The impacts of integrating ultrasonic treatment (560 W) with pH shifting at pH 2, 3, 7, 11, and 12 on the physicochemical, structural, and functional attributes of Euryale ferox protein were investigated. The results indicated that the ultrasound-assisted pH 11 modified Euryale ferox protein exhibited an increase in the absolute zeta potential from 5.802 mV (pH 7 control) to 9.283 mV, solubility from 17.88% to 50.68%, surface hydrophobicity from 22.27 μg to 40.87 μg, foaming capacity from 52.78% to 70.55%, and emulsifying activity from 10.81 m2/g to 13.69 m2/g, along with the maximum UV absorption peak intensity. Meanwhile, the particle size, turbidity, and intrinsic fluorescence intensity of Euryale ferox protein under this condition were reduced. FT-IR profiling provided evidence that the combined treatment altered the secondary structure of Euryale ferox protein, as evidenced by increased β-sheet and random coil contents alongside decreased α-helix and β-turn fractions. Rheological results demonstrated that the combined treatment reduced both the shear stress and apparent viscosity of Euryale ferox protein. Therefore, ultrasound combined with pH shifting modification conferred considerable improvements upon the functional characteristics of Euryale ferox protein by inducing structural modifications, thereby enhancing its prospective applications in food processing.
This study examined the influence of quinoa protein modified by high-pressure homogenization (HQP) on the gelation behavior, water mobility, rheological attributes, and microstructure of chicken breast batters. Cooking yield and gel strength of batter gels increased progressively from 88.93% and 859.56 g to 95.35% and 1467.34 g, respectively, with elevated HQP supplements. Concurrently, L⁎ and a⁎ values dropped gradually, whereas the b⁎ value elevated evidently (P < 0.05). Textural indicators all displayed an ascending-descending trend, reaching optimal values at 12% HQP incorporation. Rheological assessment demonstrated that HQP markedly enhanced the G' value throughout thermal and frequency scan analyses. Low-field nuclear magnetic resonance (LF-NMR) data indicated that HQP significantly elevated the immobilized water fraction while concomitantly reduced the free water proportion. Fourier transform infrared (FTIR) spectroscopy indicated a marked decline in α-helix fraction paired with elevated β-sheet formation. SEM imaging confirmed that HQP supplementation facilitated the formation of a smoother and more compact gel architecture. Collectively, HQP demonstrates strong potential as a functional ingredient for enhancing emulsified chicken systems.
Yanyan Zhao, Xin Yao, Qi-Zhao Han et al.· Food Chemistry: X· 0 citations
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