A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine
Abstract
:Simple Summary
Abstract
1. Introduction
2. Materials and Methods
2.1. Place and Study Design
2.2. Development and Preparation of Teat Dip Solution
2.3. In Vivo Testing
2.4. Stability Testing
2.5. Evaluation of Physical Properties and Chemical Composition
2.6. Antimicrobial Testing of the Prepared Teat Dip
2.7. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Viscosity | pH | Appearance of teat dip solution | Stability |
|
Product Composition | CAS No. | Molecular Mass | Manufacturer | Quantity, g | Function | |
---|---|---|---|---|---|---|
Chlorhexidine digluconate (D-gluconic acid, compound with N,N″-bis(4-chlorophenyl)-3,12-diimino-2,4,11,13-tetraazatetradecanediamidine (2:1), C22H30Cl2N10 × 2C6H12O7 | 18472-51-0 | M = 897.77 g/mol | Medichem, S.A., 08970 Sant Joan Despi, Spain | 0.50 | Active substance (antimicrobial properties) | |
Hydroxypropyl guar, C3H8O2 × (isomer) | 39421-75-5 | M = 536.44 g/mol | Lamberti SpA, 21013 Gallarate, Italy | No.1 | 0.50 | Stabilizer, thickener, viscosity modifier |
No.2 | 0.89 | |||||
No.3 | 1.20 | |||||
Dye CI 16255 (Trisodium (8Z)-7-oxo-8-[(4-sulfonatonaphthalen-1-yl)hydrazinylidene]naphthalene-1,3-disulfonate), C20H11N2Na3O10S3 | 2611-82-7 | M = 604.46 g/mol | Neelikon Food Dyes & Chemicals Ltd., 402116 Dhatav, Maharashtra, India | No.1 | 0.02 | Colorant |
No.2 | 0.05 | |||||
No.3 | 0.12 | |||||
Glycerol (1,2,3-propantriol), C3H5(OH)3 | 56-81-5 | M = 92.09 g/mol | Aarhus Karshams Sweden AB, 37431 Karlshamn, Sweden | 5.10 | Skin emollient, moisturizer | |
Mentha arvensis herb oil (L-Menthol ≥ 35.0%, Menthone (17.0–25.0%, Cineole ≤ 1.0%, Isomenthone ≥ 13.0%, Menthylacetate 2.0–6.0%) | 90063-97-1 | The oil is blend of various substances * | Düllberg Konzentra GmbH & Co. KG, 22335 Hamburg, Germany | 0.10 | Cooling, antiseptic, perfuming function | |
Aesculus hippocastanum dry extract from seeds (Aescin 18.0–22.0%) (Extract Ratio 7:1) (Extraction solvent: Ethanol/Water (40/60 v/v) | 8053-39-2 | The extract is blend of various substances * | Dorana Naturae, 81108 Bratislava, Slovakia | 0.01 | Antioxidant, skin conditioning and protecting effect | |
Polysorbate 80, C64H124O26 | 9005-65-6 | M = 1310.00 g/mol | Oleon NV, 9940 Evergem, Belgium | 3.00 | Emulsifier | |
Isopropyl alcohol, C3H7OH | 67-63-0 | M = 60.10 g/mol | Rebain|International NL, 3059 LM Rotterdam, The Netherlands | 5.00 | Solvent | |
Sodium hydroxide, NaOH | 1310-72-2 | M = 92.09 g/mol | Stanchem Sp. z o.o., 21025 Niemce, Poland | q.s. | pH adjustment | |
Citric acid monohydrate, C6H8O7 × H2O | 5949-29-1 | M = 210.14 g/mol | Reachem s.r.o, 83103 Bratislava, Slovakia | q.s. | pH adjustment | |
Purified water, H2O | 7732-18-5 | M = 18.01 g/mol | Up to 100 g | Solvent |
Parameters | Evaluation Criteria |
---|---|
Color | |
1 point | After dipping, the color is hard to see. After 60 min, no color is visible. |
2 points | After dipping, the color is bright and lasts well for 10 min. After 60 min, the color is hard to see. |
3 points | After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h, the remains of the color are not visible. |
4 points | After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h, the color residues are visible only on part of the teats. |
5 points | After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h the remains of the color are visible. |
Dripping immediately after dipping | |
1 point | After dipping, the dripping is intense (more than 6 drops in the first minute). |
2 points | After dipping, the dripping is intense (4–6 drops in the first minute). |
3 points | After dipping, the dripping is moderate (2–4 drops in the first minute). |
4 points | After dipping, the dripping is slow (no more than 2 drops in the first minute). |
5 points | No dripping after dipping (no more than one drop in the first minute). |
Formation of a drop on the teat end | |
1 point | The drop does not form; dripping is too intense. |
2 points | After 5 minutes, an elongated drop is formed that does not fall off. After 30 min, the hanging drop is no longer visible. |
3 points | After 5 minutes, an elongated drop is formed that does not fall off. After 60 min, the hanging drop is no longer visible. |
4 points | After a few (2–3) minutes, a stable hanging drop is formed, which lasts for about 40 min. After 60 min, the hanging drop is no longer visible. |
5 points | After a few (2–3) minutes, a stable hanging drop is formed. After 60 min, the hanging drop is visible. |
Teat covered with a film | |
1 point | Covers with a very thick film, high product yield. |
2 points | Covers with a thick film, high product yield. |
3 points | Covers with a thin film, which becomes even thinner and unstable due to heavy dripping. |
4 points | Covers the skin of the teat with a sufficiently even film, in a sufficiently even layer. |
