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1.
Food Chem ; 448: 139088, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38547707

ABSTRACT

The duration of storage significantly influences the quality and market value of Qingzhuan tea (QZT). Herein, a high-resolution multiple reaction monitoring (MRMHR) quantitative method for markers of QZT storage year was developed. Quantitative data alongside multivariate analysis were employed to discriminate and predict the storage year of QZT. Furthermore, the content of the main biochemical ingredients, catechins and alkaloids, and free amino acids (FAA) were assessed for this purpose. The results show that targeted marker-based models exhibited superior discrimination and prediction performance among four datasets. The R2Xcum, R2Ycum and Q2cum of orthogonal projection to latent structure-discriminant analysis discrimination model were close to 1. The correlation coefficient (R2) and the root mean square error of prediction of the QZT storage year prediction model were 0.9906 and 0.63, respectively. This study provides valuable insights into tea storage quality and highlights the potential application of targeted markers in food quality evaluation.


Subject(s)
Camellia sinensis , Food Storage , Metabolomics , Tea , Tea/chemistry , Multivariate Analysis , Camellia sinensis/chemistry , Discriminant Analysis , Catechin/analysis , Catechin/chemistry , Amino Acids/analysis , Amino Acids/chemistry , Alkaloids/analysis , Alkaloids/chemistry , Chromatography, High Pressure Liquid , Plant Extracts/chemistry , Plant Extracts/analysis
2.
Food Res Int ; 173(Pt 1): 113238, 2023 11.
Article in English | MEDLINE | ID: mdl-37803551

ABSTRACT

It's generally believed that the longer the storage, the better the quality of dark tea, but the chemical differences of Qingzhuan tea (QZT) with different storage years is still unclear. Herein, in this work, an untargeted metabolomic approach based on SWATH-MS was established to investigate the differential compounds of QZT with 0-9 years' storage time. These QZT samples were roughly divided into two categories by principal component analysis (PCA). After orthogonal projections to latent structures discriminant analysis (OPLS-DA), 18 differential compounds were putatively identified as chemical markers for the storage year variation of QZT. Heatmap visualization showed that the contents of catechins, fatty acids, and some phenolic acids significantly reduced, flavonoid glycosides, triterpenoids, and 8-C N-ethyl-2-pyrrolidinone-substituted flavan-3-ols (EPSFs) increased with the increase of storage time. Furthermore, these chemical markers were verified by the peak areas corresponding to MS2 ions from SWATH-MS. Based on the extraction chromatographic peak areas of MS and MS2 ions, a duration time prediction model was built for QZT with correlation coefficient R2 of 0.9080 and 0.9701, and RMSEP value of 0.85 and 1.24, respectively. This study reveals the chemical differences of QZT with different storage years and provides a theoretical basis for the quality evaluation of stored dark tea.


Subject(s)
Catechin , Tea , Tea/chemistry , Flavonoids/analysis , Metabolomics/methods , Catechin/analysis , Ions
3.
Int J Biol Macromol ; 222(Pt B): 1633-1641, 2022 Dec 01.
Article in English | MEDLINE | ID: mdl-36243162

ABSTRACT

The poor interfacial stability of protein-stabilized high internal phase Pickering emulsions (HIPEs) is a major hurdle to realize their practical applications in food processing. The emulsifying stability is not only related to the protein itself, but also dependent upon the oil phases. In this study, four plant-based oils were studied to understand their respective effects on the interfacial stability of HIPEs prepared by ovalbumin (OVA) and ovalbumin-tannic acid complex (OVA-TA). Our findings revealed that the interfacial activities were closely related to the physicochemical properties of the oil phase, such as the number of carbon­carbon double bonds in the unsaturated fatty acids, melting point, and polarity. The emulsifying abilities were ranked as palm oil > soybean oil > olive oil > perilla oil. OVA-TA stabilized HIPEs exhibited excellent emulsifying stability compared with free OVA stabilized ones. This work provided a unique insight into understanding the interfacial stabilization mechanisms for protein-stabilized HIPEs with different kinds of oil phases.


Subject(s)
Plant Oils , Tannins , Emulsions/chemistry , Ovalbumin , Particle Size , Carbon
4.
Food Chem ; 389: 133055, 2022 Sep 30.
Article in English | MEDLINE | ID: mdl-35489261

ABSTRACT

In this study, ovalbumin (OVA) interacted with pectin (PE) to form soluble electrostatic complexes to improve the functional properties of high internal phase Pickering emulsions (HIPEs) under extreme conditions. The results showed that the stability of the OVA-PE soluble complexes-stabilized HIPEs was significantly better than that of the free OVA-stabilized HIPEs and was modulated by the biopolymer ratio. In particular, the complexes at an OVA:PE ratio of 1:1 (C-1:1) may form particulates with a core-shell structure by a flocculation mechanism. The C-1:1-stabilized HIPEs had the smallest oil droplet size (11.34 ± 1.14 µm) and the best resistance to extreme environmental stresses due to their strong, rigid structure and dense interfacial architecture. The in vitro digestion results showed that the bioaccessibility (from 18.3% ± 0.5% to 38.8% ± 4.8%) of curcumin improved with increasing PE content. Our work is helpful in understanding OVA-PE complexes as stabilizers for HIPEs and their potential applications in food delivery systems.


Subject(s)
Curcumin , Curcumin/chemistry , Emulsions/chemistry , Ovalbumin , Particle Size , Pectins
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