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Production of Acid and Rennet-Coagulated Cheese Enriched by Olive ( L.) Leaf Extract-Determining the Optimal Point of Supplementation and Its Effects on Curd Characteristics

Overview
Journal Foods
Specialty Biotechnology
Date 2024 Feb 24
PMID 38397592
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Abstract

This study investigated the potential of olive leaf extract (OLE), as a functional ingredient, to improve cheese properties, because it is rich in phenols. Milk and dairy products are poor in phenolic compounds. The main objective was to determine the most effective coagulation method and timing of OLE supplementation to maximize retention in the cheese matrix. Experimental cheeses were produced using the rennet and acid coagulation methods, with OLE added either directly to the cheese milk or to the curd phase. Three OLE effective concentrations corresponding to 25%, 50%, and 75% inhibition of DPPH reagent (EFC25, EFC50, and EFC75, respectively) were added, i.e., 11.5 mg GAE L, 16.6 mg GAE L, and 26.3 mg GAE L, respectively. The results showed that OLE significantly increased the concentration of total phenols, total flavonoids, and antioxidant activity in all cheese samples and in the residual whey, especially at higher effective concentrations (EFC 50 and EFC 75). Rennet-coagulated cheese to which OLE was added prior to coagulation (EM 25, EM 50, EM 75) exhibited higher hardness, gumminess, and chewiness but lower elasticity, suggesting alterations in the paracasein matrix. OLE did not adversely affect acidity, water activity, or cheese yield. However, higher EFC resulted in significant colour changes (∆E* > 3.0). In conclusion, the enrichment of cheesemaking milk with OLE and the application of the rennet coagulation method are the most suitable to optimise the production of OLE-enriched cheese. This research shows the potential to improve the nutritional value of cheese while maintaining its desired characteristics.

Citing Articles

Effect of olive leaf extract on the quality of Cantal cheese.

Tarchi I, Bouaziz M, Bhat Z, Ait-Kaddour A Food Chem X. 2024; 24:101966.

PMID: 39618557 PMC: 11605462. DOI: 10.1016/j.fochx.2024.101966.

References
1.
Iriondo-DeHond M, Miguel E, Del Castillo M . Food Byproducts as Sustainable Ingredients for Innovative and Healthy Dairy Foods. Nutrients. 2018; 10(10). PMC: 6213882. DOI: 10.3390/nu10101358. View

2.
Zandona E, Blazic M, Rezek Jambrak A . Whey Utilization: Sustainable Uses and Environmental Approach. Food Technol Biotechnol. 2021; 59(2):147-161. PMC: 8284110. DOI: 10.17113/ftb.59.02.21.6968. View

3.
Malliou F, Andreadou I, Gonzalez F, Lazou A, Xepapadaki E, Vallianou I . The olive constituent oleuropein, as a PPARα agonist, markedly reduces serum triglycerides. J Nutr Biochem. 2018; 59:17-28. PMC: 6628917. DOI: 10.1016/j.jnutbio.2018.05.013. View

4.
Marusic Radovcic N, Poljanec I, Petricevic S, Mora L, Medic H . Influence of Muscle Type on Physicochemical Parameters, Lipolysis, Proteolysis, and Volatile Compounds throughout the Processing of Smoked Dry-Cured Ham. Foods. 2021; 10(6). PMC: 8227746. DOI: 10.3390/foods10061228. View

5.
Athira S, Mann B, Saini P, Sharma R, Kumar R, Singh A . Production and characterisation of whey protein hydrolysate having antioxidant activity from cheese whey. J Sci Food Agric. 2014; 95(14):2908-15. DOI: 10.1002/jsfa.7032. View