植物中主要抗氧化剂的结构、抗氧化机理和抗氧化性能检测
Structures, Antioxidation Mechanism, and Antioxidation Test of the Common Natural Antioxidants in Plants
DOI: 10.12677/BIPHY.2015.31004, PDF, HTML, XML,  被引量 下载: 4,037  浏览: 27,149  国家自然科学基金支持
作者: 何慧娟, 黄 娜, 曹瑞军, 孟令杰*:西安交通大学理学院化学系,陕西 西安
关键词: 天然抗氧化剂活性氧反应机理检测方法构效关系Natural Antioxidants Reactive Oxygen Species (ROS) Reaction Mechanism Detection Methods Structure-Activity Relationship
摘要: 线粒体功能异常和外界刺激引起细胞内活性氧(reactive oxygen species,ROS)含量的长期增高会对脂质体、蛋白和DNA造成损伤,可能诱发癌症、心血管疾病、风湿性关节炎和各种神经性疾病等。日常食用和药用的植物中含有的维生素、胡萝卜素和多酚类化合物等种类众多的抗氧化剂能帮助清除过量ROS,是近年来食品化学、药学和生命科学等领域的一个研究热点。本文主要从化学角度介绍常见天然抗氧化剂的结构和抗氧化机理,重点是从化学检测实验、细胞实验和动物实验三个层面综述抗氧化性能的检测方法和化学反应机理。试图帮助读者正确理解抗氧化反应的化学本质,有助于合理组合使用抗氧化检测方法获得可靠的评价结果。最后对天然抗氧化剂研究中存在的主要问题以及未来的热点方向进行了分析和展望。
Abstract: Excess reactive oxygen species (ROS) caused by mitochondrial dysfunction and adverse external stimulus would damage the liposomes, proteins, even DNA in cells, which is one of the lead causes for cancer, cardiovascular disease, rheumatoid arthritis and a variety of neurological diseases. The most important natural antioxidants are the vitamins, carotenes and polyphenol compounds in daily consumption and medicinal plants. These antioxidants can eliminate the ROS effectively and have become a research hotspot recently. This article reviews the structures and antioxidation mechanisms of these important natural antioxidants from a chemical perspective, and focuses on the available test methods of the toxicity and antioxidant properties at three levels, i.e. chemical test, cell experiments and animal experiments, respectively. We believe that this article may help the readers to understand correctly the chemical nature of the antioxidants’ antioxidation, and guide researches to choose proper test methodologies to obtain reliable evaluation results. Finally, some future opportunities and challenges in the antioxidant field are discussed to our un-derstanding.
文章引用:何慧娟, 黄娜, 曹瑞军, 孟令杰. 植物中主要抗氧化剂的结构、抗氧化机理和抗氧化性能检测[J]. 生物物理学, 2015, 3(1): 25-47. http://dx.doi.org/10.12677/BIPHY.2015.31004

参考文献

[1] Wojcik, M., Burzynska-Pedziwiatr, I. and Wozniak, L.A. (2010) A review of natural and synthetic antioxidants important for health and longevity. Current Medicinal Chemistry, 17, 3262-3288.
[2] Wu, L., Huang, Z., Qin, P., Yao, Y., Meng, X.J., Zou, J.Q., et al. (2011) Chemical characterization of a procyanidin-rich extract from sorghum bran and its effect on oxidative stress and tumor inhibition in vivo. Journal of Agricultural and Food Chemistry, 59, 8609-8615.
[3] Valko, M., Izakovic, M., Mazur, M., Rhodes, C.J. and Telser, J. (2004) Role of oxygen radicals in DNA damage and cancer incidence. Molecular and Cellular Biochemistry, 266, 37-56.
[4] Bailly, C. (2004) Active oxygen species and antioxidants in seed biology. Seed Science Research, 14, 93-107.
[5] Bhattacharjee, S. (2005) Reactive oxygen species and oxidative burst: Roles in stress, senescence and signal transduction in plants. Current Science, 89, 1113-1121.
[6] Wojtovich, A.P. and Foster, T.H. (2014) Optogenetic control of ROS production. Redox Biology, 2, 368-376.
