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Articles

Effect of Pretreatments on Hydrolysis Efficiency and Antioxidative Activity of Hydrolysates Produced from Bighead Carp (Aristichthys nobilis)

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References

  • Adler-Nissen, J. 1986. Some fundamental aspects of food protein hydrolysis. In: Enzymic Hydrolysis of Food Proteins. Adler-Nissen, J. (Ed.). New York, NY: Elsevier Science. Pp. 9–24.
  • Amarowicz, R., and Shahidi, F. 1997. Antioxidant activity of peptide fractions of capelin protein hydrolysates. Food Chem. 58: 355–359.
  • Bhaskar, N., Benila, T., Radha, C., and Lalitha, R. G. 2008. Optimization of enzymatic hydrolysis of visceral waste proteins of catla (Catla catla) for preparing protein hydrolysate using a commercial protease. Bioresource Technol. 99: 335–343.
  • Bougatef, A., Nedjar-Arroume, N., Manni, L., Ravallec, R., Barkia, A., Guillochon, D., and Nasri, M. 2010. Purification and identification of novel antioxidant peptides from enzymatic hydrolysates of sardinelle (Sardinella aurita) by-products proteins. Food Chem. 118: 559–565.
  • Boyer, R. F., and McCleary, C. J. 1987. Superoxide ion as a primary reductant in ascorbate-mediated ferretin iron release. Free Radical Bio. Med. 3: 389–395.
  • Braginskaya, F. I., and Elpiner, I. 1963. Complexes of protein molecules with polyanions and effect of ultrasonic waves. Biophysics-USSR 8: 33–41.
  • Chen, L., Chen, J., Ren, J., and Zhao, M. 2011. Effects of ultrasound pretreatment on the enzymatic hydrolysis of soy protein isolates and on the emulsifying properties of hydrolysates. J. Agric. Food Chem. 59: 2600–2609.
  • Chobert, J. M., Bertrand-Harb, C., and Nicolas, M. G. 1988. Solubility and emulsifying properties of caseins and whey proteins modified enzymically by trypsin. J. Agric. Food Chem. 36: 883–892.
  • Dong, S., Zeng, M., Wang, D., Liu, Z., Zhao, Y., and Yang, H. 2008. Antioxidant and biochemical properties of protein hydrolysates prepared from silver carp (Hypophthalmichthys molitrix). Food Chem. 107: 1485–1493.
  • Foh, M. B. K., Amadou, I., Foh, B. M., Kamara, M. T., and Xia, W. 2010a. Functionality and antioxidant properties of tilapia (Oreochromis niloticus) as influenced by the degree of hydrolysis. Int. J. Mol. Sci. 11: 1851–1869.
  • Foh, M. B. K., Jiang, Q., Amadou, I., and Xia, W. 2010b. Influence of ultrafiltration on antioxidant activity of tilapia (Oreochromis niloticus) protein hydrolysate. Adv. J. Food Sci. Technol. 2: 227–235.
  • Gbogouri, G., Linder, M., Fanni, J., and Parmentier, M. 2004. Influence of hydrolysis degree on the functional properties of salmon byproducts hydrolysates. J. Food Sci. 69: C615–C622.
  • Guerard, F., Dufosse, L., De La Broise, D., and Binet, A. 2001. Enzymatic hydrolysis of proteins from yellowfin tuna (Thunnus albacares) wastes using Alcalase. J. Mol. Catal. B-Enzym. 11: 1051–1059.
  • Han, I. H., Swanson, B. G., and Baik, B.-K. 2007. Protein digestibility of selected legumes treated with ultrasound and high hydrostatic pressure during soaking. Cereal Chem. 84: 518–521.
  • Hoyle, N. T., and Merritt, J. 1994. Quality of fish protein hydrolysates from herring (Clupea harengus). J. Food Sci. 59: 76–79.
  • Imai, M., Ikari, K., and Suzuki, I. 2004. High-performance hydrolysis of cellulose using mixed cellulase species and ultrasonication pretreatment. Biochem. Eng. J. 17: 79–83.
  • Jao, C.-L., and Ko, W.-C. 2002. 1, 1-Diphenyl-2-picrylhydrazyl (DPPH) radical scavenging by protein hydrolyzates from tuna cooking juice. Fisheries Sci. 68: 430–435.
