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http://dx.doi.org/10.9799/ksfan.2017.30.2.290

Effect of Surface Dielectric Barrier Discharge on the Physiological Activities of Quercetin  

Kim, Hyun-Joo (Crop Post-Harvest Technol. Division, Dept. of Central Area Crop Science, National Institute of Crop Science, RDA)
Yong, Hae In (Dept. of Agricultural Biotechnology, Center for Food and Bioconvergence, and Research Institute of Agriculture and Life Science, Seoul National University)
Park, Sanghoo (Dept. of Physics, Korea Advanced Institute of Science and Technology)
Park, Jooyoung (Dept. of Physics, Korea Advanced Institute of Science and Technology)
Jung, Samooel (Dept. of Animal and Dairy Science, Chungnam National University)
Choe, Wonho (Dept. of Physics, Korea Advanced Institute of Science and Technology)
Jo, Cheorun (Dept. of Agricultural Biotechnology, Center for Food and Bioconvergence, and Research Institute of Agriculture and Life Science, Seoul National University)
Publication Information
The Korean Journal of Food And Nutrition / v.30, no.2, 2017 , pp. 290-296 More about this Journal
Abstract
In this study, using the surface dielectric barrier discharge (DBD) produced at atmospheric pressure to improve the physiological activities of quercetin was investigated. Quercetin (at 200 ppm) was treated using air DBD with an input power of 250 W. The tyrosinase inhibition effect and total phenolic content of quercetin increased from 38.96 to 91.58% and from 134.53 to 152.93 ppm, respectively, after 20 min of plasma treatment. The antioxidant activity of quercetin treated for 20 min in the lipid models was higher than that of quercetin treated for 0, 5, and 10 min. Furthermore, plasma-treated quercetin exhibited antimicrobial activity against Listeria monocytogenes, Salmonella Typhimurium, and Staphylococcus aureus, whereas activity was not shown in the control. Structural modifications of the quercetin molecule induced by plasma might be responsible for the improvements in its physiological activity. These results indicate that DBD plasma could be used to enhance the physiological activity of quercetin for various applications in food.
Keywords
dielectric barrier discharge; atmospheric pressure plasma; quercetin; physiological activity;
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1 Moreau M, Orange N, Feuilloley MGJ. 2008. Non-thermal plasma technologies: new tools for bio-decontamination. Biotechnol Adv 26:610-617   DOI
2 Ramazzina I, Beradinelli A, Rizzi F, Tappi S, Ragni L, Sacchetti G, Rocculi P. 2015. Effect of cold plasma treatment on physico-chemical parameters and antioxidant activity of minimally processed kiwifruit. Postharvest Biol Technol 107: 55-65   DOI
3 Shoko T, Soichi T, Megumi MM, Eri F, Jun K, Michiko W. 1999. Isolation and identification of an antibacterial compounds from grape and its application to food. Nippon Nogeikagaku Kaishi 73:125-128   DOI
4 Subramanian KN, Padmanaban G, Sarma PS. 1965. Folin-Ciocalteu reagent for the estimation of siderochromes. Analy Biochem 12:106-112   DOI
5 Wu H, Park HY. 2003. Protein kinase C-${\beta}$-mediated complex formation between tyrosinase and TRP-1. Biochem Biophys Res Commun 311:948-953   DOI
6 Yang EI, Lee EM, Kim YS, Chung BY. 2012. The role of gamma irradiation on the extraction of phenolic compounds in onion (Allium cepa L.). Radiat Phys Chem 81:1025-1028.   DOI
7 Yang X, Wu D, Du Z, Li R, Chen X, Li X. 2009. Spectroscopy study on the interaction of quercetin with collagen. J Agric Food Chem 57:3431-3435   DOI
8 Yong HI, Kim HJ, Park S, Alahakoon AU, Kim K, Choe W, Jo C. 2015. Evaluation of pathogen inactivation on sliced cheese induced by encapsulated atmospheric pressure dielectric barrier discharge plasma. Food Microbiol 46:46-50   DOI
9 Jo C, Ahn HJ, Son JH, Lee JW, Byun MW. 2002. Packaging effect on residual nitrite content and nitrosamine formation in irradiated cooked pork sausage. Food Control 14:7-12
10 Jung S, Kim H J, Park S, Yong HI, Choe JH, Jeon HJ, Choe W, Jo C. 2015a. The use of atmospheric plasma-treated water as a source of nitrite for emulsion-type sausage. Meat Sci 108:132-137   DOI
11 Jung S, Kim HJ, Park S, Yong HI, Choe JH, Jeon HJ, Choe W, Jo C. 2015b. Color developing capacity of plasma-treated water as a source of nitrite for meat curing. Korean J Food Sci An 35:703-706   DOI
12 Kim TH, Jang SJ, Chung HW, Kim HJ, Yong HI., Choe W, Jo C. 2015. Enhancement of antioxidant effects of naringin after atmospheric pressure dielectric barrier discharge plasma treatment. Bioorg Med Chem Lett 25:1236-1239   DOI
