Antioxidant action and therapeutic efficacy of Allium sativum L

Anna Capasso, Anna Capasso

Abstract

Allium sativum (L.) is rich in antioxidants which help destroy free radicals particles that can damage cell membranes and DNA, and may contribute to the aging process as well as the development of a number of conditions, including heart disease and cancer. Antioxidants neutralize free radicals and may reduce or even help prevent some of the damage they cause over time. The antioxidant activity of fresh Allium sativum L. (garlic) is well known and is mainly due to unstable and irritating organosulphur compounds. Fresh garlic extracted over a prolonged period (up to 20 months) produces odourless aged garlic extract (AGE) containing stable and water soluble organosulphur compounds that prevent oxidative damage by scavenging free radicals. The aim of this review was to understand the mechanism of antioxidant action and therapeutic efficacy of garlic.

Figures

Figure 1
Figure 1
ROS origin and pathway.
Figure 2
Figure 2
Proposed mechanism by diallyl trisulfide against carcinogenesis.

References

    1. Finkel T., Holbrook N.J. Oxidants, oxidative stress and the biology of ageing. Nature. 2000;408:239–247. doi: 10.1038/35041687.
    1. Ferrara N., Gorbi G., Scarpa D., Rengo G., Longobardi G. Teorie dll’invecchiamento. The aging theories. G Gerontol. 2005;53:57–74.
    1. Bergamini C.M., Gambetti S., Dondi A., Cervellati C. Oxygen, reactive oxygen species and tissue damage. Curr. Pharm. Des. 2004;10:1611–1626.
    1. Leonard S.S., Cutler D., Ding M., Vallyathan V., Castranova V., Shi X. Antioxidant properties of fruit and vegetable juices: More to the story than ascorbic acid. Ann. Clin. Lab. Sci. 2002;32:193–200.
    1. Augusti K.T. Therapeutic values of onion (Allium cepa L.) and garlic (Allium sativum L.) Indian J. Exp. Biol. 1996;34:634–640.
    1. Wargovich M.J., Uda N., Woods C., Velasco M., McKee K. Allium vegetables: Their role in the prevention of cancer. Biochem. Soc. Trans. 1996;24:811–814.
    1. Hunter R., Caira M., Stellenboom N. Thiolsulfinate allicin from garlic: Inspiration for a new antimicrobial agent. Ann. NY Acad. Sci. 2005;1056:234–241.
    1. Brace L.D. Cardiovascular benefits of garlic (Allium sativum L.) J. Cardiovasc. Nurs. 2002;16:33–49.
    1. Leelarungrayub N., Rattanapanone V., Chanarat N., Gebicki J.M. Quantitative evaluation of the antioxidant properties of garlic and shallot preparations. Nutrition. 2006;22:266–274. doi: 10.1016/j.nut.2005.05.010.
    1. Neil A., Silagy C. Garlic: Its cardioprotective properties. Curr. Opin. Lipidol. 1994;5:6–10. doi: 10.1097/00041433-199402000-00002.
    1. Yeh Y.Y., Yeh S.M. Garlic reduces plasma lipids by inhibiting hepatic cholesterol and triacylglycerol synthesis. Lipids. 1994;29:189–193. doi: 10.1007/BF02536728.
    1. Rahman K., Lowe G.M. Garlic and cardiovascular disease: A critical review. J. Nutr. 2006;136:S736–S740.
    1. Dhawan V., Jain S. Garlic supplementation prevents oxidative DNA damage in essential hypertension. Mol. Cell. Biochem. 2005;275:85–94. doi: 10.1007/s11010-005-0824-2.
    1. Nishimura H., Higuchi O., Tateshita K. Antioxidative activity of sulfur-containing compounds in Allium species for human LDL oxidation in vitro. Biofactors. 2004;21:277–280. doi: 10.1002/biof.552210154.
    1. Yin M.C., Hwang S.W., Chan K.C. Nonenzymatic antioxidantactivity of four organosulfur compounds derived from garlic. J. Agric. Food Chem. 2002;50:6143–6147. doi: 10.1021/jf0204203.
    1. Singh A., Arora A., Shukla Y. Modulation of altered hepatic foci induction by diallyl sulphide in Wistar rats. Eur. J. Cancer. Prev. 2004;13:263–269. doi: 10.1097/01.cej.0000127633.89678.fb.
    1. Kim S.M., Kubota K., Kobayashi A. Antioxidative activity of sulfur-containing flavor compounds in garlic. Biosci. Biotech. Bioch. 1997;61:1482–1485. doi: 10.1271/bbb.61.1482.
    1. Rabinkov A., Miron T., Konstantinovski L., Wilchek M., Mirelman D., Weiner L. The mode of action of allicin: Trapping of radicals and interaction with thiol containing proteins. Biochim. Biophys. Acta. 1998;1379:233–244.
