A comparison of low-fat mozzarella cheese with basil seed and taro root mucilage as natural fat replacers through chemical and rheological analysis

dc.contributor.authorAkhtar, Aqsa
dc.contributor.authorAraki, Tetsuya
dc.contributor.authorKamata, Tatsuki
dc.contributor.authorNei, Daisuke
dc.contributor.authorKhalid, Nauman
dc.date.accessioned2025-07-11T06:11:13Z
dc.date.available2025-07-11T06:11:13Z
dc.date.issued2025-04
dc.descriptionAbout one-third of the global milk supply is used for annual cheese production, highlighting the widespread nature of cheese-making worldwide. In 2022, global cheese production reached approximately 22 million tons, aligning with regional consumption trends that vary significantly across different markets.
dc.description.abstractMozzarella cheese (MC) is a widely consumed soft, fermented, dense proteinous cheese with unique viscoelastic behavior. MC behaves like a soft solid at ambient temperature and undergoes melt as temperature increases to 70 °C, aided by fats in cheese. However, reducing dairy fats in MC tends to affect its chemical, texture, and viscoelastic properties by making it rubbery. This study was planned to evaluate and compare the effect of basil seed mucilage (BSM) and taro roots mucilage (TRM) as a fat replacer to improve the stretching and viscoelastic attributes of low-fat mozzarella cheese (LFMC). BSM and TRM were added at concentrations of 1 %, 2.5 %, and 5 % (v/v) during the formulation of LFMC samples. The results of the physicochemical analysis presented a significant difference in fat content (p < 0.05) and the lowest value reported for negative control (T∗) and LFMC samples with 1 % BSM (BT1) of 14.32 % and 14.82 %, respectively. In texture, among all observed parameters, the most prominent was hardness, and out of all the samples, To exhibited the highest value (9.93 × 104 N/m2), followed by 8.69 × 104 N/m2, 8.65 × 104 N/m2, 6.73 × 104 N/m2 for BT1, BT2, and TT3, respectively. Based on the results, the MC samples, including To, BT3, and TT3, required a low shear stress of 1000 Pa to deform at 70 °C compared to other samples. This shows that a high concentration of plant mucilage of 5 %, as in BT3 and TT3, presents the same cohesiveness as the To. The results of the rheological analysis showed that LFMC with BSM were less cohesive, compact, and experienced low-stress deformation. On melting at 70 °C, the viscoelastic attribute among all LFMC with mucilage was dominant as G″ > G′ in LFMC indicated softer liquid-like properties. Overall, the results concluded that preserving the appropriate casein-to-fat ratio using up to 2.5 % (v/v) BSM followed by 2.5 % (v/v) TRM can better preserve the rheological characteristics of LFMC. Keywords: Low-fat Mozzarella Cheese, Viscoelastic Behavior, Flow Behavior, Mucilage
dc.identifier.citationAkhtar, A., Araki, T., Kamata, T., Nei, D., & Khalid, N. (2025). A comparison of low-fat mozzarella cheese with basil seed and taro root mucilage as natural fat replacers through chemical and rheological analysis. Journal of Agriculture and Food Research, 20, 101766.
dc.identifier.doihttps://doi.org/10.1016/j.jafr.2025.101766
dc.identifier.urihttps://repository.adu.ac.ae/handle/1/7223
dc.language.isoen
dc.publisherElsevier
dc.titleA comparison of low-fat mozzarella cheese with basil seed and taro root mucilage as natural fat replacers through chemical and rheological analysis
dc.typeArticle

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