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Effect of change in pH of skim milk and ultrafiltered/diafiltered retentates on milk protein concentrate (MPC70) powder properties

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Abstract

Poor solubility of milk protein concentrate (MPC) powders are attributed to their high protein and calcium contents. Concentration of skim milk in ultrafiltration (UF) and diafiltration (DF) increased total solids, protein and mineral contents and changed pH and ζ-potential values of the retentates that leads to milk proteins destabilization in 7× UF/DF retentates. Hence, this investigation was aimed to study the effect of change in pH of skim milk (no change; native pH maintained) and DF retentates (5.85 and 7.10) with KOH, NaOH and NaH2PO4∙2H2O on physicochemical, reconstitution, functional and rheological properties of fresh MPC70 powders. MPC70-7.10 powder had significantly higher (P < 0.05) solubility, but MPC70-NaOH and MPC70-5.85 showed significantly lower solubility than control. However, after two months storage at 25 ± 1 °C, control powder had significantly lower solubility (27.78% decrease) than treated powders. These changes in pH, significantly decreased calcium content and specific surface area; significantly improved viscosity, water binding, oil binding, emulsifying, foaming and buffering capacities, L*, a*, flowability, pH (except MPC70-5.85) and packed bulk density (except MPC70-NaOH) of treated powders over control. However, rennet coagulation time of all reconstituted powder solutions was similar. Hershel Bulkley, a best fit model, efficiently explained the pseudoplastic rheological behavior of all reconstituted MPC70 powders. This investigation had established that change in pH could improve the functional properties of MPC70 powders and is a simple, cheap, compatible and easy to use approach. Treated MPC70 powders could replace control in several food formulations owing to their improved functional properties.

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References

  • Agarwal S, Beausire RL, Patel S, Patel H (2015) Innovative uses of milk protein concentrates in product development. J Food Sci 80(S1):A23–A29

    Article  CAS  PubMed  Google Scholar 

  • Ahmad S, PiotM Rousseau F, Grongnet JF, Gaucheron F (2009) Physico-chemical changes in casein micelles from buffalo and cow’s milk as a function of alkalinisation. Dairy Sci Technol 89:387–403

    Article  CAS  Google Scholar 

  • Amaladhas PH, Emerald FME (2017) Physicochemical and Sensory Properties of Dried Dairy Products. In: Anandharamakrishnan C (ed) Handbook of drying for dairy products. Wiley, Hoboken, pp 203–228

    Chapter  Google Scholar 

  • Baldwin AJ (2010) Insolubility of milk powder products-a mini review. Dairy Sci Technol 90(2–3):169–179

    Article  CAS  Google Scholar 

  • Barbosa-Cánovas GV, Ortega-Rivas E, Juliano P, Yan H (2005) Bulk properties. Food powders: physical properties, processing, and functionality. Kluwer Academic/Plenum Publishers, New York, pp 55–90

    Google Scholar 

  • Bouvier JM, Collado M, Gardiner D, Scott M, Schuck P (2013) Physical and rehydration properties of milk protein concentrates: comparison of spray-dried and extrusion-porosified powders. Dairy Sci Technol 93(4–5):387–399

    Article  CAS  Google Scholar 

  • Carr RL (1965) Evaluating flow properties of solids. Chem Eng 72(2):163–169

    CAS  Google Scholar 

  • Crowley SV, Gazi I, Kelly AL, Huppertz T, O’Mahony JA (2014) Influence of protein concentration on the physical characteristics and flow properties of milk protein concentrate powders. J Food Eng 135:31–38

    Article  CAS  Google Scholar 

  • Dalgleish DG, Law AJR (1988) pH-induced dissociation of bovine casein micelles. I. Analysis of liberated caseins. J Dairy Res 55:529–538

    Article  CAS  Google Scholar 

  • De Castro-Morel M, Harper WJ (2002) Basic functionality of commercial milk protein concentrates. Milchwissenschaft 57(7):367–370

    Google Scholar 

  • Floris R, Alting A, Slangen C, van der Meulen IE, Adamse M, Klok H, Verbeek M (2007) MPC functionality: a comparitive study of commercial samples. NIZO-Rep E 157:1–55

    Google Scholar 

  • Huppertz T, Fox PF (2006) Effect of NaCl on some physico-chemical properties of concentrated bovine milk. Int Dairy J 16(10):1142–1148

    Article  CAS  Google Scholar 

  • Huppertz T, Gazi I (2015) Milk protein concentrate functionality through optimized product-process interactions. New Food 18(1):12–17

    Google Scholar 

  • Khatkar SK, Gupta VK (2012) Physicochemical and functional quality attributes of dairy whitener prepared from ultrafiltration process. J Food Process Pres 38:1145–1154