  • Je, J.-Y., Park, P.-J., and Kim, S.-K. 2005. Antioxidant activity of a peptide isolated from Alaska pollack (Theragra chalcogramma) frame protein hydrolysate. Food Res. Int. 38: 45–50.
  • Keshwani, D. R., Cheng, J. J., Burns, J. C., Li, L., and Chiang, V. 2007. Microwave pretreatment of switchgrass to enhance enzymatic hydrolysis. Retrieved from http://digitalcommons.unl.edu/biosysengpres/35/
  • Kjeldahl, J. 1883. New method for the determination of nitrogen. Chem. News 48: 101–102.
  • Kristinsson, H. G., and Rasco, B. A. 2000a. Fish protein hydrolysates: Production, biochemical, and functional properties. Crit. Rev. Food Sci. Nutr. 40: 43–81.
  • Kristinsson, H. G., and Rasco, B. A. 2000b. Biochemical and functional properties of Atlantic salmon (Salmo salar) muscle proteins hydrolyzed with various alkaline proteases. J Agric. Food Chem. 48: 657–666.
  • Larhed, M., Moberg, C., and Hallberg, A. 2002. Microwave-accelerated homogeneous catalysis in organic chemistry. Accounts Chem. Res. 35: 717–727.
  • Li, B., Chen, F., Wang, X., Ji, B., and Wu, Y. 2007. Isolation and identification of antioxidative peptides from porcine collagen hydrolysate by consecutive chromatography and electrospray ionization–mass spectrometry. Food Chem. 102: 1135–1143.
  • Li, L., Wang, J., Zhao, M., Cui, C., and Jiang, Y. 2006. Artificial neural network for production of antioxidant peptides derived from bighead carp muscles with alcalase. Food Sci. Biotechnol. 44: 441–448.
  • Li, Y., Jiang, B., Zhang, T., Mu, W., and Liu, J. 2008. Antioxidant and free radical-scavenging activities of chickpea protein hydrolysate (CPH). Food Chem. 106: 444–450.
  • Liaset, B., Nortvedt, R., Lied, E., and Espe, M. 2002. Studies on the nitrogen recovery in enzymic hydrolysis of Atlantic salmon (Salmo salar, L.) frames by Protamex™ protease. Process Biochem. 37: 1263–1269.
  • Lowry, O. H., Rosebrough, N. J., Farr, A. L., and Randall, R. J. 1951. Protein measurement with the Folin phenol reagent. J. Biol. Chem. 193: 265–275.
  • Mendis, E., Rajapakse, N., and Kim, S.-K. 2005. Antioxidant properties of a radical-scavenging peptide purified from enzymatically prepared fish skin gelatin hydrolysate. J. Agric. Food Chem. 53: 581–587.
  • Miller, N. J., and Rice-Evans, C. A. 1997. Factors influencing the antioxidant activity determined by the ABTS+ radical cation assay. Free Radical Res. 26: 195–199.
  • Murase, H., Nagao, A., and Terao, J. 1993. Antioxidant and emulsifying activity of N-(long-chain-acyl) histidine and N-(long-chain-acyl) carnosine. J. Agric. Food Chem. 41: 1601–1604.
  • Nguyen, H. T. M., Sylla, K. S. B., Randriamahatody, Z., Donnay-Moreno, C., Moreau, J., Tran, L. T., and Bergé, J. P. 2011. Enzymatic hydrolysis of yellowfin tuna (Thunnus albacares) by-products using Protamex protease. Food Technol. Biotech. 49: 48–55.
  • Nilsang, S., Lertsiri, S., Suphantharika, M., and Assavanig, A. 2005. Optimization of enzymatic hydrolysis of fish soluble concentrate by commercial proteases. J. Food Eng. 70: 571–578.
  • Pownall, T. L., Udenigwe, C. C., and Aluko, R. E. 2010. Amino acid composition and antioxidant properties of pea seed (Pisum sativum L.) enzymatic protein hydrolysate fractions. J. Agric. Food Chem. 58: 4712–4718.
  • Pramanik, B. N., Mirza, U. A., Hain, Y., Liu, Y. H., Bartner, P. L., Weber, P. C., and Bose, A. K. 2002. Microwave-enhanced enzyme reaction for protein mapping by mass spectrometry: A new approach to protein digestion in minutes. Protein Sci. 11: 2676–2687.