[7] Saeidnia, S. and Abdollahi, M. (2013) Antioxidants: Friends or foe in prevention or treatment of cancer: The debate of the century. Toxicology and Applied Pharmacology, 271, 49-63.
[8] Mostafalou, S. and Abdollahi, M. (2012) Current concerns on genotoxicity of pesticides. International Journal of Pharmacology, 8, 473-474.
[9] Kou, X., Chen, Q., Li, X., Li, M.F., Kan, C., Chen, B.R., et al. (2015) Quantitative assessment of bioactive compounds and the antioxidant activity of 15 jujube cultivars. Food Chemistry, 173, 1037-1044.
[10] Pandey, K.B. and Rizvi, S.L. (2009) Plant polyphenols as dietary antioxidants in human health and disease. Oxidative Medicine and Cellular Longevity, 2, 270-278.
[11] Leopoldini, M., Russo, N. and Toscano, M. (2011) The molecular basis of working mechanism of natural polyphenolic antioxidants. Food Chemistry, 125, 288-306.
[12] Namal Senanayake, S.P.J. (2013) Green tea extract: Chemistry, antioxidant properties and food applications—A review. Journal of Functional Foods, 5, 1529-1541.
[13] Maqsood, S., Benjakul, S., Abushelaibi, A. and Alam, A. (2014) Phenolic compounds and plant phenolic extracts as natural antioxidants in prevention of lipid oxidation in seafood: A detailed review. Comprehensive Reviews in Food Science and Food Safety, 13, 1125-1140.
[14] White, P., Oliveira, R., Oliveira, A., et al. (2014) Antioxidant activity and mechanisms of action of natural compounds isolated from lichens: A systematic review. Molecules, 19, 14496-14527.
[15] Falowo, A.B., Fayemi, P.O. and Muchenje, V. (2014) Natural antioxidants against lipid-protein oxidative deterioration in meat and meat products: A review. Food Research International, 64, 171-181.
[16] Rietjens, I.M.C.M., Koeman, J.H., Boersma, M.G., et al. (2002) The pro-oxidant chemistry of the natural antioxidants vitamin C, vitamin E, carotenoids and flavonoids. Environmental Toxicology and Pharmacology, 11, 321-333.
[17] Bandera, E.V., Freudenheim, J.L., Marshall, J.R., Zielezny, M., Priore, R.L., Brasure, J., et al. (1997) Diet and alcohol consumption and lung cancer risk in the New York State Cohort (United States). Cancer Causes & Control, 8, 828- 840.
[18] Dachs, G.U., Munn, D.G., Carr, A.C., Vissers, M.C. and Robinson, B.A. (2014) Consumption of vitamin C is below recommended daily intake in many cancer patients and healthy volunteers in Christchurch. The New Zealand Medical Journal, 127, 73-76.
[19] Padayatty, S.J., Sun, H., Wang, Y., et al. (2004) Vitamin C pharmacokinetics: Implications for oral and intravenous use. Annals of Internal Medicine, 140, 533-537.
[20] Paul, B.N., Sarkar, S. and Mohanty, S.N. (2004) Dietary vitamin E requirement of mrigal, Cirrhinus mrigala fry. Aquaculture, 242, 529-536.
[21] Cuce, G., Çetinkaya, S., Koc, T., et al. (2015) Chemoprotective effect of vitamin E in cyclophosphamide-induced hepatotoxicity in rats. Chemico-Biological Interactions, 232, 7-11.
[22] Tesoriere, L., D’Arpa, D., Maggio, A., Giaccone, V., Pedone, E. and Livrea, M.A. (1998) Oxidation resis-tance of LDL is correlated with vitamin E status in β-thalassemia intermedia. Atherosclerosis, 137, 429-435.
[23] de Waart, F.G., Moser, U. and Kok, F.J. (1997) Vitamin E supplementation in elderly lowers the oxidation rate of linoleic acid in LDL. Atherosclerosis, 133, 255-263.
[24] Saremi, A. and Arora, R. (2010) Vitamin E and cardiovascular disease. American Journal of Therapeutics, 17, e56- e65.
