Open Access

Influence of Germination Conditions and Parameters on the Content of Total Phenolic Compounds and Scavenging Activity in Germinated Seeds


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Andre, C.M., Hausman, J.F., & Guerriero, G. (2016). Cannabis sativa: The plant of the thousand and one molecules. Frontiers in Plant Science, 7, 1–17. DOI: 10.3389/fpls.2016.00019.10.3389/fpls.2016.00019474039626870049Search in Google Scholar

Baenas, N., Moreno, D.A., & Garcia-Viguera, C., (2012). Selecting sprouts of Brassicaceae for optimum phytochemical composition. J. Agric. Food Chemistry, 60 (45), 11409–11420.10.1021/jf302863c23061899Search in Google Scholar

Callaway, J.C. (2004). Hemp seed as a nutritional resource: An overview. Euphytica. 140(1), 65–72. DOI: 10.1007/s10681-004-4811-6.10.1007/s10681-004-4811-6Search in Google Scholar

Chen, T., He, J., Zhang, J., Li, X., Zhang, H., Hao, J., & Li, L. (2012). The isolation and identification of two compounds with predominant radical scavenging activity in hemp seed (seed of Cannabis sativa L.). Food Chemistry, 134(2). 1030–1037. DOI: 10.1016/j. foodchem.2012.03.009.10.1016/j.foodchem.2012.03.009Search in Google Scholar

EFSA (2009). European Food Safety Authority, Scientific opinion on the safety of ‘‘Alfalfa protein concentrate” as food. Scientific opinion of the panel on dietetic products, nutrition and allergies (NDA). Question number EFSA-Q-2008-031. The EFSA Journal, 997, 1–19.Search in Google Scholar

Ferreira, S.S., Passos, C.P., Cardoso, S.M., Wessel, D.F., & Coimbra, M.A. (2018). Microwave assisted dehydration of broccoli by-products and simultaneous extraction of bioactive compounds. Food Chemistry, 246, 386–393.10.1016/j.foodchem.2017.11.05329291863Search in Google Scholar

Frassinettia, S., Moccia, E., Caltavuturoa, L., Gabriele, M., Longo, V., Bellania, L., Giorgic, G., & Giorgettia, L. (2018). Nutraceutical potential of hemp (Cannabis sativa L.) seeds and sprouts. Food Chemistry. 262, 56–66. DOI: 10.1016/j. foodchem.2018.04.07810.1016/j.foodchem.2018.04.078Search in Google Scholar

Giuberti, G., Rocchetti, G., Sigolo, S., Fortunati, P., Lucini, L., & Gallo, A. (2018). Exploitation of alfalfa seed (Medicago sativa L.) flour into gluten-free rice cookies: Nutritional, antioxidant and quality characteristics. Food Chemistry. 239, 679–687. DOI: 10.1016/j.foodchem.2017.07.004.10.1016/j.foodchem.2017.07.00428873621Search in Google Scholar

Graham, P.H., & Vance, C.P. (2003). Legumes: Importance and constraints to greater use. Plant Physiology, 131, 872–877.10.1104/pp.017004154028612644639Search in Google Scholar

Guo, L.P., Yang, R.Q., Wang, Z.Y., Guo, Q.H., & Gu, Z.X. (2014). Glucoraphanin, sulforaphane and myrosinase activity in germinating broccoli sprouts as affected by growth temperature and plant organs. Journal of Functional Foods, 9, 70–77.10.1016/j.jff.2014.04.015Search in Google Scholar

Herr, I., & Büchler, M.W. (2010). Dietary constituents of broccoli and other cruciferous vegetables: implications for prevention and therapy of cancer. Cancer Treat. Rev. 36, 377–383.10.1016/j.ctrv.2010.01.00220172656Search in Google Scholar

Kruma, Z., Tomsone, L., Ķince, T., Galoburda, R., Senhofa, S., Sabovics, M., E. Straumite., & Sturite, I. (2016). Effects of germination on total phenolic compounds and radical scavenging activity in hull-less spring cereals and triticale. Agronomy Research, 14(SpecialIssue 2), 1372–1383.Search in Google Scholar

Kwack, Y., Kim, K.K., Hwang, H., & Chun, C. (2015). Growth and quality of sprouts of six vegetables cultivated under different light intensity and quality. Horticulture, Environment, and Biotechnology, 56(4), 437–443.10.1007/s13580-015-1044-7Search in Google Scholar

Lee, S.W., Seo, J.M., Lee, M.K., Chun, J.H., Antonisamy, P., Arasu, M.V., & Kim, S.J. (2014). Influence of different LED lamps on the production of phenolic compounds in common and Tartary buckwheat sprouts. Industrial Crops and Products, 54, 320–326.10.1016/j.indcrop.2014.01.024Search in Google Scholar

Liu, H.K., Chen, Y.Y., Hu, T.T., Zhang, S.J., Zhang, Y.H., Zhao, T.Y., & Kang, Y.F. (2016). The influence of light-emitting diodes on the phenolic compounds and antioxidant activities in pea sprouts. Journal of Functional Foods, 25, 459–465.10.1016/j.jff.2016.06.028Search in Google Scholar

Mahn, A., & Perez, C. (2016). Optimization of an incubation step to maximize sulfor- aphane content in pre-processed broccoli. Journal of Food Science and Technology, 53(11), 4110–4115.10.1007/s13197-016-2386-6515663828035167Search in Google Scholar

Martínez-Villaluenga, C., Frías, J., Gulewicz, P., Gulewicz, K., & Vidal-Valverde, C. (2008). Food safety evaluation of broccoli and radish sprouts. Food and Chemical Toxicology, 46(5), 1635–1644. DOI:10.1016/j.fct.2008.01.00410.1016/j.fct.2008.01.00418314243Search in Google Scholar

