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Optimization of extraction of phenolics from leaves of Ficus virens 被引量:3

Optimization of extraction of phenolics from leaves of Ficus virens
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摘要 In this research,the conditions for extraction of phenolics from leaves of Ficus virens were optimized using response surface methodology(RSM).The extraction abilities of phenolics(EAP) and flavonoids(EAF),the 2,2-diphenyl-1-pierylhydrazyl(DPPH) free-radical scavenging potential,and the ferric reducing/antioxidant power(FRAP) were used as quality indicators.The results of single-factor experiments showed that temperature,ethanol concentration,extraction time,and the number of extraction cycles were the main influencing variables,and these provided key information for the central composite design.The results of RSM fitted well to a second degree polynomial model and more than 98% of the variability was explained.The ideal extraction conditions for EAP,EAF,DPPH free-radical scavenging potential,and FRAP were obtained.Considering the four quality indicators overall,the ideal extraction conditions were 58% ethanol at 57 °C for 37 min with three extraction cycles.At the ideal extraction conditions,the values of EAP,EAF,DPPH free-radical scavenging potential,and FRAP were 5.72%,3.09%,58.88 mg ascorbic acid equivalent(AAE)/g dry weight(DW),and 15.86 mg AAE/g DW,respectively.In addition,linear correlations were observed between EAP,EAF,and antioxidant potential. In this research, the conditions for extraction of phenolics from leaves of Ficus virens were optimized using response surface methodology (RSM). The extraction abilities of phenolics (EAP) and flavonoids (EAF), the 2,2-diphenyl-l-pierylhydrazyl (DPPH) free-radical scavenging potential, and the ferric reducing/antioxidant power (FRAP) were used as quality indicators. The results of single-factor experiments showed that temperature, ethanol concentration, extraction time, and the number of extraction cycles were the main influencing variables, and these provided key information for the central composite design. The results of RSM fitted well to a second degree polynomial model and more than 98% of the variability was explained. The ideal extraction conditions for EAP, EAF, DPPH free-radical scavenging potential, and FRAP were obtained. Considering the four quality indicators overall, the ideal extraction conditions were 58% ethanol at 57 ℃ for 37 min with three extraction cycles. At the ideal extraction condi- tions, the values of EAP, EAF, DPPH free-radical scavenging potential, and FRAP were 5.72%, 3.09%, 58.88 mg ascorbic acid equivalent (AAE)/g dry weight (DW), and 15.86 mg AAE/g DW, respectively. In addition, linear correlations were observed between EAP, EAF, and antioxidant potential.
出处 《Journal of Zhejiang University-Science B(Biomedicine & Biotechnology)》 SCIE CAS CSCD 2013年第10期903-915,共13页 浙江大学学报(英文版)B辑(生物医学与生物技术)
基金 Project supported by the National Natural Science Foundation of China(No.31070522) the Science and Technology Foundation of Fujian Province(No.2010N5013),China
关键词 Ficus virens Phenolics FLAVONOIDS ANTIOXIDANTS Response surface methodology(RSM) Ficus virens, Phenolics, Flavonoids, Antioxidants, Response surface methodology (RSM)
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  • 1Abdel-Hameed, E.S.S, 2009. Total phenolic contents and free radical scavenging activity of certain Egyptian Ficus species leaf samples. Food Chem, 114(4):1271-1277. [doi:l 0.1016/j .[oodchem .2008.11.005].
  • 2Ao, C, Li, A, Elzaawely, A.A, Xuan, T.D, Tawata, S, 2008. Evaluation of antioxidant and antibacterial activities of Ficus microcarpa L. ill. extract. Food Control, 19(10):940-948. [doi: 10.1016/j.foodcont.2007.09.007].
  • 3Benzie, I.F, Strain, J.J, 1996. The ferric reducing ability of plasma (FRAP) as a measure of"antioxidant power": the FRAP assay. Anal Biochem, 239(1):70-76. [doi:10. 1006/abio.1996.0292].
  • 4Brand-Williams, W, Cuvelier, M.E, Berset, C, 1995. Use of a free radical method to evaluate antioxidant activity. LWT-Food Sci. Technol, 28(1):25-30. [doi:10.1016/ S0023-6438(95)80008-5].
  • 5Bucic-Kojic, A, Planinic, M, Tomas, S, Jakobek, L, Seruga, M, 2009. Influence of solvent and temperature on extraction of phenolic compounds from grape seed, antioxidant activity and colour of extract. Int. J. Food Sci. Technol, 44(12):2394-2401. [doi:10.1111/j.1365-2621. 2008.01876.x].
  • 6Cacace, J.E, Mazza, G, 2003a. Mass transfer process during extraction of phenolic compounds from milled berries. J. Food Eng, 59(4):379-389. [doi:10.1016lS0260-8774 (02)00497-1].
  • 7Cacace, J.E, Mazza, G, 2003b. Optimization of extraction of anthocyanins from black currants with aqueous ethanol. J. Food Sci, 68(1):240-248. [doi:10.1111/j.1365-2621. 2003.tb14146.x].
  • 8Cai, Y, Luo, Q, Sun, M, Harold, C, 2004. Antioxidant activity and phenolic compounds of 112 traditional Chinese medicinal plants associated with anticancer. Life Sci, 74(17):2157-2184. [doi:10.1016/j.lfs.2003.09.047].
  • 9Casazza, A.A, Aliakbarian, B, Sannita, E, Perego, P, 2012. High-pressure high-temperature extraction of phenolic compounds from grape skins. Int. J. Food Sci. Technol, 47(2):399-405. [doi:10.11110.1365-2621.2011.02853.x].
  • 10Contini, M, Baccelloni, S, Massantini, R, Anelli, G, 2008. Extraction of natural antioxidants from hazelnut (Corylus avellana L.) shell and skin wastes by long maceration at room temperature. Food Chem, 110(3):659-669. [doi:10. 1016/j.foodchem.2008.02.060].

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