Effect of high hydrostatic pressure processing on the structure, functionality, and nutritional properties of food proteins: A review
- PMID: 36124402
- DOI: 10.1111/1541-4337.13033
Effect of high hydrostatic pressure processing on the structure, functionality, and nutritional properties of food proteins: A review
Abstract
Proteins are important food ingredients that possess both functional and nutritional properties. High hydrostatic pressure (HHP) is an emerging nonthermal food processing technology that has been subject to great advancements in the last two decades. It is well established that pressure can induce changes in protein folding and oligomerization, and consequently, HHP has the potential to modify the desired protein properties. In this review article, the research progress over the last 15 years regarding the effect of HHP on protein structures, as well as the applications of HHP in modifying protein functionalities (i.e., solubility, water/oil holding capacity, emulsification, foaming and gelation) and nutritional properties (i.e., digestibility and bioactivity) are systematically discussed. Protein unfolding generally occurs during HHP treatment, which can result in increased conformational flexibility and the exposure of interior residues. Through the optimization of HHP and environmental conditions, a balance in protein hydrophobicity and hydrophilicity may be obtained, and therefore, the desired protein functionality can be improved. Moreover, after HHP treatment, there might be greater accessibility of the interior residues to digestive enzymes or the altered conformation of specific active sites, which may lead to modified nutritional properties. However, the practical applications of HHP in developing functional protein ingredients are underutilized and require more research concerning the impact of other food components or additives during HHP treatment. Furthermore, possible negative impacts on nutritional properties of proteins and other compounds must be also considered.
Keywords: functional properties; high-pressure processing; nutritional properties; protein; structural alterations.
© 2022 Institute of Food Technologists®.
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References
REFERENCES
-
- Aalaei, K., Khakimov, B., De Gobba, C., & Ahrné, L. (2021). Gastric digestion of milk proteins in adult and elderly: Effect of high-pressure processing. Foods, 10(4), 786. https://doi.org/10.3390/foods10040786
-
- Acero-Lopez, A., Ullah, A., Offengenden, M., Jung, S., & Wu, J. (2012). Effect of high pressure treatment on ovotransferrin. Food Chemistry, 135(4), 2245-2252. https://doi.org/10.1016/j.foodchem.2012.07.071
-
- Achouri, A., & Boye, J. I. (2013). Thermal processing, salt and high pressure treatment effects on molecular structure and antigenicity of sesame protein isolate. Food Research International, 53(1), 240-251. https://doi.org/10.1016/j.foodres.2013.04.016
-
- Aganovic, K., Hertel, C., Vogel, R. F., Johne, R., Schlüter, O., Schwarzenbolz, U., Jäger, H., Holzhauser, T., Bergmair, J., Roth, A., Sevenich, R., Bandick, N., Kulling, S. E., Knorr, D., Engel, K.-H., & Heinz, V. (2021). Aspects of high hydrostatic pressure food processing: Perspectives on technology and food safety. Comprehensive Reviews in Food Science and Food Safety, 20(4), 3225-3266. https://doi.org/10.1111/1541-4337.12763
-
- Ahmed, J., Al-Ruwaih, N., Mulla, M., & Rahman, M. H. (2018). Effect of high pressure treatment on functional, rheological and structural properties of kidney bean protein isolate. LWT, 91, 191-197. https://doi.org/10.1016/j.lwt.2018.01.054
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