13 Kim HJ, Choi J, Kim DJ, Kim JH, Chun BS, Ahn DH, Yook HS, Byun MW, Kim MJ, Shin MG, Lee JW. 2009. Effect of ionizing radiation on the physiological activities of ethanol extract from Hizikia fusiformis cooking drips. Appl Radiat Isotopes 67:1509-1512   DOI
14 Kim HJ, Sung NY, Yong HI, Kim H, Lim Y, Ko KH, Yun C, Jo C. 2016. Mutagenicity and immune toxicity of emulsiontype sausage cured with plasma-treated water. Korean J Food Sci An 36:494-498   DOI
15 Kim HJ, Yong HI, Park S, Kim K, Kim TH, Choe W, Jo C. 2014. Effect of atmospheric pressure dielectric barrier discharge plasma on the biological activity of naringin. Food Chem 160:241-245   DOI
16 Lee SS, Lee EM, An BC, Kim TH, Lee KS, Cho JY, Yoo SH, Bae JS, Chung BY. 2011. Effects of irradiation on decolourisation and biological activity in Schizandra chinensis extracts. Food Chem 125:214-220   DOI
17 Laroussi M. 2002. Nonthermal decontamination of biological media by atmospheric-pressure plasmas: review, analysis, and prospects. IEEE T Plasma Sci 30:1409-1415   DOI
18 Lee H, Yong HI, Kim HJ, Choe W, Yoo SJ, Jang EJ, Jo C. 2016. Evaluation of the microbiological safety, quality changes, and genotoxicity of chicken breast treated with flexible thinlayer dielectric barrier discharge plasma. Food Sci Biotechnol 25:1189-1195   DOI
19 Lee NY, Jo C, Sohn SH, Kim JK, Byun MW. 2006. Effects of gamma irradiation on the biological activity of green tea byproduct extracts and a comparison with green tea leef extracts. J Food Sci 71:C269-C274   DOI
20 Liu C, Cai L, Lu X, Han X, Ying T. 2012. Effect of postharvest UV-C irradiation on phenolic compound content and antioxidant activity of tomato fruit during storage. J Integr Agric 11:159-165   DOI
21 Choi J, Kim HJ, Kim JH, Chun BS, Ahn DH, Kim GH, Lee JW. 2010. Changes in colour and antioxidant activities of Hizikia fusiformis cooking drips by gamma irradiation. LWT-Food Sci Technol 43:1074-1078   DOI
22 An BJ, Kwak JH, Son JH, Park JM, Lee JY, Jo C, Byun MW. 2004. Biological and anti-microbial activity of irradiated green tea polyphenols. Food Chem 88:549-555   DOI
23 Byun MW, Jo C, Jeon T, Hong CH. 2004. Effects of gamma irradiation on colour characteristics and biological activities of extracts of Lonicera japonica (Japanese honey suckle) with methanol and acetone. LWT-Food Sci Technol 37: 29-33   DOI
24 Choi J, Kim HJ, Kim JH, Song BS, Chun BS, Ahn DH, Byun MW, Lee JW. 2009. Improvement of color and physiological properties of tuna-processing by-product by gamma irradiation. Radiat Phys Chem 78:601-603   DOI
25 Fornes M, Barbieri A, Burgos M. 1993. Spem motility loss induced by gossypol: relation with OH scavengers, motile stimulators and malondialdehyde production. Biochem Biophys Res Commun 195:1289-1293   DOI
26 Jayasena DD, Kim HJ, Yong HI, Park S, Kim K, Choe W, Jo C. 2015. Flexible thin-layer dielectric barrier discharge plasma treatment of pork butt and beef loin: Effects of pathogen inactivation and meat quality attributes. Food Microbiol 46: 51-57   DOI
27 Guo Y, Bruno RS. 2015. Endogenous and exogenous mediators of quercetin bioavailability. J Nutr Biochem 26:201-210   DOI
28 Cook NC, Samman S. 1996. Flavonoids- Chemistry, metabolism, cardioprotective effects, and dietary sources. J Nutr Biochem 7:66-76   DOI
29 Fan X, Toivonen PMA, Rajkowski KT, Sokorai KJB. 2003. Warm water treatment in combination with modified atmosphere packaging reduces undesirable effects of irradiation on the quality of fresh-cut iceberg lettuce. J Agric Food Chem 51:1231-1236   DOI
30 Fang R, Hao R, Wu X, Li Q, Leng X, Jing H. 2011. Bovine serum albumin nanoparticle promotes the stability of quercetin in simulated intestinal fluid. J Agric Food Chem 59: 6292-6298   DOI
31 Gaunt LF, Beggs CB, Georghiou GE. 2006. Bactericidal action of the reactive species produced by gas-discharge nonthermal plasma at atmospheric pressure: A review. IEEE T Plasma Sci 34:1257-1269   DOI
32 Mehranfar F, Bordbar AK, Parastar H. 2013. A combined spectroscopic, molecular docking and molecular dynamic simulation study on the interaction of quercetin with beta-casein nanoparticles. J Photochem Photobiol B 127:100-107   DOI
33 Mendoza EE, Burd R. 2011. Quercetin as a systemic chemopreventative agent: Structural and functional mechanisms. Mini Rev Med Chem 11:1216-1221
34 Montie TC, Kelly-Wintenberg K, Roth JR. 2000. An overview of research using the one atmosphere uniform glow discharge plasma (OAUGDP) for sterilization of surfaces and materials. IEEE T Plasma Sci 28:41-50   DOI