[25] El-Shenawy, N.S., Al-Harbi, M.S. and Hamza, R.Z. (2015) Effect of vitamin E and selenium separately and in combination on biochemical, immunological and histological changes induced by sodium azide in male mice. Experimental and Toxicologic Pathology, 67, 65-76.
[26] Lippman, S.M., Klein, E.A., Goodman, P.J., et al. (2009) Effect of selenium and vitamin E on risk of prostate cancer and other cancers the selenium and vitamin E cancer prevention trial (SELECT). JAMA—Journal of the American Medical Association, 301, 39-51.
[27] Klein Jr., E.A., Thompson, I.M., Tangen, C.M., et al. (2011) Vitamin E and the risk of prostate cancer the selenium and vitamin E cancer prevention trial (SELECT). JAMA-Journal of the American Medical Association, 306, 1549-1556.
[28] Choo, Y.M., Yap, S.C., Ooi, C.K., Ma, A.N., Goh, S.H. and Ong, A.S.H. (1996) Recovered oil from palm-pressed fiber: A good source of natural carotenoids, vitamin E, and sterols. Journal of the American Oil Chemists’ Society, 73, 599-602.
[29] Wolf, G. (1992) Retinoids and carotenoids as inhibitors of carcinogenesis and induces of cell-cell communication. Nutrition Reviews, 50, 270-274.
[30] Bolhassani, A., Khavari, A. and Bathaie, S.Z. (2014) Saffron and natural carotenoids: Biochemical activities and anti- tumor effects. Biochimica et Biophysica Acta (BBA)-Reviews on Cancer, 1845, 20-30.
[31] Hernández-Ortega, M., Ortiz-Moreno, A., Hernández-Navarro, M.D., et al. (2012) Antioxidant, antinociceptive, and anti-inflammatory effects of carotenoids extracted from dried pepper (Capsicum annuum L.). Journal of Biomedicine and Biotechnology, 2012, Article ID: 524019.
[32] Molnár, P., Deli, J., Tanaka, T., Kann, Y., Tani, S., Gyémánt, N., et al. (2009) Carotenoids with anti-Helicobacter pylori activity from Golden delicious apple. Phytotherapy Research, 24, 644-648.
[33] Tanaka, T., Shnimizu, M. and Moriwaki, H. (2012) Cancer chemoprevention by carotenoids. Molecules, 17, 3202- 3242.
[34] Cao, K., Zheng, A., Xu, J., Li, H., Liu, J., Peng, Y., et al. (2014) AMPK activation prevents prenatal stress-induced cognitive impairment: Modulation of mitochondrial content and oxidative stress. Free Radical Biology and Medicine, 75, 156-166.
[35] Sun, L., Luo, C. and Liu, J. (2014) Hydroxytyrosol induces apoptosis in human colon cancer cells through ROS generation. Food & Function, 5, 1909-1914.
[36] Wang, B., Sun, J., Ma, Y., Wu, G.R., Tian, Y.J., Shi, Y.H. and Le, G.W. (2014) Resveratrol preserves mitochondrial function, stimulates mitochondrial biogenesis, and attenuates oxidative stress in regulatory T cells of mice fed a high- fat diet. Journal of Food Science, 79, H1823-H1831.
[37] Dreosti, I.E. (2000) Antioxidant polyphenols in tea, cocoa, and wine. Nutrition, 16, 692-694.
[38] Shi, L., Liu, Y., Tan, D., Yan, T.C., Song, D.Q., Hou, M.X. and Meng, X.J. (2014) Blueberry anthocyanins ameliorate cyclophosphamide-induced liver damage in rats by reducing inflammation and apoptosis. Journal of Functional Foods, 11, 71-81.
[39] Bhullar, K.S. and Rupasinghe, H.P.V. (2015) Antioxidant and cytoprotective properties of partridgeberry polyphenols. Food Chemistry, 168, 595-605.
[40] Roginsky, V., Barsukova, T., Hsu, C.F. and Kilmartin, P.A. (2003) Chain-breaking antioxidant activity and cyclic voltammetry characterization of polyphenols in a range of green, oolong, and black teas. Journal of Agricultural and Food Chemistry, 51, 5798-5802.
