J Zhejiang Univ Sci B 13(2):94–102

Meyers KJ, Watkins CB, Pritts MP, Liu RH (2003) Antioxidant and antiproliferative activities of strawberries. J Agric Food Chem 51:6887–6892

Mohammadzadeh S, Sharriatpanahi M, Hamedi M, Amanzadeh Y, Sadat Ebrahimi SE, Ostad SN (2007) Antioxidant power of Iranian propolis extract. Food Chem 103:729–733

Ngo T, Wrolstad RE, Zhao Y (2007) Color quality of Oregon strawberries – impact of genotype, composition, and processing. J Food Sci 72:C25–C32

Nour V, Trandafir I, Cosmulescu S (2013) HPLC determination of phenolic acids, flavonoids and juglone in walnut leaves. J Chromatogr Sci 51:883–890

Olsson ME, Ekvall J, Gustavsson KE, Nilsson J, Pillai D, Sjoholm I, Svensson U, Akesson B, Nyman MGL (2004) Antioxidants, low molecular weight carbohydrates, and total antioxidant capacity in strawberries (Fragaria × ananassa): effects of cultivar, ripening, and storage. J Agric Food Chem 52:2490–2498

Panico AM, Garufi F, Nitto S, Di Mauro R, Longhitano RC, Magrì G, Catalfo A, Serrentino ME, De Guidi G (2009) Antioxidant activity and phenolic content of strawberry genotypes from Fragaria × ananassa. Pharm Biol 47(3):203–208

Pincemail J, Kevers C, Tabart J, Defraigne JO, Dommes J (2012) Cultivars, culture conditions, and harvest time influence phenolic and ascorbic acid contents and antioxidant capacity of strawberry (Fragaria × ananassa). J Food Sci 77:205–210

Proteggente AR, Pannala AS, Pagana G, Van Buren L, Wagner E, Wiseman S, van de Put F, Dacombe C, Rice-Evans CA (2002) The antioxidant activity of regular consumed fruit and vegetables reflects their phenolic and vitamin C composition. Free Radic Res 36:217–233

Rekika D, Khanizadeh S, Deschenes M, Levasseur A, Charles MT, Tsao R, Yang R (2005) Antioxidant capacity and phenolic content of selected strawberry genotypes. HortScience 40:1777–1781

Scalzo J, Politi A, Pellegrini N, Mezzetti B, Battino M (2005) Plant genotype affects total antioxidant capacity and phenolic contents in fruit. Nutrition 21:207–213

Simirgiotis MJ, Theoduloz C, Caligari PDS, Schmeda-Hirschmann G (2009) Comparison of phenolic composition and antioxidant properties of two native Chilean and one domestic strawberry genotypes. Food Chem 113:377–385

Singleton VL, Rossi JA (1965) Colorimetry of total phenolics with phosphomolybdic-phosphotungstic acid reagent. Am J Enol Vitic 16:144–158

Tulipani S, Mezzetti B, Capocasa F, Bompadre S, Beekwilder J, de Vos CH, Capanoglu E, Bovy A, Battino M (2008) Antioxidants, phenolic compounds, and nutritional quality of different strawberry genotypes. J Agric Food Chem 56:696–704

Tulipani S, Marzban G, Herndl A, Laimer M, Mezzetti B, Battino M (2011) Influence of environmental and genetic factors on health-related compounds in strawberry. Food Chem 124:906–913

USDA (2010) National nutrient database for standard reference. Release 23. Nutrient data laboratory home page. http://www.nal.usda.gov/fnic/foodcomp/search . Accessed 29 April 2016

Wang SY, Millner P (2009) Effect of different cultural systems on antioxidant capacity, phenolic content, and fruit quality of strawberries (Fragaria × ananassa Duch.). J Agric Food Chem 57:9651–9657

Wang H, Cao GH, Prior RL (1996) Total antioxidant capacity of fruits. J Agric Food Chem 44:701–705

Wang SY, Zheng W, Galletta GJ (2002) Cultural system affects fruit quality and antioxidant capacity in strawberries. J Agric Food Chem 50:6534–6542

Yagmur C, Taskin M (2011) Study on changes in mineral content of plum (Prunus domestica) and strawberry (Fragaria × ananassa) during canning. Indian J Agric Sci 81(8):723–728