Startseite Isolation of Linoleic Acid from Sambucus williamsii Seed Oil Extracted by High Pressure Fluid and Its Antioxidant, Antiglycemic, Hypolipidemic Activities
Artikel
Lizenziert
Nicht lizenziert Erfordert eine Authentifizierung

Isolation of Linoleic Acid from Sambucus williamsii Seed Oil Extracted by High Pressure Fluid and Its Antioxidant, Antiglycemic, Hypolipidemic Activities

  • Hui Lv , Shunsheng Chen , Xiaolin Xu , Manman Zhu , Wenfang Zhao , Kewu Liu EMAIL logo und Kehai Liu EMAIL logo
Veröffentlicht/Copyright: 15. April 2015
Veröffentlichen auch Sie bei De Gruyter Brill

Abstract

Linoleic acid was isolated effectively from Sambucus williamsii (SW) seed oil which was extracted by high-pressure fluid and its biological activities were investigated. Linoleic acid was isolated from the oil by urea inclusion, the yield was 65.81% and the purity was 92.12%. 2,2-diphenyl-1-picrylhydrazyl (DPPH) free radical scavenging assay was used to determine the antioxidant activity of linoleic acid. IC50 of DPPH radical scavenging activity of linoleic acid was 61.92 mg/mL. The antiglycemic activity of linoleic acid was evaluated by determining its inhibitory effect on α-glucosidase. The results showed that α-glucosidase was inhibited to a certain extent by linoleic acid (1.56–25 mg/mL). In addition, the hypolipidemic activity of linoleic acid was investigated in vivo using hyperlipidemia mice models fed with the linoleic acid at doses of 1, 2, 4 g/kg BW (body weight). The results showed that serum lipid levels were highly significantly (p<0.01) improved, which indicated the hypolipidemic activity of linoleic acid. The linoleic acid extracted from SW seed oil was proved to possess good antioxidant, antiglycemic and hypolipidemic activity in human diets, which may have industrial use.

Acknowledgment

The authors wish to thank the Dean, College of Food Science and Technology, Shanghai Ocean University, Shanghai, China for having provided necessary support for carrying out this work.

References

1. XieF, WuCF, ZhangY, YaoXS, CheungPY, ChanAS, et al. Increase in bone mass and bone strength by Sambucus williamsii HANCE in ovariectomized rats. Bio Pharm Bull2005;28:187985.10.1248/bpb.28.1879Suche in Google Scholar

2. DyerbergJ. Linolenate-derived polyunsaturated fatty acids and prevention of atherosclerosis. Nutr Rev1986;44:12534.10.1111/j.1753-4887.1986.tb07603.xSuche in Google Scholar

3. MehtaL, LopezLM, LowtonD, WargovichT. Dietary supplementation with omega-3 polyunsaturated fatty acids in patients with stable coronary disease: effects on indices of platelet and neutrophil function and exercise performance. Am J Med1988;84:4552.10.1016/0002-9343(88)90007-1Suche in Google Scholar

4. SimopoulosAP. Essential fatty acids in health and chronic disease. Food Rev Int1997;13:62331.10.1080/87559129709541143Suche in Google Scholar

5. StrocchiA, BonagaG. Correlation between urea inclusion compounds and comformational structure of unsaturated C-18 fatty acid methyl esters. Chem Phys Lipids1975;15:8794.10.1016/0009-3084(75)90033-XSuche in Google Scholar

6. KhajehM, YaminiY, BahramifaraN, SefidkonF, PirmoradeiMR. Comparison of essential oils compositions of Ferula assafoetida obtained by supercritical carbon dioxide extraction and hydrodistillation methods. Food Chem2005;91:63944.10.1016/j.foodchem.2004.06.033Suche in Google Scholar

7. YaminiY, SefidkonF, PourmortazaviSM. Comparison of essential oil of Iranian fennel (Foeniculum vulgare) obtained by supercritical carbon dioxide extraction and hydrodistillation methods. Flavour Fragr J2002;17:3458.10.1002/ffj.1117Suche in Google Scholar

8. MostafaK, YadollahY, FatemehS, NaaderB. Comparison of essential oil composition of Carum copticum obtained by supercritical carbon dioxide extraction and hydrodistillation methods. Food Chem2004;86:58791.10.1016/j.foodchem.2003.09.041Suche in Google Scholar

9. GomesPB, MataVG, RodriguesAE. Production of rose geranium oil using supercritical fluid extraction. J Supercrit Fluids2007;41:5060.10.1016/j.supflu.2006.08.018Suche in Google Scholar

10. LuTJ, GasparF, MarriottR, MellorS, WatkinsonC, Al-DuriB, et al. Extraction of borage seed oil by compressed CO2: effect of extraction parameters and modeling. J Supercrit Fluids2007;41:6873.10.1016/j.supflu.2006.10.002Suche in Google Scholar

11. LiuKH, ChenQL, LiuYJ, ZhouXY, WangXC. Isolation and biological activities of decanal, linalool, valencene, and octanal from sweet orange oil. J Food Sci2012;11:115661.10.1111/j.1750-3841.2012.02924.xSuche in Google Scholar

12. EbrahimabadiAH, EbrahimabadiEH, Djafari-BidgoliZ, KashiFJ, MazoochiA, BatooliH. Composition and antioxidant and antimicrobial activity of the essential oil and extracts of Stachys inflata benth from Iran. Food Chem2010;119:4528.10.1016/j.foodchem.2009.06.037Suche in Google Scholar