    1. Lanzotti V. The analysis of onion and garlic. J. Chromatogr. A. 2006;1112:3–22.
    1. Gorinstein S., Drzewiecki J., Leontowicz H., Leontowicz M., Najman K., Jastrzebski Z., Zachwieja Z., Barton H., Shtabsky B., Katrich E., et al. Comparison of the bioactive compounds and antioxidant potentials of fresh and cooked Polish, Ukrainian and Israeli garlic. J. Agric. Food Chem. 2005;53:2726–2732.
    1. Stajner D., Milic N., Canadanovic-Brunet J., Kapor A., Stajner M., Popovic BM. Exploring Allium species as a source of potential medicinal agents. Phytother. Res. 2006;20:581–584.
    1. Golubev F.V., Golubkina N.A., Gorbunov Y.N. Mineral content in the wild onion species and their nutritive value. Prikl. Biokhim. Mikrobiol. 2003;39:602–606.
    1. Nencini C., Menchiari A., Franchi G.G., Micheli L. In vitro Antioxidant Activity of Aged Extracts of some Italian Allium Species. Plant Foods Hum. Nutr. 2011;66:11–16. doi: 10.1007/s11130-010-0204-2.
    1. Nencini C., Franchi G.G., Cavallo F., Micheli L. Protective Effect of Allium neapolitanum Cyr. Versus Allium. sativum L. on Acute Ethanol-Induced Oxidative Stress in Rat Liver. J. Med. Food. 2010;13:329–335. doi: 10.1089/jmf.2008.0180.
    1. Park J.-H., Park Y.K., Park E. Antioxidative and Antigenotoxic Effects of Garlic (Allium. sativum L.) Prepared by Different Processing Methods. Plant Foods Hum. Nutr. 2009;64:244–249. doi: 10.1007/s11130-009-0132-1.
    1. Olalekan L.A., Lawal A.F., Ologundudu A., Adeniran O.Y., Omonkhua A., Obi F. Antioxidant effects of heated garlic juice on cadmium-induced liver damage in rats as compared to ascorbic acid. J. Toxicol. Sci. 2011;36:549–557. doi: 10.2131/jts.36.549.
    1. Kay H.Y., Won Y.J., Kim T.H., Lee D.Y., Kang B., Ryu J.H., Jeon R., Kim S.G. Ajoene, a stable garlic by-product, has an antioxidant effect through Nrf2-mediated glutamate-cysteine ligase induction in HepG2 cells and primary hepatocytes. J. Nutr. 2010;140:1211–1219. doi: 10.3945/jn.110.121277.
    1. Malki A., El-Saadani M., Sultan A.S. Garlic constituent diallyl trisulfide induced apoptosis in MCF7 human breast cancer cells. Cancer Biol. Ther. 2009;8:2175–2185.
    1. Das A., Banik N.L., Ray S.K. Garlic compounds generate reactive oxygen species leading to activation of stress kinases and cysteine proteases for apoptosis in human glioblastoma T98G and U87MG cells. Cancer. 2007;110:1083–1095.
    1. Sela U., Ganor S., Hecht I., Brill A., Miron T., Rabinkov A., Wilchek M., Mirelman D., Lider O., Hershkoviz R. Allicin inhibits SDF-1alpha-induced T cell interactions with fibronectin and endothelial cells by down-regulating cytoskeleton rearrangement, Pyk-2 phosphorylation and VLA-4 expression. Immunology. 2004;111:391–399.
    1. Li H., Li H.Q., Wang Y., Xu H.X., Fan W.T., Wang M.L., Sun P.H., Xie X.Y. An intervention study to prevent gastric cancer by micro-selenium and large dose of allitridum. Chin. Med. J. 2004;117:1155–1160.
    1. You W.C., Brown L.M., Zhang L., Li J.Y., Jin M.L., Chang Y.S., Ma J.L., Pan K.F., Liu W.D., Hu Y., et al. Randomized double-blind factorial trial of three treatments to reduce the prevalence of precancerous gastric lesions. J. Natl. Cancer Inst. 2006;98:974–983.
    1. Tanaka S., Haruma K., Yoshihara M., Kajiyama G., Kira K., Amagase H., Chayama K. Aged garlic extract has potential suppressive effect on colorectal adenomas in humans. J. Nutr. 2006;136:S821–S826.
    1. Tilli C.M., Stavast-Kooy A.J., Vuerstaek J.D., Thissen M.R., Krekels G.A., Ramaekers F.C., Neumann H.A. The garlic-derived organosulfur component ajoene decreases basal cell carcinoma tumor size by inducing apoptosis. Arch. Dermatol. Res. 2003;295:117–123. doi: 10.1007/s00403-003-0404-9.
    1. Ana L., Colín-González R.A., Santana C.A., Silva-Islas M.E., Chánez-Cárdenas A.S., Perla D.M. The Antioxidant Mechanisms Underlying the Aged Garlic Extract- and S-Allylcysteine-Induced Protection. Oxid. Med. Cell. Longev. 2012 doi: 10.1155/2012/907162.

Source: PubMed

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