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Articles

In vitro cytoprotection of modified casein hydrolysates by plastein reaction on rat hepatocyte cells

Citoprotección in vitro de hidrolizados de caseína modificados por reacción de plasteina en células de hepatocitos de rata

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Pages 40-47 | Received 07 Nov 2012, Accepted 01 Apr 2013, Published online: 14 Jun 2013

References

  • Adebiyi, A. P., Adebiyi, A. O., Ogawa, T., & Muramoto, K. (2008). Purification and characterisation of antioxidative peptides from unfractionated rice bran protein hydrolysates. International Journal of Food Science and Technology, 43, 35−43.
  • Andrews, A. T., & Alichanidis, E. (1990). The plastein reaction revisited: Evidence for a purely aggregation reaction mechanism. Food Chemistry, 35, 243−261.
  • Çetin, E., Kanbur, M., Çetin, N., Eraslan, G., & Atasever, A. (2011). Hepatoprotective effect of ghrelin on carbon tetrachloride-induced acute liver injury in rats. Regulatory Peptides, 171, 1−5.
  • Chiu, S. C. K., & Kitts, D. D. (2004). Antioxidant characterization of caseinophosphopeptides from bovine milk. Nutraceutical beverages: Chemistry, nutrition, and health effects. In ACS Symposium Series. Washington, DC, USA: American Chemical Society.
  • Christen, Y. (2000). Oxidative stress and Alzheimer disease. The American Journal of Clinic Nutrition, 71, 621−629.
  • Chung, S. K., Osawa, T., & Kawakishi, S. (1997). Hydroxyl radical scavenging effects of species and scavengers from brown mustard (Brassica nigra). Bioscience, Biotechnology and Biochemistry, 61, 118−123.
  • Dvořák, Z., Kosina, P., Walteroá, D., Šimánek, V., Bachleda, P., & Ulrichová, J. (2003). Primary cultures of human hepatocytes as a tool in cytotoxicity studies: Cell protection against model toxins by flavonolignans obtained from Silybum marianum. Toxicology Letters, 137, 201−212.
  • El-Beshbishy, H. A. (2008). Aqueous garlic extract attenuates hepatitis and oxidative stress induced by galactosamine/lipoploysaccharide in rats. Phytotherapy Research, 22, 1372–1379.
  • Elias, R. J., Kellerby, S. S., & Decker, E. A. (2008). Antioxidant activity of proteins and peptides. Critical Reviews in Food Science and Nutrition, 48, 430−441.
  • Farmer, E. E., & Davoine, C. (2007). Reactive electrophile species. Current Opinion in Plant Biology, 10, 380−386.
  • Finkel, T., & Holbrook, N. J. (2000). Oxidants, oxidative stress and the biology of aging. Nature, 408, 239−247.
  • García-Nebot, M. J., Cilla, A., Alegría, A., & Barberá, R. (2011). Caseinophosphopeptides exert partial and site-specific cytoprotection against H2O2-induced oxidative stress in Caco-2 cells. Food Chemistry, 129, 1495−1503.
  • Hernández-Ledesma, B., Miralles, B., Amigo, L., Ramos, M., & Recio I. (2005). Identification of antioxidant and ACE-inhibitory peptides in fermented milk. Journal of the Science of Food and Agriculture, 85, 1041−1048.
  • Hogan, S., Zhang, L., Li, J. R., Wang, H. J., & Zhou, K. Q. (2009). Development of antioxidant rich peptides from milk protein by microbial proteases and analysis of their effects on lipid peroxidation in cooked beef. Food Chemistry, 117, 438−443.
  • Hu, W., Han, W., Huang, C., & Wang, M. H. (2011). Protective effect of the methanolic extract from Duchesnea indica against oxidative stress In vitro and In vivo. Environmental Toxicology and Pharmacology, 31, 42−50.
