Decrease in Aflatoxin M1 Concentration in Milk during Cholesterol Removal by Application of β-Cyclodextrin
Abstract
:1. Introduction
2. Results and Discussion
3. Conclusions
4. Materials and Methods
4.1. Samples
4.2. Chemicals
4.3. Instruments
4.4. Experiments
4.5. Treatment of Milk for Removal of CHO and AFM1
4.6. Preparation of Milk for CHO Analysis
4.7. HPLC Determination of CHO Concentration
4.8. Preparation of Milk for AFM1 Analysis
4.9. HPLC Determination of AFM1 Concentration
4.10. Validation of Analytical Procedures
4.11. Statistical Analysis
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Sample | No. of Samples/No. of Positive Samples | Concentration Range of AFM1 (µg/kg) | Country | Source |
---|---|---|---|---|
Raw milk Pasteurized milk UHT milk | 105/75 15/15 15/15 | 0.005–0.198 0.017–0.187 0.012–0.146 | Bangladesh | Sumon et al. [15] |
Fresh milk | 52/21 | 0.01–3.385 | Brazil | Goncalves et al. [16] |
Pasteurized and UHT milk | 242/178 | 0.001–0.352 | China | Xiong et al. [17] |
Raw milk | 1668/36 | 0.01–0.208 | Italy | Bellio et al. [18] |
Bovine milk Buffalo milk | 375/154 170/70 | 0.01–9.18 0.01–6.41 | India | Pandey et al. [19] |
Raw milk | 290/145 | Nd *–8.35 | Mexico | Carvajal et al. [20] |
Bovine milk Goat milk | 29/29 87/41 | up to 0.081 up to 3.108 | Nigeria | Akinyemi et al. [21] |
Fresh milk | 107/76 | 0.004–0.845 | Pakistan | Iqbal et al. [22] |
Raw milk | 150/150 | 0.01–1.2 | Serbia | Kos et al. [23] |
Raw milk | 100/45 | 0.02–0.08 | South Korea | Lee et al. [24] |
Fresh milk | 44/42 | 0.22–6.90 | Sudan | Elzupir et al. [25] |
A | B | C | D | |
---|---|---|---|---|
Sample No. | Initial Concentration of Cholesterol (mg/kg) a | Concentration of Cholesterol after Removal (mg/kg) a | Measure of Cholesterol Removal (%) | Distribution Coefficient δCHO |
1 | 129.04 ± 2.13 | 10.36 ± 2.11 + | 92.0 | 11.46 |
2 | 135.78 ± 6.01 | 6.47 ± 1.59 + | 95.2 | 19.99 |
3 | 150.39 ± 0.64 | 5.25 ± 0.03 + | 96.5 | 27.65 |
4 | 113.32 ± 6.30 | 8.92 ± 0.02 + | 92.1 | 11.70 |
5 | 123.01 ± 2.21 | 1.43 ± 0.63 + | 98.8 | 85.02 |
6 | 103.92 ± 0.43 | 9.47 ± 0.21 + | 90.9 | 9.97 |
7 | 122.33 ± 1.45 | 23.49 ± 1.50 + | 80.8 | 4.21 |
Average | 125.40 ± 2.74 | 9.34 ± 0.87 + | 92.3 | 24.28 |
A* | B* | C* | D* | |
---|---|---|---|---|
Sample No. | Concentration of AFM1 after Spiking (µg/kg) | Concentration of AFM1 after Removal (µg/kg) a | Measure of AFM1 Removal (%) | Distribution Coefficient δAFM1 |
1 | 0.20 | 0.13 ± 0.06 + | 35 | 0.54 |
2 | 0.40 | 0.25 ± 0.02 + | 38 | 0.60 |
3 | 0.60 | 0.36 ± 0.02 + | 40 | 0.67 |
4 | 0.80 | 0.47 ± 0.03 + | 41 | 0.70 |
5 | 1.00 | 0.55 ± 0.04 + | 45 | 0.82 |
6 | 1.20 | 0.80 ± 0.04 + | 33 | 0.50 |
7 | 2.00 | 1.16 ± 0.06 + | 42 | 0.72 |
Average | 0.89 | 0.53 ± 0.04 + | 39.1 | 0.68 |
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Šimko, P.; Kolarič, L. Decrease in Aflatoxin M1 Concentration in Milk during Cholesterol Removal by Application of β-Cyclodextrin. Toxins 2022, 14, 379. https://doi.org/10.3390/toxins14060379
Šimko P, Kolarič L. Decrease in Aflatoxin M1 Concentration in Milk during Cholesterol Removal by Application of β-Cyclodextrin. Toxins. 2022; 14(6):379. https://doi.org/10.3390/toxins14060379
Chicago/Turabian StyleŠimko, Peter, and Lukáš Kolarič. 2022. "Decrease in Aflatoxin M1 Concentration in Milk during Cholesterol Removal by Application of β-Cyclodextrin" Toxins 14, no. 6: 379. https://doi.org/10.3390/toxins14060379
APA StyleŠimko, P., & Kolarič, L. (2022). Decrease in Aflatoxin M1 Concentration in Milk during Cholesterol Removal by Application of β-Cyclodextrin. Toxins, 14(6), 379. https://doi.org/10.3390/toxins14060379