  • Raghavan, S., and Kristinsson, H. G. 2008. Antioxidative efficacy of alkali-treated tilapia protein hydrolysates: A comparative study of five enzymes. J. Agric. Food Chem. 56: 1434–1441.
  • Ren, J., Zhao, M., Shi, J., Wang, J., Jiang, Y., Cui, C., Kakuda, Y., and Xue, S. J. 2008. Optimization of antioxidant peptide production from grass carp sarcoplasmic protein using response surface methodology. LWT-Food Sci. Technol. 41: 1624–1632.
  • Saiga, A. I., Tanabe, S., and Nishimura, T. 2003. Antioxidant activity of peptides obtained from porcine myofibrillar proteins by protease treatment. J. Agric. Food Chem. 51: 3661–3667.
  • Sathivel, S., Bechtel, P., Babbitt, J., Smiley, S., Crapo, C., Reppond, K., and Prinyawiwatkul, W. 2003. Biochemical and functional properties of herring (Clupea harengus) byproduct hydrolysates. J. Food Sci. 68: 2196–2200.
  • Sathivel, S., Smiley, S., Prinyawiwatkul, W., and Bechtel, P. J. 2005. Functional and nutritional properties of red salmon (Oncorhynchus nerka) enzymatic hydrolysates. J. Food Sci. 70: C401–C406.
  • Shahidi, F., Han, X.-Q., and Synowiecki, J. 1995. Production and characteristics of protein hydrolysates from capelin (Mallotus villosus). Food Chem. 53: 285–293.
  • Shen, Q., Guo, R., Dai, Z., and Zhang, Y. 2012. Investigation of enzymatic hydrolysis conditions on the properties of protein hydrolysate from fish muscle (Collichthys niveatus) and evaluation of its functional properties. J. Agric. Food Chem. 60: 5192–5198.
  • Suetsuna, K., Ukeda, H., and Ochi, H. 2000. Isolation and characterization of free radical scavenging activities peptides derived from casein. J. Nutr. Biochem. 11: 128–131.
  • Taherzadeh, M. J., and Karimi, K. 2008. Pretreatment of lignocellulosic wastes to improve ethanol and biogas production: A review. Int. J. Mol. Sci. 9: 1621–1651.
  • Thiansilakul, Y., Benjakul, S., and Shahidi, F. 2007. Antioxidative activity of protein hydrolysate from round scad muscle using Alcalase and Flavourzyme. J. Food Biochem. 31: 266–287.
  • Wang, M., Li, J., Rangarajan, M., Shao, Y., LaVoie, E. J., Huang, T.-C., and Ho, C.-T. 1998. Antioxidative phenolic compounds from sage (Salvia officinalis). J. Agric. Food Chem. 46: 4869–4873.
  • WHO. 2007. Protein and Amino Acid Requirements in Human Nutrition: Report of a Joint FAO/WHO/UNU Expert Consultation (WHO Technical Report Series 935). Geneva, Switzerland: Author. 935 p.
  • Xia, S. H., Wang, Z., and Xu, S. Y. 2007. Characteristics of (Bellamya purificata) snail foot protein and enzymatic hydrolysates. Food Chem. 101: 1188–1196.
  • Yachmenev, V., Condon, B., Klasson, T., and Lambert, A. 2009. Acceleration of the enzymatic hydrolysis of corn stover and sugar cane bagasse celluloses by low intensity uniform ultrasound. J. Biobased Mater. Bio. 3: 25–31.
  • Yang, B., Zhao, M., Shi, J., Yang, N., and Jiang, Y. 2008. Effect of ultrasonic treatment on the recovery and DPPH radical scavenging activity of polysaccharides from longan fruit pericarp. Food Chem. 106: 685–690.
  • Yu, L., Haley, S., Perret, J., Harris, M., Wilson, J., and Qian, M. 2002. Free radical scavenging properties of wheat extracts. J. Agric. Food Chem. 50: 1619–1624.
  • Zhang, W., Zhang, J., Jiang, Q., and Xia, W. 2012. Physicochemical and structural characteristics of chitosan nanopowders prepared by ultrafine milling. Carbohyd. Polym. 87: 309–313.

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