  • Ienaga, K., Park, C. H., & Yokozawa, T. (2012). Protective effect of an intrinsic antioxidant, HMH (5-hydroxy-1-methylhydantoin; NZ-419), against cellular damage of kidney tubules. Experimental and Toxicologic Pathology. doi: 10.1016/j.etp.2012.05.001
  • Jeon, S. M., Bok, S. H., Jang, M. K., Kim, Y. H., Nam, K. T., Jeong, T. S., … Choi, M. S. (2002). Comparison of antioxidant effects of naringin and probucol in cholesterol-fed rabbits. Clinica Chimica Acta, 317, 181−190.
  • Kang, K. A., Lee, K. H., Chae, S., Koh, Y. S., Yoo, B. S., Kim, J. H., … Hyun, J. W. (2005). Triphlorethol-A from Ecklonia cava protects V79–4 lung fibroblast against hydrogen peroxide induced cell damage. Free Radical Research, 39, 883−892.
  • Kehrer, J. P. (1993). Free radicals as mediators of tissue injury and disease. Critical Reviews in Toxicology, 23, 21−48.
  • Kong, B. H., Peng, X. Y., Xiong Y. L., & Zhao, X. H. (2012). Protection of lung fibroblast MRC-5 cells against hydrogen peroxide-induced oxidative damage by 0.1-2.8 kDa antioxidative peptides isolated from whey protein hydrolysate. Food Chemistry, 135, 540−547.
  • Korhonen, H. (2009). Milk-derived bioactive peptides: From science to applications. Journal of Functional Foods, 1, 177−187.
  • Kuba, M., Tana, C., Tawata, S., & Yasuda, M. (2005). Production of angiotensin-I converting enzyme inhibitory peptides from soybean protein with Monascus purpureus acid proteinase. Processing Biochemistry, 40, 2191−2196.
  • Lahart, N., O’Callaghan, Y., Aherne, A. S., O’Sullivan, D., FitzGerald, R. J., & O’Brien, N. M. (2011). Extent of hydrolysis effects on casein hydrolysate bioactivity: Evaluation using the human Jurkat T cell line. International Dairy Journal, 21, 777−782.
  • Li, Y. Y., Li, T. J., & Zhao, X. H. (2010). Preparation of Alcalase-catalyzed casein plasteins in the presence of proline addition and the ACE-inhibitory activity of the plasteins In vitro. European Food Research and Technology, 231, 197−207.
  • Lin, S. Y., Guo, Y., You, Q., Yin, Y. G., & Liu J. B. (2012). Preparation of antioxidant peptide from egg white protein and improvement of its activities assisted by high-intensity pulsed electric field. Journal of the Science of Food and Agriculture, 92, 1554−1561.
  • Moure, A., Domínguez, H., & Parajo, J. C. (2006). Antioxidant properties of ultrafiltration- recovered soy protein fractions from industrial effluents and their hydrolysates. Process Biochemistry, 41, 447−456.
  • Nsimba, R. Y., Kikuzaki, H., & Konishi, Y. (2008). Antioxidant activity of various extracts and fractions of Chenopodium quinoa and Amaranthus spp. seeds. Food Chemistry, 106, 760−766.
  • Ono, S., Kasai, D., Sugano, T., Ohba, K., & Takahashi, K. (2004). Production of water soluble antioxidative plastein from squid hepatopancreas. Journal of Oleo Science, 53, 267−273.
  • Oyaizu, M. (1988). Antioxidative activities of browning products of glucosamine fractionated by organic solvent and thin-layer chromatography. Journal of the Japanese Society for Food Science and Technology, 35, 771−775.
  • Pan, D. D., Luo, Y. K., & Tanokura, M. (2005). Antihypertensive peptides from skimmed milk hydrolysate digested by cell-free extract of Lactobacillus helveticus JCM1004. Food Chemistry, 91, 123−129.
  • Phelan, M., Aherne-Bruce, S. A., O’Sullivan, D., FitzGerald, R. J., & O’Brien, N. M. (2009). Potential bioactive effects of casein hydrolysates on human cultured cells. International Dairy Journal, 19, 279−285.