[41] Wu, Y.X. and Andreas, V.T. (2002) Impact of fungicides on active oxygen species and antioxidant enzymes in spring barley (Hordeum vulgare L.) exposed to ozone. Environmental Pollution, 116, 37-47.
[42] Leopoldini, M., Marino, T., Russo, N. and Toscano, M. (2004) Density functional computations of the energetic and spectroscopic parameters of quercetin and its radicals in the gas phase and in solvent. Theoretical Chemistry Accounts: Theory, Computation, and Modeling, 111, 210-216.
[43] Leopoldini, M., Russo, N., Chiodo, S. and Toscano, M. (2006) Iron chelation by the powerful antioxidant flavonoid quercetin. Journal of Agricultural and Food Chemistry, 54, 6343-6351.
[44] Hotta, H., Sakamoto, H., Nagano, S., Osakai, T. and Tsujino, Y. (2001) Unusually large numbers of electrons for the oxidation of polyphenolic antioxidants. Biochimica et Biophysica Acta, 1526, 159-167.
[45] Pastor, N., Weinstein, H., Jamison, E. and Brenowitz, M. (2000) A detailed interpretation of OH radical footprints in a TBP-DNA complex reveals the role of dynamics in the mechanism of sequence-specific binding. Journal of Molecular Biology, 304, 55-68.
[46] Huang, D., Ou, B. and Prior, R.L. (2005) The chemistry behind antioxidant capacity assays. Journal of Agricultural and Food Chemistry, 53, 1841-1856.
[47] Prior, R.L., Wu, X. and Schaich, K. (2005) Standardized methods for the determination of antioxidant capacity and phenolics in foods and dietary supplements. Journal of Agricultural and Food Chemistry, 53, 4290-4302.
[48] Amadou, I., Le, G., Amza, T., Sun, J. and Shi, Y.H. (2013) Purification and characterization of foxtail millet-derived peptides with antioxidant and antimicrobial activities. Food Research International, 51, 422-428.
[49] Milella, L., Bader, A., De Tommasi, N., Russo, D. and Braca, A. (2014) Antioxidant and free radical-scavenging activity of constituents from two Scorzonera species. Food Chemistry, 160, 298-304.
[50] Smolskaitė, L., Venskutonis, P.R. and Talou, T. (2015) Comprehensive evaluation of antioxidant and antimicrobial properties of different mushroom species. LWT-Food Science and Technology, 60, 462-471.
[51] Ikawa, M., Schaper, T.D., Dollard, C.A. and Sasner, J.J. (2003) Utilization of Folin-Ciocalteu phenol reagent for the detection of certain nitrogen compounds. Journal of Agricultural and Food Chemistry, 51, 1811-1815.
[52] Lee, E.J., Nomura, N., Patil, B.S. and Yoo, K.S. (2014) Measurement of total phenolic content in wine using an automatic Folin-Ciocalteu assay method. International Journal of Food Science & Technology, 49, 2364-2372.
[53] Rover, M.R. and Brown, R.C. (2013) Quantification of total phenols in bio-oil using the Folin-Ciocalteu method. Journal of Analytical and Applied Pyrolysis, 104, 366-371.
[54] Sun, L., Gao, W., Zhang, M., Li, C., Wang, A.G., Su, Y.L. and Ji, T.F. (2014) Composition and antioxidant activity of the anthocyanins of the fruit of Berberis heteropoda schrenk. Molecules, 19, 19078-19096.
[55] Ilaiyaraja, N., Likhith, K.R., Sharath Babu, G.R. and Khanum, F. (2015) Optimisation of extraction of bioactive compounds from Feronia limonia (wood apple) fruit using response surface methodology (RSM). Food Chemistry, 173, 348-354.
[56] Benzie, I.F.F. and Strain, J.J. (1996) The ferric reducing ability of plasma (FRAP) as a measure of “antioxidant power”: The FRAP assay. Analytical Biochemistry, 239, 70-76.
[57] Naguib, Y.M.A. (2000) A fluorometric method for measurement of oxygen radical-scavenging activity of water-soluble antioxidants. Analytical Biochemistry, 284, 93-98.