    Article  CAS  Google Scholar 

  • Kneifel W, Seiler A (1993) Water-holding properties of milk protein products-a review. Food Struct 12(3):297–308

    CAS  Google Scholar 

  • Koç B, Sakin-Yılmazer M, Kaymak-Ertekin F, Balkır P (2014) Physical properties of yoghurt powder produced by spray drying. J Food Sci Technol 7:1377–1383

    Article  Google Scholar 

  • Lagrange V, Whitsett D, Burris C (2015) Global market for dairy proteins. J Food Sci 80(S1):A16–A22

    Article  CAS  PubMed  Google Scholar 

  • Meena GS (2016) Process optimization of milk protein concentrates with improved functional properties Ph.D. Thesis. National Dairy Research Institute, Karnal, India

  • Meena GS, Singh AK, Borad S, Raju PN (2016) Effect of concentration, homogenization and stabilizing salts on heat stability and rheological properties of cow skim milk ultrafiltered retentate. J Food Sci Technol 53(11):3960–3968

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Meena GS, Singh AK, Arora S, Borad S, Sharma R, Gupta VK (2017a) Physico-chemical, functional and rheological properties of milk protein concentrate 60 as affected by disodium phosphate addition, diafiltration and homogenization. J Food Sci Technol 54(6):1678–1688

    Article  CAS  PubMed  PubMed Central  Google Scholar 

  • Meena GS, Singh AK, Panjagari NR, Arora S (2017b) Milk protein concentrates: opportunities and challenges- a review. J Food Sci Technol 54(10):310–324

    Article  CAS  Google Scholar 

  • Schuck P (2013) Dairy protein powders. In: Smithers GW, Augustin MA (eds) Advances in dairy ingredients and the institute of food technologists. Wiley, Hoboken, pp 1–29

    Google Scholar 

  • Schuck P (2011) Milk powder: physical and functional properties of milk powders. In: Fuquay JW, Fox PF, McSweeney PLH (eds) Encyclopedia of dairy sciences, vol 2, 2nd edn. Elsevier, London, pp 117–124

    Chapter  Google Scholar 

  • Schuck P, Davenel A, Mariette F, Briard V, Mejean S, Piot M (2002) Rehydration of casein powders: effects of added mineral salts and salt addition methods on water transfer. Int Dairy J 12(1):51–57

    Article  CAS  Google Scholar 

  • Sikand V, Tong PS, Roy S, Rodriguez-Saona LE, Murray BA (2011) Solubility of commercial milk protein concentrates and milk protein isolates. J Dairy Sci 94(12):6194–6202

    Article  CAS  PubMed  Google Scholar 

  • Singh H (2007) Interactions of milk proteins during the manufacture of milk powders. Le Lait 87(4–5):413–423

    Article  CAS  Google Scholar 

  • Singh H (2011) Functional properties of milk proteins. In: Fuquay JW, Fox PF, McSweeney PLH (eds) Encyclopaedia of dairy science, 2nd edn. Academic Press, San Diego, pp 887–893

    Chapter  Google Scholar 

  • Singh H, Newstead DF (1992) Aspects of proteins in milk powder manufacture. In: Fox PF (ed) Advanced dairy chemistry, vol. 1, proteins, 2nd edn. Elsevier Applied Science, New York, pp 735–765

    Google Scholar 

  • US pharmacopeia 27 (2006). US Pharmacopeial Convention. Rockville, MD, pp 3017–3020

  • Vaia B, Smiddy MA, Kelly AL, Huppertz T (2006) Solvent-mediated disruption of bovine casein micelles at alkaline pH. J Agric Food Chem 54:8288–8293

    Article  CAS  PubMed  Google Scholar 

  • Ye A (2011) Functional properties of milk protein concentrates: emulsifying properties, adsorption and stability of emulsions. Int Dairy J 21(1):14–20

    Article  CAS  Google Scholar 

  • Zayas JF (1997) Solubility of protein. In: Zayas JF (ed) Functionality of proteins in food. Springer, Berlin, pp 6–75

    Chapter  Google Scholar 

Download references

Acknowledgements

Authors are highly thankful to the Director, ICAR-National Dairy Research Institute, Karnal for providing the required facilities to carrying out this work.

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Correspondence to Ganga Sahay Meena.

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Meena, G.S., Singh, A.K., Gupta, V.K. et al. Effect of change in pH of skim milk and ultrafiltered/diafiltered retentates on milk protein concentrate (MPC70) powder properties. J Food Sci Technol 55, 3526–3537 (2018). https://doi.org/10.1007/s13197-018-3278-8

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