  • Rival, S. G., Fornaroli, S., Boeriu, C. G., & Wichers, H. J. (2001). Caseins and casein hydrolysates. 1. Lipoxygenase inhibitory properties. Journal of Agricultural and Food Chemistry, 49, 287−294.
  • Sakanaka, S., Tachibana, Y., Ishihara, N., & Juneja, L. R. (2005). Antioxidant properties of casein calcium peptides and their effects on lipid oxidation in beef homogenates. Journal of Agricultural and Food Chemistry, 53, 464−468.
  • Sarkar, M. K., & Sil, P. C. (2010). Prevention of tertiary butyl hydroperoxide induced oxidative impairment and cell death by a novel antioxidant protein molecule isolated from the herb, Phyllanthus niruri. Toxicology in Vitro, 24, 1711−1719.
  • Sun, H., & Zhao, X. H. (2012). Angiotensin I-converting enzyme inhibition and enzymatic resistance in vitro of casein hydrolysate treated by plastein reaction and fractionated with ethanol/water or methanol/water. International Dairy Journal, 24, 27−32.
  • Tavilani, A., Goodarzi, M. T., Vaisi-raygani, A., Salimi, S., & Hassanzadeh, T. (2008). Activity of antioxidant enzymes in seminal plasma and their relationship with lipid peroxidation of spermatozoa. International Brazilian Journal of Urology, 34, 485−491.
  • Tavares, T. G., Contreras, M. M., Amorim, M., Martín-Álvarez, P. J., Pintado, M. E., Recio, I., & Malcata, F. X. (2011). Optimisation, by response surface methodology, of degree of hydrolysis and antioxidant and ACE-inhibitory activities of whey protein hydrolysates obtained with cardoon extract. International Dairy Journal, 21, 926−933.
  • Torruco-Uco, J., Chel-Guerrero, L., Martinez-Ayala, A., Davila-Ortiz G., & Betancur-Ancona, D. (2009). Angiotensin-I converting enzyme inhibitory and antioxidant activities of protein hydrolysates from Phaseolus lunatus and Phaseolus vulgaris seeds. LWT-Food Science and Technology, 42, 1597–1604.
  • Valko, M., Leibfritz, D., Moncol, J., Cronin, M. T., Mazur, M., & Telser, J. (2007). Free radicals and antioxidants in normal physiological functions and human disease. The International Journal of Biochemistry and Cell Biology, 39, 44−84.
  • Wang, X. S., Tang, C. H., Chen, L., & Yang, X. Q. (2009). Characterization and antioxidant properties of hemp protein hydrolysates obtained with Neutrase®. Food Technology and Biotechnology, 47, 428−434.
  • Yamashita, M., Arai, S., & Fujimaki, M. (1976). Plastein reaction for food protein improvement. Journal of Agricultural and Food Chemistry, 24, 1100−1104.
  • Yue, N., Li, T. J., & Zhao, X. H. (2013). The impact of extrinsic amino acids and solvent fractionation on the in vitro antioxidant activity of plastein reaction-stressed casein hydrolysates. Food Technology and Biotechnology, 51, 224−232.
  • Zhao, X. H., & Li, Y. Y. (2009). An approach to improve ACE-inhibitory activity of casein hydrolysates with plastein reaction catalyzed by Alcalase. European Food Research and Technology, 229, 795−805.
  • Zhao, X. H., Wu, D., & Li, T. J. (2010). Preparation and radical scavenging activity of papain-catalyzed casein plasteins. Dairy Science and Technology, 90, 521−535.
  • Zhao, X. H., Wang, J. K., & Li, T. J. (2011). In vitro ACE-inhibitory and antioxidant activities of the casein hydrolysates subjected to plastein reaction with addition of three extrinsic amino acids. Biotechnology, 10, 408−414.
  • Zhuang, Y. L., & Sun, L. P. (2011). Preparation of reactive oxygen scavenging peptides from tilapia (Oreochromis niloticus) skin gelatin: Optimization using response surface methodology. Journal of Food Science, 76, C483−C489.

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