13. KimJS, HyunTK, KimMJ. The inhibitory effects of ethanol extracts from sorghum, foxtail millet and proso millet on α-glucosidase and α-amylase activities. Food Chem2011;124:164751.10.1016/j.foodchem.2010.08.020Suche in Google Scholar

14. WangSY, CampMJ, EhlenfeldtMK. Antioxidant capacity and α-glucosidase inhibitory activity in peel and flesh of blueberry (Vaccinium spp.) cultivars. Food Chem2012;132:175968.10.1016/j.foodchem.2011.11.134Suche in Google Scholar

15. ChoH, ChoKA, JiaS, ChoSJ, ChoiDB. Influence of bamboo oil supplementation on blood lipid concentration in serum. J Ind Eng Chem2009;15:2814.10.1016/j.jiec.2008.12.002Suche in Google Scholar

16. FengLJ, YuCH, YingKJ, HuaJ, DaiXY. Hypolipidemic and antioxidant effects of total flavonoids of Perilla frutescens leaves in hyperlipidemia rats induced by high-fat diet. Food Res Int2011;44:4049.10.1016/j.foodres.2010.09.035Suche in Google Scholar

17. WanasundaraNU, ShahidiF. Concentration of omega3-polyunsaturated fatty acids of seal blubber oil by urea complexation: optimization of reaction conditions. Food Chem1999;65:419.10.1016/S0308-8146(98)00153-8Suche in Google Scholar

18. AmarowiczR, PeggRB, MoghaddamPR, BarlB, WeilJA. Free radical scavenging capacity and antioxidant activity of selected plant species from Canadian prairies. Food Chem2004;84:55162.10.1016/S0308-8146(03)00278-4Suche in Google Scholar

19. YenGC, DuhPD. Scavenging effect of methanolic extracts of peanut hulls on free radical and active-oxygen species. J Agric Food Chem1994;42:62932.10.1021/jf00039a005Suche in Google Scholar

20. YaoXC, ZhuL, ChenYX, TianJ, WangYW. In vivo and in vitro antioxidant activity and α-glucosidase, α-amylase inhibitory effects of flavonoids from Cichorium glandulosum seeds. Food Chem2013;139:5966.10.1016/j.foodchem.2012.12.045Suche in Google Scholar PubMed

21. BabuK, TiwariAK, SrinivasPV, AliAZ, RajuB, RaoJM. Yeast and mammalian α-glucosidase inhibitory constituents from Himalayan rhubarb Rheum emodi Wall. ex Meisson. Bioorg Med Chem Lett2004;14:38415.10.1016/j.bmcl.2004.04.062Suche in Google Scholar PubMed

22. SalginU. Extraction of jojoba seed oil using supercritical CO2 + ethanol mixture in green and high-tech separation process. J Supercrit Fluids2007;39:3307.10.1016/j.supflu.2006.03.013Suche in Google Scholar

23. LiuW, FuYJ, ZuYG, TongMH, WuN, LiuXL, et al. Supercritical carbon dioxide extraction of seed oil from Opuntia dillenii haw. and its antioxidant activity. Food Chem2009;114:3349.10.1016/j.foodchem.2008.09.049Suche in Google Scholar

24. YuL, PerretJ, HarrisM, WilsonJ, HaleyS. Antioxidant properties of bran extracts from “akron” wheat grown at different locations. J Agric Food Chem2002;51:156670.10.1021/jf020950zSuche in Google Scholar PubMed

25. LeeJM, ChungH, ChangPS, LeeJH. Development of a method predicting the oxidative stability of edible oils using 2,2-diphenyl-1-picrylhydrazyl (DPPH). Food Chem2007;103:6629.10.1016/j.foodchem.2006.07.052Suche in Google Scholar

26. FagaliN, CataláA. Antioxidant activity of conjugated linoleic acid isomers, linoleic acid and its methyl ester determined by photoemission and DPPH techniques. Biophys Chem2008;137:5662.10.1016/j.bpc.2008.07.001Suche in Google Scholar PubMed

27. FarhooshR. Antioxidant activity and mechanism of action of butein in linoleic acid. Food Chem2005;93:6339.10.1016/j.foodchem.2004.10.041Suche in Google Scholar

28. MiraliakbariH, ShahidiF. Antioxidant activity of minor components of tree nut oils. Food Chem2008;111:4217.10.1016/j.foodchem.2008.04.008Suche in Google Scholar PubMed

29. LuoY, ChenG, LiB, JiB, GuoY, TianF. Evaluation of antioxidative and hypolipidemic properties of a novel functional diet formulation of Auricularia auricula and hawthorn. Inno Food Sci Emerg Technol2009;10:21521.10.1016/j.ifset.2008.06.004Suche in Google Scholar

30. VijaimohanK, JainuM, SabithaKE, SubramaniyamS, AnandhanC, Shyamala DeviCS. Beneficial effects of alpha linolenic acid rich flaxseed oil on growth performance and hepatic cholesterol metabolism in high fat diet fed rats. Life Sci2006;79:44854.10.1016/j.lfs.2006.01.025Suche in Google Scholar PubMed

Published Online: 2015-4-15
Published in Print: 2015-6-1

©2015 by De Gruyter

Heruntergeladen am 18.9.2025 von https://www.degruyterbrill.com/document/doi/10.1515/ijfe-2014-0234/html
Button zum nach oben scrollen