The Effect of Perilla frutescens Extract on the Oxidative Stability of Model Food Emulsions
Abstract
:1. Introduction
2. Experimental Section
2.1. Raw Material
2.2. Reagents
2.3. Extraction
2.4. Total Phenol and Flavonoid Content
2.5. Antioxidant Capacity Determination
2.5.1. ABTS Assay
2.5.2. The Oxygen Radical Absorbance Capacity (ORAC) Assay
2.5.3. FRAP Assay
2.6. Determination of Cinnamic Acid Derivatives by High-Performance Liquid Chromatography (HPLC)
2.7. Oil-in-Water Emulsion System
2.7.1. Removal of Tocopherols from Sunflower Oil
2.7.2. Preparation of Emulsions and Storage Conditions
Fatty acid name | Numerical symbol | Amount (%) |
---|---|---|
Saturated | 12.79 | |
Palmitic acid | C16:0 | 6.99 ± 0.08 |
Stearic acid | C18:0 | 4.16 ± 0.04 |
Arachidic acid | C20:0 | 0.33 ± 0.01 |
Behenic acid | C22:0 | 0.96 ± 0.02 |
Lignoceric acid | C24:0 | 0.35 ± 0.02 |
Unsaturated | 87.21 | |
Oleic acid | C18:1 (n-9) | 34.51 ± 0.11 |
Eicosenoic acid | C20:1 (n-9) | 0.32 ± 0.03 |
Linolenic acid | C18:2 (n-6) | 52.38 ± 0.23 |
2.7.3. Measurement of Primary Oxidation by Peroxide Value (PV) and pH
2.7.4. Measurement of Secondary Oxidation by TBARs and Hexanal Methods
2.8. Statistical Analysis
3. Results and Discussion
3.1. Phenolic and Flavonoid Content of Extract
Method | Amount detected a |
---|---|
Total phenol content (mg GAE/g DW) | 22.67 ± 0.52 |
Total flavonoid content (mg CE/g DW) | 2.90 ± 0.07 |
ABTS (mg TE/g DW) | 65.03 ± 2.98 |
ORAC (mg TE/g DW) | 179.60 ± 6.02 |
FRAP (mg TE/g DW) | 44.46 ± 1.55 |
3.2. In Vitro Antioxidant Activity of Extract
3.3. Quantitative Analysis of Cinnamic Acid Derivatives
Rosmarinic acid | Caffeic acid | Solvent | Place of cultivation | Reference |
---|---|---|---|---|
39.5 | ND | Water:acetone:hydrochloric (20:80:1) | Japan | Natsume et al. [39] |
3.4–10 | 0.05–1.2 | Water with 0.01 M H2SO4 | China and Japan | Meng et al. [36] |
0.21–3.76 | ND | 70% EtOH | Geochang, Korea | Hong and Kim [17] |
51.37–155.50 | ND | MeOH with ethyl acetate fraction | Geochang, Korea | Hong et al. [32] |
29.28–54.76 | 1.09–3.86 | MeOH with 1% TFA | Yeongnam, Korea | Kang and Lee [40] |
26.84 | 1.32 | Water at 100 °C | Miryang, Korea | Yang et al. [38] |
2.29 | 0.51 | 50% EtOH | Spain | This paper |
3.4. Antioxidant Activity of Extracts in Model Emulsion System
4. Conclusions
Acknowledgments
Conflicts of Interest
References
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Skowyra, M.; Falguera, V.; Azman, N.A.M.; Segovia, F.; Almajano, M.P. The Effect of Perilla frutescens Extract on the Oxidative Stability of Model Food Emulsions. Antioxidants 2014, 3, 38-54. https://doi.org/10.3390/antiox3010038
Skowyra M, Falguera V, Azman NAM, Segovia F, Almajano MP. The Effect of Perilla frutescens Extract on the Oxidative Stability of Model Food Emulsions. Antioxidants. 2014; 3(1):38-54. https://doi.org/10.3390/antiox3010038
Chicago/Turabian StyleSkowyra, Monika, Victor Falguera, Nurul A. M. Azman, Francisco Segovia, and Maria P. Almajano. 2014. "The Effect of Perilla frutescens Extract on the Oxidative Stability of Model Food Emulsions" Antioxidants 3, no. 1: 38-54. https://doi.org/10.3390/antiox3010038