[58] Ou, B., Hampsch-Woodill, M. and Prior, R.L. (2001) Development and validation of an improved oxygen radical absorbance capacity assay using fluorescein as the fluorescent probe. Journal of Agricultural and Food Chemistry, 49, 4619-4626.
[59] Atala, E., Aspée, A., Speisky, H., Lissi, E. and López-Alarcón, C. (2013) Antioxidant capacity of phenolic compounds in acidic medium: A pyrogallol red-based ORAC (oxygen radical absorbance capacity) assay. Journal of Food Composition and Analysis, 32, 116-125.
[60] Roginsky, V. and Lissi, E. (2005) Review of methods to determine chain-breaking antioxidant activity in food. Food Chemistry, 92, 235-254.
[61] Amarowicz, R., Pegg, R.B., Rahimi-Moghaddam, P., Barl, B. and Weil, J.A. (2004) Free-radical scavenging capacity and antioxidant activity of selected plant species from the Canadian prairies. Food Chemistry, 84, 551-562.
[62] Di Majo, D., La Guardia, M., Giammanco, S., La Neve, L. and Giammanco, M. (2008) The antioxidant capacity of red wine in relationship with its polyphenolic constituents. Food Chemistry, 111, 45-49.
[63] Seljeskog, E., Hervig, T. and Mansoor, M.A. (2006) A novel HPLC method for the measurement of thiobarbituric acid reactive substances (TBARS). A comparison with a commercially available kit. Clinical Biochemistry, 39, 947-954.
[64] Rebolledo, A.E.D., Pastor, F.M., Santos, M.R.F., et al. (2009) Comparison of the TBARS assay and BODIPY C11 probes for assessing lipid peroxidation in red deer spermatozoa. Reproduction in Domestic Animinals, 45, 360-368.
[65] Fernandes, A.S., Gaspar, J., Cabral, M.F., Caneiras, C., Guedes, R., Rueff, J., et al. (2007) Macrocyclic copper(II) complexes: Superoxide scavenging activity, structural studies and cytotoxicity evaluation. Journal of Inorganic Biochemistry, 101, 849-858.
[66] Skandrani, I., Bouhlel, I., Limem, I., Boubaker, J., Bhouri, W., Neffati, A., et al. (2009) Moricandia arvensis extracts protect against DNA damage, mutagenesis in bacteria system and scavenge the superoxide anion. Toxicology in Vitro, 23, 166-175.
[67] Fernandes, D.C., Wosniak, J., Pescatore, L.A., et al. (2006) Analysis of DHE-derived oxidation products by HPLC in the assessment of superoxide production and NADPH oxidase activity in vascular systems. American Journal of Physiology: Cell Physiology, 292, C413-C422.
[68] Ackermann, K. and Angus, S.D. (2014) A resource efficient big data analysis method for the social sciences: The case of global IP activity. Procedia Computer Science, 29, 2360-2369.
[69] Gieni, R.S., Li, Y. and Hayglass, K.T. (1995) Comparison of [3H]thymidine incorporation with MTT- and MTS-based bioassays for human and murine IL-2 and IL-4 analysis tetrazolium assays provide markedly enhanced sensitivity. Journal of Immunological Methods, 187, 85-93.
[70] Fernandez-Sanchez, M., Del, C.A., Salido, G.M. and González, A. (2009) Ethanol exerts dual effects on calcium homeostasis in CCK-8-stimulated mouse pancreatic acinar cells. BMC Cell Biology, 10, 77.
[71] Wang, L., Sun, J., Horvat, M., Koutalistras, N., Johnston, B. and Ross Sheil, A.G. (1996) Evaluation of MTS, XTT, MTT and 3HTdR incorporation for assessing hepatocyte density, viability and proliferation. Methods in Cell Science, 18, 249-255.
[72] Goodwin, C.J., Holt, S.J., Downes, S. and Marshal, N.J. (1995) Microculture tetrazolium assays: A comparison between two new tetrazolium salts, XTT and MTS. Journal of Immunological Methods, 179, 95-103.
