Effects of controlled-frequency moderate electric fields on pectin methylesterase and polygalacturonase activities in tomato homogenate

Food Chemistry - Tập 199 - Trang 265-272 - 2016
Chaminda P. Samaranayake1, Sudhir K. Sastry1
1Department of Food, Agricultural and Biological Engineering, The Ohio State University, 590 Woody Hayes Drive, Columbus, OH 43210, United States

Tài liệu tham khảo

Anthon, 2006, Characterization of the temperature activation of pectin methylesterase in green beans and tomatoes, Journal of Agricultural and Food Chemistry, 54, 204, 10.1021/jf051877q Anthon, 2008, Combined enzymatic and colorimetric method for determining the uronic acid and methylester content of pectin: Application to tomato products, Food Chemistry, 110, 239, 10.1016/j.foodchem.2008.01.042 Anthon, 2002, Thermal inactivation of pectin methylesterase, polygalacturonase, and peroxidase in tomato juice, Journal of Agricultural and Food Chemistry, 50, 6153, 10.1021/jf020462r Astrakas, 2012, Structural destabilization of chignolin under the influence of oscillating electric fields, Journal of Applied Physics, 111, 074702, 10.1063/1.3699389 Bagchi, 2001, Relation between orientational correlation time and the self-diffusion coefficient of tagged probes in viscous liquids: A density functional theory analysis, Journal of Chemical Physics, 115, 2207, 10.1063/1.1385558 Broeck, 2000, Effect of temperature and/or pressure on tomato pectinesterase activity, Journal of Agricultural and Food Chemistry, 48, 551, 10.1021/jf990569n Budi, 2007, Effect of frequency on insulin response to electric field stress, Journal of Physical Chemistry B, 111, 5748, 10.1021/jp067248g Castro, 2004, The effect of electric field on important food-processing enzymes: Comparison of inactivation kinetics under conventional and ohmic heating, Journal of Food Science, 69, C696, 10.1111/j.1365-2621.2004.tb09918.x Crelier, 2001, Tomato (Lycopersicon esculentum) pectin methylesterase and polygalacturonase behaviors regarding heat- and pressure-induced inactivation, Journal of Agricultural and Food Chemistry, 49, 5566, 10.1021/jf010202u Fachin, 2002, Comparative study of the inactivation kinetics of pectinmethylesterase in tomato juice and purified form, Biotechnology Progress, 18, 739, 10.1021/bp0155080 Federici, 2001, Structural requirements of endopolygalacturonase for the interaction with PGIP (polygalacturonase-inhibiting protein), Proceedings of the National Academy of Sciences of the United States of America, 98, 13425, 10.1073/pnas.231473698 Fu, 2008 Held, 2015, The effects of bruising and temperature on enzyme activity and textural qualities of tomato juice, Journal of the Science of Food and Agriculture, 95, 1598, 10.1002/jsfa.6990 Huang, Y., Zhang, X., Ma, Z., Li, W., Zhou, Y., Zhou, J., Zheng, W., & Sun, C. Q. (2013). Size, separation, structural order, and mass density of molecules packing in water and ice. Scientific Reports, 3: 3005, 1–5. <http://www.nature.com/articles/srep03005>. Johannson, 2002, Crystal structure of plant pectin methylesterase, FEBS Letters, 514, 243, 10.1016/S0014-5793(02)02372-4 Kulshrestha, 2003, Frequency and voltage effects on enhanced diffusion during moderate electric field (MEF) treatment, Innovative Food Science and Emerging Technologies, 4, 189, 10.1016/S1466-8564(03)00003-1 Lankhorst, 1982, Determination of the rotational correlation time of water by proton NMR relaxation in H217O and some related results, Berichte der Bunsengesellschaft fur Physikalische Chemie, 86, 215, 10.1002/bbpc.19820860308 Leong, 2014, Effect of pulsed electric field treatment on enzyme kinetics and thermostability of endogenous ascorbic acid oxidase in carrots (Daucus carota cv. Nantes), Journal of Agricultural and Food Chemistry, 146, 538, 10.1016/j.foodchem.2013.09.096 Loghavi, 2008, Effect of moderate electric field frequency on growth kinetics and metabolic activity of Lactobacillus acidophilus, Biotechnology Progress, 24, 148, 10.1021/bp070268v Loghavi, 2009, Effect of moderate electric field frequency and growth stage on cell membrane permeability of Lactobacillus acidophilus, Biotechnology Progress, 25, 85, 10.1002/btpr.84 Meneses, 2013, Modelling of polyphenoloxidase inactivation by pulsed electric fields considering coupled effects of temperature and electric field, Innovative Food Science and Emerging Technologies, 20, 126, 10.1016/j.ifset.2012.12.009 Oey, 2010, Effect of novel food processing on fruit and vegetable enzymes, 285 Pereira, 2011, Exploring the denaturation of whey proteins upon application of moderate electric fields: A kinetic and thermodynamic study, Journal of Agricultural and Food Chemistry, 59, 11589, 10.1021/jf201727s Rao, 2007, Rheological behavior of processed fluid and semisolid foods, 223 Salengke, 2012, Pulsed electric field technology: Modeling of electric field and temperature distributions within continuous flow PEF treatment chamber, International Food Research Journal, 19, 1137 Samaranayake, 2005, Electrode and pH effects on electrochemical reactions during ohmic heating, Journal of Electroanalytical Chemistry, 577, 125, 10.1016/j.jelechem.2004.11.026 Singh, 2013, Soybean hydrophobic protein response to external electric field: A molecular modeling approach, Biomolecules, 3, 168, 10.3390/biom3010168 Somavat, 2012, Accelerated inactivation of Geobacillus stearothemophilus spores by ohmic heating, Journal of Food Engineering, 108, 69, 10.1016/j.jfoodeng.2011.07.028 Teixeira, J., & Luzar, A. (1999). Physics of Liquid Water: Structure and Dynamics. In M-C Bellissent-Funel (Ed), Hydration Processes in Biology: Theoretical and Experimental Approaches (pp. 35), Amsterdam: IOS Press. Terefe, 2005, Effects of cryostabilizers, low temperature, and freezing on the kinetics of the pectin methylesterase-catalyzed de-esterification of pectin, Journal of Agricultural and Food Chemistry, 53, 2282, 10.1021/jf048813k Vovk, 2007, Isolation of tomato pectin methylesterase and polygalacturonase on monolithic columns, Journal of Chromatography A, 1144, 90, 10.1016/j.chroma.2006.09.029 Yang, 2004, Effects of pulsed electric fields on the activity of enzymes in aqueous solution, Journal of Food Science, 69, FCT241, 10.1111/j.1365-2621.2004.tb06323.x Zareifard, M.R., Marcotte, M., Ramaswamy, H.S., & Karimi, Y. (2014). Electrical conductivity: importance and methods of measurement. In H.S. Ramaswamy, M. Marcotte, S. Sastry, & K. Abdelrahim (Eds.), Ohmic heating in food processing (pp. 22), Florida: CRC Press.