Preparation of a Dual-Functional Active Film Based on Bilayer Hydrogel and Red Cabbage Anthocyanin for Maintaining and Monitoring Pork Freshness
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Preparation of Composite Films
2.3. Characterization of Composite Films
2.3.1. The Color Change of Films
2.3.2. The Color of Composite Films
2.3.3. Light Transmission and Opacity
2.3.4. Thickness and Mechanical Properties
2.3.5. Moisture Content (MC) and Water Solubility (WS)
2.3.6. Water Vapor Permeability (WVP)
2.4. Antioxidant Capacity of the Film
2.5. Antimicrobial Activity of Composite Films
2.6. Colorimetric Response and Color Stability
2.7. Infrared Spectroscopy and Characterization of Microstructure
2.8. Application for the Pork Freshness
2.8.1. Determination of pH
2.8.2. Determination of Lipid Oxidation
2.8.3. Determination of Total Viable Count (TVC)
2.8.4. Determination of TVB-N
2.9. Statistical Analysis
3. Results and Discussion
3.1. The Color of Composite Films
3.1.1. The Color of Untreated Composite Films
3.1.2. The Color Change of Composite Film
3.2. Properties of Composite Indicator Film
3.2.1. Infrared Spectrum Analysis of Composite Film
3.2.2. The Morphology and Structure
3.2.3. Physical and Mechanical Properties
3.2.4. DPPH Radical Scavenging Activity
3.2.5. Antimicrobial Activity
3.2.6. Volatile Ammonia Response
3.2.7. Stability of the Films
3.3. Application of Composite Films for Pork Freshness Maintaining and Monitoring
3.3.1. Determination of Concentration in Red Cabbage Anthocyanin
3.3.2. Sample Preparation
3.3.3. Antioxidant and Antibacterial Properties
3.3.4. Monitoring Freshness of Pork
4. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
References
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Samples | L | a | b | ΔE | Opacity | Appearance |
---|---|---|---|---|---|---|
GS | 85.35 ± 0.42 a | −1.63 ± 0.12 b | 10.00 ± 0.65 b | 7.04 ± 0.66 d | 0.84 ± 0.05 d | |
GSR | 46.36 ± 2.66 c | −8.14 ± 0.55 d | 4.48 ± 1.46 d | 43.11 ± 2.10 b | 3.24 ± 0.26 a | |
GC | 85.74 ± 0.70 a | −1.73 ± 0.07 b | 7.05 ± 0.71 c | 4.56 ± 0.82 e | 0.51 ± 0.21 e | |
GCR | 54.94 ± 0.52 b | −3.81 ± 0.43 c | 19.04 ± 1.69 a | 34.38 ± 0.62 c | 2.43 ±0.09 b | |
CS | 86.83 ± 0.63 a | −0.94 ± 0.26 b | 2.06 ± 0.06 e | 1.87 ± 0.42 f | 2.20± 0.06 c | |
CSR | 54.52 ± 1.40 b | 45.04 ± 1.52 a | −4.91 ± 0.28 f | 58.23 ± 1.66 a | 2.60 ± 0.17 b |
Samples | Thickness/μm | TS/MPa | EB/% | PS/N | MC/% | WS/% | WVP/10−11 (g m−1s−1 Pa−1) |
---|---|---|---|---|---|---|---|
GS | 83.60 ± 5.47 b | 13.09 ± 5.60 c | 54.32 ± 2.09 bc | 4.01 ± 0.27 c | 29.36 ± 0.09 a | 27.39 ± 2.36 a | 3.08 ± 0.04 c |
GSR | 96.80 ± 1.96 b | 18.70 ± 3.52 c | 48.17 ± 6.20 c | 3.08 ± 0.57 c | 28.81 ± 0.66 a | 28.04 ± 0.11 a | 5.70 ± 0.11 bc |
GC | 98.03 ± 3.19 ab | 69.85 ± 1.51 b | 101.09 ± 2.58 a | 6.01 ± 0.28 b | 30.09 ± 1.17 a | 18.32 ± 1.01 b | 6.47 ± 0.24 bc |
GCR | 104.20 ± 3.01 a | 94.72 ± 2.09 a | 83.50 ± 2.89 ab | 11.19 ± 0.34 a | 21.67± 1.52 a | 22.69 ± 0.94 b | 7.50 ± 0.02 b |
CS | 82.06 ± 1.55 b | 47.76 ± 6.42 b | 43.70 ± 2.04 c | 1.50 ± 0.92 c | 32.69 ± 0.38 a | 20.60 ± 0.66 b | 6.02 ± 0.60 bc |
CSR | 92.07 ± 3.68 ab | 47.79 ± 8.97 b | 88.71 ± 9.91 b | 1.92 ± 0.37 c | 16.52 ± 1.26 b | 27.38 ± 1.31 a | 11.69 ± 0.23 a |
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Huang, X.; Zhao, W.; Li, Z.; Zhang, N.; Wang, S.; Shi, J.; Zhai, X.; Zhang, J.; Shen, T. Preparation of a Dual-Functional Active Film Based on Bilayer Hydrogel and Red Cabbage Anthocyanin for Maintaining and Monitoring Pork Freshness. Foods 2023, 12, 4520. https://doi.org/10.3390/foods12244520
Huang X, Zhao W, Li Z, Zhang N, Wang S, Shi J, Zhai X, Zhang J, Shen T. Preparation of a Dual-Functional Active Film Based on Bilayer Hydrogel and Red Cabbage Anthocyanin for Maintaining and Monitoring Pork Freshness. Foods. 2023; 12(24):4520. https://doi.org/10.3390/foods12244520
Chicago/Turabian StyleHuang, Xiaowei, Wanying Zhao, Zhihua Li, Ning Zhang, Sheng Wang, Jiyong Shi, Xiaodong Zhai, Junjun Zhang, and Tingting Shen. 2023. "Preparation of a Dual-Functional Active Film Based on Bilayer Hydrogel and Red Cabbage Anthocyanin for Maintaining and Monitoring Pork Freshness" Foods 12, no. 24: 4520. https://doi.org/10.3390/foods12244520
APA StyleHuang, X., Zhao, W., Li, Z., Zhang, N., Wang, S., Shi, J., Zhai, X., Zhang, J., & Shen, T. (2023). Preparation of a Dual-Functional Active Film Based on Bilayer Hydrogel and Red Cabbage Anthocyanin for Maintaining and Monitoring Pork Freshness. Foods, 12(24), 4520. https://doi.org/10.3390/foods12244520