[73] Ngamwongsatit, P., Banada, P.P., Panbangred, W., et al. (2008) WST-1-based cell cytotoxicity assay as a substitute for MTT-based assay for rapid detection of toxigenic Bacillus species using CHO cell line. Journal of Microbiological Methods, 73, 211-215.
[74] Tan, A.S. and Berridge, M.V. (2000) Superoxide produced by activated neutrophils efficiently reduces the tetrazolium salt, WST-1 to produce a soluble formazan: A simple colorimetric assay for measuring respiratory burst activation and for screening anti-inflammatory agents. Journal of Immunological Methods, 238, 59-68.
[75] Chaieb, K., Zmantar, T., Souiden, Y., Mahdouani, K. and Bakhrouf, A. (2011) XTT assay for evaluating the effect of alcohols, hydrogen peroxide and benzalkonium chloride on bio film formation of Staphylococcus epidermidis. Microbial Pathogenesis, 50, 1-5.
[76] Arockiaraj, J., Palanisamy, R., Bhatt, P., et al. (2014) A novel murrel Channa striatus mitochondrial manganese superoxide dismutase: Gene silencing, SOD activity, superoxide anion production and expression. Fish Physiology and Biochemistry, 40, 1937-1955.
[77] Mendoza-Núñez, V.M., Hernández-Monjaraz, B., Santiago-Osorio, E., et al. (2014) Tai Chi exercise increases SOD activity and total antioxidant status in saliva and is linked to an improvement of periodontal disease in the elderly. Oxidative Medicine and Cellular Longevity, 2014, Article ID: 603853.
[78] Orbea, A., Ortiz-Zarragoitia, M., Sole, M., Porte, C. and Cajaraville, M.P. (2002) Antioxidant enzymes and peroxisome proliferation in relation to contaminant body burdens of PAHs and PCBs in bivalve molluscs, crabs and fish from the Urdaibai and Plentzia estuaries (Bay of Biscay). Aquatic Toxicology, 58, 75-98.
[79] Janknegt, P.J., Rijstenbil, J.W., van de Poll, W.H., et al. (2007) A comparison of quantitative and qualitative superoxide dismutase assays for application to low temperature microalgae. Journal of Photochemistry and Photobiology B: Biology, 87, 218-226.
[80] Cohen, G., Kim, M. and Ogwu, V. (1996) A modified catalase assay suitable for a plate reader and for the analysis of brain cell cultures. Journal of Neuroscience Methods, 67, 53-56.
[81] Ukeda, H., Adachi, Y. and Sawamura, M. (2004) Flow-injection assay of catalase activity. Analytical Sciences, 20, 471-474.
[82] Özyürek, M., Baki, S., Güngör, N., Esin Çelik, S., Güçlü, K. and Apak, R. (2012) Determination of biothiols by a novel on-line HPLC-DTNB assay with post-column detection. Analytica Chimica Acta, 750, 173-181.
[83] Yu, S., Yin, Y., Zhu, J., et al. (2010) A modulatory bifunctional artificial enzyme with both SOD and GPx activities based on a smart star-shaped pseudo-block copolymer. Soft Matter, 6, 5342-5350.
[84] Foyer, C.H. and Halliwell, B. (1976) The Presence of glutathione and glutathione reductase in chloroplasts: A proposed role in ascorbic-acid metabolism. Planta, 133, 21-25.
[85] Norman, H.A. and Pillai, P. (1996) High-performance liquid chromatographic resolution of NADP+ after induction of fluorescence and its application to assay for an NADPH-dependent enzyme: Application to the determination of glutathione reductase activity in plant leaf extracts. Analytical Biochemistry, 237, 30-36.
[86] Sinaei, M. and Rahmanpour, S. (2013) Evaluation of glutathione S-transferase activity as a biomarker of PAH pollution in mudskipper, Boleophthalmus dussumieri, Persian Gulf. Bulletin of Environmental Contamination and Toxicology, 90, 369-374.
[87] Zhang, Y.P., Song, D.N., Wu, H.H., et al. (2014) Effect of dietary cadmium on the activity of glutathione S-transferase and carboxylesterase in different developmental stages of the Oxya chinensis (Orthoptera: Acridoidea). Environmental Entomology, 43, 171-177.
