The effects of microfiltration on particle size, volatiles, protein quality and proximate compositions in pasteurized milk were studied over 7 days at 4°C. Changes in proximate compositions, pH, particle size, amino acids and volatile compounds of microfiltered and pasteurized milk (MPM) and pasteurized milk (PM) were evaluated. The MPM had lower values of proteins and total solids, and possessed higher particle size compared with PM. The D10 and D50 in MPM were individually reduced by 8.3% and 3.1% from day 0 to 7, and there were no differences for the D90. Sixty-one and 65 compounds were identified in the MPM and PM, respectively. The total contents of aliphatic hydrocarbons and alcohols in MPM decreased with storage length, while those of hydrocarbons, ketones, phenols, nitrogenous compounds and sulfide in PM increased with storage time. Other compounds clearly started to increase on day 4 and were reduced markedly by day 7. After 7 days, aliphatic hydrocarbons and alcohols decreased by 21.8% and 47.3% in MPM, while hydrocarbons, ketones and sulfide increased by 57%, 5.4% and 35.4% in PM, respectively. At the same storage time, the hydrocarbons, alcohols, aldehydes, acid and ketones were less in MPM than in PM. MPM had higher EAAI, BV and ePER values. These highlighted that microfiltration changes the compositions of volatiles and improves protein quality and stability during MPM shelf life.
| [1] | Schmidt, V. S.J, Kaufmann, V., Kulozik, U., Scherer, S. and Wenning, M., “Microbial biodiversity, quality and shelf life of microfiltered and pasteurized extended shelf life (ESL) milk from Germany, Austria and Switzerland”. Int. J. Food Microbiol. 154, 1-9, 2012.View Article PubMed |
| [2] | Caplan, Z. and Barbano, D., “Shelf life of pasteurized microfiltered milk containing 2% fat”. J Dairy Sci. 96, 8035-8046, 2013View Article PubMed |
| [3] | Fernádez Garc, L. and Riera Rodr Guez, F. A., “Combination of microfiltration and heat treatment for ESL milk production: Impact on shelf life”. J. Food Eng. 128, 1-9, 2014.View Article |
| [4] | Elwell, M. and Barbano, D., “Use of microfiltration to improve fluid milk quality,” J. Dairy Sci. 89, E20-E30, 2006.View Article |
| [5] | Tomasula, P., Mukhopadhyay, S., Datta, N., Porto-Fett, A., Call, J., Luchansky, J., Renye, J. and Tunick, M., “Pilot-scale crossflow-microfiltration and pasteurization to remove spores of Bacillus anthracis (Sterne) from milk”. J. Dairy Sci. 94, 4277-4291, 2011.View Article PubMed |
| [6] | Pereda, J., Ferragut, V., Quevedo, J., Guamis, B. and Trujillo, A., Effects of ultra-high pressure homogenization on microbial and physicochemical shelf life of milk”. J. Dairy Sci. 90, 1081-1093, 2007.View Article |
| [7] | Popov-Raljić, J. V., Lakić, N. S., Laličić-Petronijević, J. G., Barać, M. B. and Sikimić, V. M., “Color changes of UHT milk during storage”. Sensors, 8, 5961-5974, 2008.View Article PubMed |
| [8] | Fauquant, C., Briard-Bion, V., Leconte, N., Guichardant, M. and Michalski, M. C., “Membrane phospholipids and sterols in microfiltered milk fat globules”. Eur. J.Lipid Sci. Technol. 109, 1167-1173, 2007.View Article |
| [9] | Ye, A., Singh, H., Taylor, M. W. and Anema, S., “Interactions of whey proteins with milk fat globule membrane proteins during heat treatment of whole milk”. Le Lait, 84, 269-283, 2004.View Article |
| [10] | Beliciu, C. and Moraru, C., “Effect of solvent and temperature on the size distribution of casein micelles measured by dynamic light scattering”. J. Dairy Sci. 92, 1829-1839, 2009.View Article PubMed |
| [11] | Sodini, I., Remeuf, F., Haddad, S. and Corrieu, G., “The relative effect of milk base, starter, and process on yogurt texture: a review”. Crit. Rev. Food Sci. Nutr. 44, 113-137, 2004.View Article PubMed |