Martinez-Villaluenga, C., Penas, E., Ciska, E., Piskula, M.K., Kozlowska, H., VidalValverde, C., & Frias, J. (2010). Time dependence of bioactive compounds and antioxidant capacity during germination of different cultivars of broccoli and radish seeds. Food Chemistry. 120, 710–716. DOI: 10.1016/j.foodchem.2009.10.067.10.1016/j.foodchem.2009.10.067Search in Google Scholar

Masisi, K., Beta, T., & Moghadasian, M.H. (2016). Antioxidant properties of diverse cereal grains: Areview on in vitro and in vivo studies. Food Chemistry, 196, 90–97.10.1016/j.foodchem.2015.09.02126593469Search in Google Scholar

Moreno, D.A., Carvajal, M., L´opez-Berenguer, C., & Garcia-Viguera, C. (2006). Chemical and biological characterisation of nutraceutical compounds of broccoli. Pharmaceut Biomed, 41, 1508–1522.10.1016/j.jpba.2006.04.00316713696Search in Google Scholar

Pasko, P., Barton, H., Zagrodzki, P., Gorinstein, S., Folta, M., & Zachwieja, Z. (2009). Anthocyanins, total polyphenols and antioxidant activity in amaranth and quinoa seeds and sprouts during their growth. Food Chemistry. 115, 994–998. DOI: 10.1016/j.foodchem.2009.01.037.10.1016/j.foodchem.2009.01.037Search in Google Scholar

Perez-Balibrea, S., Moreno, D.A., & Garcia-Viguera, C. (2008). Influence of light on health-promoting phytochemicals of broccoli sprouts. Journal of the Science of Food and Agriculture, 88, 904–910.10.1002/jsfa.3169Search in Google Scholar

Pérez-Balibrea, S., Moreno, D. A., & García-Viguera, C. (2011). Genotypic effects on the phytochemical quality of seeds and sprouts from commercial broccoli cultivars. Food Chemistry, 125, 348–354.10.1016/j.foodchem.2010.09.004Search in Google Scholar

Randhir, R., & Shetty, K. (2005). Developmental stimulation of total phenolics and related antioxidant activity in light- and dark-germinated corn by natural elicitors process Biochemistry, Vol. 40 (5), 1721–1732.10.1016/j.procbio.2004.06.064Search in Google Scholar

Rodriguez-Leyva, D., & Pierce, G.N., (2010). The cardiac and haemostatic effects of dietary hempseed. Nutrition & Metabolism, 7, 32–40.10.1186/1743-7075-7-32286801820409317Search in Google Scholar

Sikin, A.M., Zoellner, C., & Rizvi, S.S. (2013). Current intervention strategies for the microbial safety of sprouts. Journal of Food Protection, 76(12), 2099–2123. DOI: 10.4315/0362-028X. JFP-12-437.10.4315/0362-028X.JFP-12-437Search in Google Scholar

Singleton, V.L., Orthofer, R., & Lamuela-Raventos, R.M. (1999). Analysis of total phenols and other oxidation substrates and antioxidants by means of Folin-Ciocalteu reagent. Methods in Enzymology, 299, 152–178. DOI: 10.1016/S0076-6879(99)99017-1.10.1016/S0076-6879(99)99017-1Search in Google Scholar

Taraseviciene, Z., Danilcenko, H., Jariene, E., Paulauskiene, A., & Gajewski, M. (2009). Changes in some chemical components during germination of broccoli seeds. Notulae Botanicae Horti Agrobotanici Cluj-Napoca 37(2), 173–176. DOI: 10.15835/nbha3723164.Search in Google Scholar

Taraseviciene, Z., Virsile, A., Danilcenko, H., Duchovskis, P., Paulauskiene, A., & Gajewski, M. (2019). Effects of germination time on the antioxidant properties of edible seeds. CYTA – Journal of Food, 17(1), 447–454.10.1080/19476337.2018.1553895Search in Google Scholar

Vale, A.P., Santos, J., Brito, N.V., Peixoto, V., Carvalho, R., Rosa, E., & Oliveira, M.B.P. (2015). Light influence in the nutritional composition of Brassica oleracea sprouts. Food Chemistry, 178, 292–300.10.1016/j.foodchem.2015.01.06425704714Search in Google Scholar

Werz, O., Seerges, J., Shaible, A. M., Weinigel, C., Barz, D., Koeberle, A., Allegrone, G., Pollastro, F., Zampieri, L., Grassi, G., & Appendino, G. (2014). Cannaflavins from hemp sprouts, a novel cannabinoid-free hemp food product, target microsomal prostaglandin E2 synthase-1 and 5-lypoxygenase. Pharma Nutrition, 2(3), 53–60. DOI: 10.1016/j.phanu.2014.05.001.10.1016/j.phanu.2014.05.001Search in Google Scholar

Wu F., Yang N., Touré A., Jin Z., Xu X. (2013) Germinated brown rice and its role in human health. Critical Reviews in Food Science and Nutrition, Vol. 53(5). p. 451–463.10.1080/10408398.2010.542259Search in Google Scholar

Zielinski, H., Piskuła, M.K., Michalska, A., & Kozłowska, H., (2007). Antioxidant capacity and its components of cruciferous sprouts. Polish Journal of Food and Nutrition Science, 57(3), 315–322.Search in Google Scholar

Yu, L., Haley, S., Perret, J., Harris, M., Wilson, J. & Haley, S. (2003). Antioxidant properties of bran extracts from Akron wheat grown at different locations. J. Agric. Food Chemistry,51, 1566–1570.10.1021/jf020950z12617585Search in Google Scholar

eISSN:
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Language:
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Journal Subjects:
Life Sciences, Biotechnology, Plant Science, Ecology