[88] Ivan, A.L.M., Campanini, M.Z., Martinez, R.M., et al. (2014) Pyrrolidine dithiocarbamate inhibits UVB-induced skin inflammation and oxidative stress in hairless mice and exhibits antioxidant activity in vitro. Journal of Photochemistry and Photobiology B: Biology, 138, 124-133.
[89] Piao, M.J., Kang, K.A., Kim, K.C., et al. (2013) Diphlorethohydroxycarmalol attenuated cell damage against UVB radiation via enhancing antioxidant effects and absorbing UVB ray in human HaCaT keratinocytes. Environmental Toxicology and Pharmacology, 36, 680-688.
[90] Liu, J., Hou, C., Lee, S., Chuang, Y. and Lin, C.C. (2011) Antioxidant effects and UVB protective activity of Spirulina (Arthrospira platensis) products fermented with lactic acid bacteria. Process Biochemistry, 46, 1405-1410.
[91] Salucci, S., Burattini, S., Curzi, D., et al. (2014) Antioxidants in the prevention of UVB-induced keratynocyte apoptosis. Journal of Photochemistry and Photobiology B: Biology, 141, 1-9.
[92] Silva, M.A., Trevisan, G., Hoffmeister, C., et al. (2014) Anti-inflammatory and antioxidant effects of Aloe saponaria Haw in a model of UVB-induced paw sunburn in rats. Journal of Photochemistry and Photobiology B: Biology, 133, 47-54.
[93] Biasibetti, M., Rojas, D.B., Hentschke, V.S., et al. (2014) The influence of low-level laser therapy on parameters of oxidative stress and DNA damage on muscle and plasma in rats with heart failure. Lasers in Medical Science, 29, 1895-1906.
[94] Sheweita, S.A., Abd, E.M. and Bastawy, M. (2001) Carbon tetrachloride-induced changes in the activity of phase II drug-metabolizing enzyme in the liver of male rats: Role of antioxidants. Toxicology, 165, 217-224.
[95] Celik, I., Tuluce, Y. and Turker, M. (2006) Antioxidant and immune potential marker enzymes assessment in the various tissues of rats exposed to indoleacetic acid and kinetin: A drinking water study. Pesticide Biochemistry and Physiology, 86, 180-185.
[96] Celik, I., Turker, M. and Tuluce, Y. (2007) Abcisic acid and gibberellic acid cause increased lipid peroxidation and fluctuated antioxidant defense systems of various tissues in rats. Journal of Hazardous Materials, 148, 623-629.
[97] Kazeem, M.I., Akanji, M.A., Yakubu, M.T. and Tom Ashafa, A.O. (2013) Protective effect of free and bound polyphenol extracts from ginger (Zingiber officinale Roscoe) on the hepatic antioxidant and some carbohydrate metabolizing enzymes of streptozotocin-induced diabetic rats. Evidence-Based Complementary and Alternative Medicine, 2013, Article ID: 935486.
[98] Shanmugam, K.R., Mallikarjuna, K., Nishanth, K., Kuo, C.H. and Reddy, K.S. (2011) Protective effect of dietary ginger on antioxidant enzymes and oxidative damage in experimental diabetic rat tissues. Food Chemistry, 124, 1436- 1442.
[99] Li, Z.L., Mo, L., Le, G. and Shi, Y. (2014) Oxidized casein impairs antioxidant defense system and induces hepatic and renal injury in mice. Food and Chemical Toxicology, 64, 86-93.
[100] Psotova, J., Vecera, R., Zdarilova, A., et al. (2006) Safety assessment of sanguiritrin, alkaloid fraction of Macleaya cordata, in rats. Veterinarni Medicina-Czech, 51, 145-155.
[101] Diaz-Araya, G., Godoy, L., Naranjo, L., Squella, A., Letelier, M.E. and Núñez-Vergara, L.J. (1998) Antioxidant effects of 1, 4-dihydropyridine and nitroso aryl derivatives on the Fe3+/ascorbate-stimulated lipid peroxidation in rat brain slices. General Pharmacology, 31, 385-391.