| [12] | Song, H. L., Food Flavour Chemistry. Beijing: Chemical Industry Press., 2008. |
| [13] | Ham, J. S., Shin, J. H., Noh, Y. B., Jeong, S. G., Han, G. S., Chae, H. S., Yoo, Y. M., Ahn, J. N., Lee, W. K. and Jo, C., “Chemical and microbiological quality, capillary electrophoresis pattern, and rennet coagulation of UHT-treated and irradiated milk”. Food Sci. Biotechnol., 17, 58-65, 2008. |
| [14] | Pedras, M. M., Tribst, A. A. and Cristianini, M., “Effects of high-pressure homogenisation on physicochemical characteristics of partially skimmed milk,” Int. J. Food Sci. Technol. 49, 861-866, 2014.View Article |
| [15] | Valero, E., Villamiel, M., Miralles, B., Sanz, J. and Martınez-Castro, I., “Changes in flavour and volatile components during storage of whole and skimmed UHT milk”. Food Chem. 72, 51-58, 2001.View Article |
| [16] | Lacroix, M., Bon, C., Bos, C., L Onil, J., Benamouzig, R., Luengo, C., Fauquant, J., Tom, D. and Gaudichon, C., “Ultra high temperature treatment, but not pasteurization, affects the postprandial kinetics of milk proteins in humans”. The J.Nutri. 138, 2342-2347, 2008.View Article PubMed |
| [17] | Debon, J., Prud Ncio, E. S., Petrus, J. C. C., Fritzen-Freire, C. B., M Ller, C. M., Amboni, R. D. D. M. and Vieira, C. R. W., “Storage stability of prebiotic fermented milk obtained from permeate resulting of the microfiltration process”. LWT. 47, 96-102, 2012View Article |
| [18] | AOAC. Association of Official Analytical Chemists. Official Methods of Analysis, 17th edn. Gaithersburg, MD: AOAC, 2000. |
| [19] | GB 5413.27-2010. Determination of fatty acids in foods for infants and young children, milk and milk products. Standards Press of China: Beijing, China, 2010. |
| [20] | Deng, Y., Wang, Y., Yue, J., Liu, Z., Zheng, Y., Qian, B., Zhong, Y. and Zhao, Y., “Thermal behavior, microstructure and protein quality of squid fillets dried by far-infrared assisted heat pump drying”. Food Control, 36, 102-110, 2014.View Article |
| [21] | Serafeimidou, A., Zlatanos, S., Kritikos, G. and Tourianis, A., “Change of fatty acid profile, including conjugated linoleic acid (CLA) content, during refrigerated storage of yogurt made of cow and sheep milk”. J. Food Comp. Anal. 31, 24-30, 2013.View Article |
| [22] | Serra, M., Trujillo, A., Guamis, B. and Ferragut, V.,. “Proteolysis of yogurts made from ultra-high-pressure homogenized milk during cold storage”. J. Dairy Sci. 92, 71-78, 2009.View Article PubMed |
| [23] | Hayes, M. G. and Kelly, A. L., “High pressure homogenisation of raw whole bovine milk (a) effects on fat globule size and other properties”. J. Dairy Res. 70, 297-305, 2003.View Article PubMed |
| [24] | Kailasapathy, K., “Survival of free and encapsulated probiotic bacteria and their effect on the sensory properties of yoghurt”. LWT. 39, 1221-1227, 2006.View Article |
| [25] | Rutherfurd, S. M. and Moughan, P., “The digestible amino acid composition of several milk proteins: application of a new bioassay”. J. Dairy Sci. 81, 909-917, 1998.View Article |
| [26] | Contarini, G., Povolo, M., Leardi, R. & Toppino, P. M., “Influence of heat treatment on the volatile compounds of milk”. J Agri. Food Chem. 45, 3171-3177, 1997.View Article |
| [27] | Hayaloglu, A. A. and Karabulut, I., “SPME/GC-MS characterization and comparison of volatiles of eleven varieties of Turkish cheeses”. Int. J. Food Propert., 16, 1630-1653, 2013.View Article |
| [28] | Bendall, J. (2001). “Aroma compounds of fresh milk from New Zealand cows fed different diets”. J Agri. Food Chem., 49, 4825-4832, 2001View Article PubMed |
| [29] | Pan, D., Wu, Z., Peng, T., Zeng, X. and Li, H., “Volatile organic compounds profile during milk fermentation by Lactobacillus pentosus and correlations between volatiles flavour and carbohydrate metabolism”. J. Dairy Sci. 97, 624-631, 2014.View Article PubMed |