Modulating the microstructure and rheological properties of low-fat cheese: Combined effects of emulsion gel formulation, phase state, and coagulation mechanism

This study presents an innovative fat-replacement strategy by systematically elucidating the application mechanisms of structured emulsion gels loaded with DHA/ARA microcapsules in low-fat cheese, focusing on the combined contributions of emulsion formulation, phase state, and distinct coagulation kinetics. The results revealed that as the oil phase mass fraction reached 40 wt%, the system underwent a catastrophic phase inversion from oil-in-water (O/W) to water-in-oil (W/O) driven by lipophilic emulsifiers, with the W/O emulsion gels exhibiting pronounced strain-hardening behavior and superior tribological lubrication under large deformations. Upon incorporating emulsion gels into the cheese matrix, O/W emulsion gels demonstrated excellent compatibility with the casein network due to their hydrophilic continuous phase. In contrast, W/O emulsion gels reconstituted into complex W/O/W double emulsions within the cheese milk, forming a multi-compartmentalized physical barrier that achieved the protection of the active ingredients. Low-field nuclear magnetic resonance and proton density magnetic resonance imaging further demonstrated that fermentation/rennet-induced coagulation formed a continuous, highly ordered protein matrix promoting a higher proportion of bound water (T 21 ). Crucially, LAOS analysis revealed that the lipid domains acted as active fillers within the casein lattice, dissipating mechanical energy via intra-cycle strain-stiffening to enhance toughness and elasticity while eliminating texture defects. These findings provided a crucial theoretical basis for tailoring and optimizing the microstructure and textural properties of functional cheese by regulating emulsion gel types and coagulation processes.

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Publication Details

Journal
Food Hydrocolloids
Published
2026-09-12
DOI
https://doi.org/10.1016/j.foodhyd.2026.113370
Primary Topic
Proteins in Food Systems
Type
article
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Modulating the microstructure and rheological properties of low-fat cheese: Combined effects of emulsion gel formulation, phase state, and coagulation mechanism

Jixian Mao, Zong Meng
Food Hydrocolloids
Proteins in Food Systems
article

Modulating the microstructure and rheological properties of low-fat cheese: Combined effects of emulsion gel formulation, phase state, and coagulation mechanism

Jixian Mao, Zong Meng
article en

Abstract

This study presents an innovative fat-replacement strategy by systematically elucidating the application mechanisms of structured emulsion gels loaded with DHA/ARA microcapsules in low-fat cheese, focusing on the combined contributions of emulsion formulation, phase state, and distinct coagulation kinetics. The results revealed that as the oil phase mass fraction reached 40 wt%, the system underwent a catastrophic phase inversion from oil-in-water (O/W) to water-in-oil (W/O) driven by lipophilic emulsifiers, with the W/O emulsion gels exhibiting pronounced strain-hardening behavior and superior tribological lubrication under large deformations. Upon incorporating emulsion gels into the cheese matrix, O/W emulsion gels demonstrated excellent compatibility with the casein network due to their hydrophilic continuous phase. In contrast, W/O emulsion gels reconstituted into complex W/O/W double emulsions within the cheese milk, forming a multi-compartmentalized physical barrier that achieved the protection of the active ingredients. Low-field nuclear magnetic resonance and proton density magnetic resonance imaging further demonstrated that fermentation/rennet-induced coagulation formed a continuous, highly ordered protein matrix promoting a higher proportion of bound water (T 21 ). Crucially, LAOS analysis revealed that the lipid domains acted as active fillers within the casein lattice, dissipating mechanical energy via intra-cycle strain-stiffening to enhance toughness and elasticity while eliminating texture defects. These findings provided a crucial theoretical basis for tailoring and optimizing the microstructure and textural properties of functional cheese by regulating emulsion gel types and coagulation processes.

Food HydrocolloidsVol. 185
Jiangnan University (CN), State Key Laboratory of Food Science and Technology (CN)
Openalex Percentile: Top 14%
Proteins in Food Systems
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Modulating the microstructure and rheological properties of low-fat cheese: Combined effects of emulsion gel formulation, phase state, and coagulation mechanism — Jixian Mao, Zong Meng · Food Hydrocolloids (2026) | TGRS Research Map | TGRS