Gaseous Ozonation to Reduce Aflatoxins Levels and Microbial Contamination in Corn Grits
Abstract
:1. Introduction
2. Materials and Methods
2.1. Chemicals and Reagents
2.2. Sampling
Artificial Contamination of Samples
2.3. Obtaining the Conidia Solution
2.4. Ozonation System and Process
2.4.1. Ozone Production
2.4.2. Ozonation System and Experimental Design
2.5. Analysis of Aflatoxins by HPLC
2.6. Microbiological Analysis
2.7. Moisture Content and Aw
2.8. Statistical Analysis
3. Results
3.1. Efficacy of Ozonation on Aflatoxin Levels
3.2. Efficacy of Ozonation on Microbiological Count
4. Discussion
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Treatments | O3 Concentration (mg/L) | Exposure Time (min) | Mass of grains (kg) |
---|---|---|---|
1 | −1 (20) | −1 (120) | −1 (1) |
2 | −1 (20) | +1 (480) | −1 (1) |
3 | +1 (60) | −1 (120) | −1 (1) |
4 | +1 (60) | +1 (480) | −1 (1) |
5 | −1 (20) | −1 (120) | +1 (5) |
6 | −1 (20) | +1 (480) | +1 (5) |
7 | +1 (60) | −1 (120) | +1 (5) |
8 | +1 (60) | +1 (480) | +1 (5) |
9 | 0 (40) | 0 (300) | 0 (3) |
10 | 0 (40) | 0 (300) | 0 (3) |
11 | 0 (40) | 0 (300) | 0 (3) |
Treatments | Samples Spiked with Fusarium spp. Conidia | Samples Spiked with Aspergillus spp. Conidia | Total Mesophilic Count * (CFU/g) | ||
---|---|---|---|---|---|
Count UFC/g | Results log10 N0/N | Count UFC/g | Results log10 N0/N | ||
1 | 5.0 × 104 | 1.10 | 5.4 × 104 | 1.08 | 4.0 × 102 |
2 | 5.5 × 103 | 1.34 | 6.5 × 103 | 1.33 | <LQ |
3 | 1.2 × 103 | 1.64 | 1.5 × 103 | 1.62 | <LQ |
4 | 6.5 × 101 | 2.77 | 3.1 × 102 | 2.04 | <LQ |
5 | 4.6 × 104 | 1.08 | 3.0 × 104 | 1.14 | 7.0 × 101 |
6 | 3.5 × 104 | 1.11 | 1.6 × 104 | 1.21 | 1.6 × 102 |
7 | 4.2 × 103 | 1.39 | 3.4 × 104 | 1.12 | 1.1 × 102 |
8 | 5.9 × 103 | 1.33 | 2.6 × 103 | 1.49 | <LQ |
9 | 3.9 × 104 | 1.11 | 1.5 × 104 | 1.22 | 1.4 × 102 |
10 | 4.3 × 104 | 1.09 | 1.5 × 104 | 1.21 | 1.3 × 102 |
11 | 6.3 × 104 | 1.05 | 6.2 × 104 | 1.08 | 1.2 × 102 |
C1 | 1.1 × 105 | 1.00 | 1.2 × 105 | 1.00 | 3.4 × 103 |
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Porto, Y.D.; Trombete, F.M.; Freitas-Silva, O.; de Castro, I.M.; Direito, G.M.; Ascheri, J.L.R. Gaseous Ozonation to Reduce Aflatoxins Levels and Microbial Contamination in Corn Grits. Microorganisms 2019, 7, 220. https://doi.org/10.3390/microorganisms7080220
Porto YD, Trombete FM, Freitas-Silva O, de Castro IM, Direito GM, Ascheri JLR. Gaseous Ozonation to Reduce Aflatoxins Levels and Microbial Contamination in Corn Grits. Microorganisms. 2019; 7(8):220. https://doi.org/10.3390/microorganisms7080220
Chicago/Turabian StylePorto, Yuri Duarte, Felipe Machado Trombete, Otniel Freitas-Silva, Izabela Miranda de Castro, Gloria Maria Direito, and José Luis Ramirez Ascheri. 2019. "Gaseous Ozonation to Reduce Aflatoxins Levels and Microbial Contamination in Corn Grits" Microorganisms 7, no. 8: 220. https://doi.org/10.3390/microorganisms7080220
APA StylePorto, Y. D., Trombete, F. M., Freitas-Silva, O., de Castro, I. M., Direito, G. M., & Ascheri, J. L. R. (2019). Gaseous Ozonation to Reduce Aflatoxins Levels and Microbial Contamination in Corn Grits. Microorganisms, 7(8), 220. https://doi.org/10.3390/microorganisms7080220