5 points | Covers the skin of the teat with an even film, in an even layer. |
Evenness of teat coverage | |
1 point | Covers unevenly. |
2 points | Covers satisfactory evenly. |
3 points | Covers averagely evenly. |
4 points | Covers evenly enough. |
5 points | Covers evenly. |
General evaluation of experimental formulations of the teat dip solution | |
Total points |
Parameters | Experimental Formulas and the Results of the Evaluation of the Tested Parameters | ||
---|---|---|---|
Composition 1 (Hydroxypropyl Guar Gum 0.5%, Dye 0.02%) | Composition 2 (Hydroxypropyl Guar Gum 0.89%, Dye 0.05%) | Composition 3 (Hydroxypropyl Guar Gum 1.2%, Dye 0.12%) | |
Color | |||
Evaluation: (not visible—1, clearly visible—5) | 3 points After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h, the color disappeared. | 5 points After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h, the remains of the color are visible. | 5 points After dipping, the color is bright and lasts well for 10 min. After 60 min, the color did not change. After 12 h, the remains of the color are visible. |
Dripping immediately after dipping | |||
Evaluation: (intense dripping—1, no dripping—5) | 1 point After dipping, the dripping is intense (about two minutes). | 3 points After dipping, the dripping is moderate (3–4 drops in the first minute). | 2 points After dipping, the dripping is intense (4–6 drops in the first minute). |
Formation of a drop on the teat end | |||
Evaluation: (not properly formed—1, properly formed—5) | 1 point The drop does not form; dripping is too intense. | 4 points After a few minutes, a stable hanging drop is formed, which lasts for about 40 min. After 60 min, the hanging drop is no longer visible. | 3 points After five minutes, an elongated drop is formed that does not fall off. After 60 min, the hanging drop is no longer visible. |
Teat covered with a film | |||
Evaluation: (covered with a thick film—1, covered with a thin film—5) | 3 points Covers with a thin film, which becomes even thinner and unstable due to heavy dripping. | 5 points Covers the skin of the teat with an even film in an even layer. | 2 points Covers with a thick film, high product yield. |
Evenness of teat coverage | |||
Evaluation: (covers unevenly—1, covers evenly—5) | 4 points Covers evenly enough | 4 points Covers evenly enough | 4 points Covers evenly enough |
General evaluation of experimental formulations of the teat dip solution | |||
12 points | 21 points | 16 points |
Evaluation Period | Homogeneity | Color | Odor | pH | Viscosity, mPa.s |
---|---|---|---|---|---|
After 24 h | Homogeneous | Red | Characteristic mint essential oil | 5.9 ± 0.18 | 1478 ± 18 |
After 6 months | Homogeneous | Red | Characteristic mint essential oil | 5.9 ± 0.18 | 1460 ± 14 |
After 12 months | Homogeneous | Red | Characteristic mint essential oil | 5.9 ± 0.18 | 1435 ± 15 |
After 24 months | Not homogeneous, dark precipitate observed | Red | Characteristic mint essential oil | 5.2 ± 0.05 | 1420 ± 10 |
Evaluation Period | Homogeneity | Color | Odor | pH | Centrifugation, Speed 4500 rpm, Time 8 min |
---|---|---|---|---|---|
After manufacturing | Homogenic | Red | Characteristic mint essential oil | 5.9 ± 0.2 | Not layered, stable |
Heating/cooling cycles | Homogenic | Red | Characteristic mint essential oil | 5.9 ± 0.1 | Not layered, stable |
After 2 months | Homogenic | Red | Characteristic mint essential oil | 5.9 ± 0.2 | Not layered, stable |
Test Microorganisms | Test Suspension | Results | ||
---|---|---|---|---|
80% | 50% | 10% | ||
S. aureus ATCC 6538 | 10−6: >330–>330 * 10−7: 39–42 * N: 4.05 × 108 No: 4.05 × 107 log No: 7.61 | Active log R > 5.46 Vc: <14–<14 Na < 140 log Na < 2.15 | Active log R > 5.46 Vc: <14–<14 Na < 140 log Na < 2.15 | Not active log R = 4.35 Vc: 189–171 Na = 1800 log Na = 3.26 |
S. uberis ATCC 19436 | 10−6: >330–>330 * 10−7: 38–48 * N: 4.30 × 108 No: 4.30 × 107 log No: 7.63 | Active log R > 5.48 Vc: <14–<14 Na < 140 log Na < 2.15 | Active log R > 5.48 Vc: <14–<14 Na < 140 log Na < 2.15 | Not active log R < 4.11 Vc: >330–>330 Na > 3300 log Na > 3.52 |
E. coli ATCC 10536 | 10−6: >330–>330 * 10−7: 42–46 * N: 4.40 × 108 No: 4.40 × 107 log No: 7.67 | Active log R > 5.49 Vc: <14–<14 Na <140 log Na < 2.15 | Active log R > 5.49 Vc: <14–<14 Na < 140 log Na < 2.15 | Active log R > 5.44 Vc: 18–<14 Na < 160 log Na < 2.2 |
C. albicans ATCC 10231 | 10−5: >330–>330 * 10−6: 38–44 * N: 4.10 × 107 No: 4.10 × 106 log No: 6.61 | Active log R > 4.46 Vc: <14–<14 Na < 140 log Na < 2.15 | Active log R > 4.46 Vc: <14–<14 Na < 140 log Na < 2.15 | Not active log R < 3.09 Vc: >330–>330 Na > 3300 log Na > 3.52 |
Aspergillus niger ATCC 16404 | 10−5: >165–>165 * 10−6: 28–32 * N: 3.00 × 107 No: 3.00 × 108 log No: 6.48 | Not active log R < 3.26 Vc: >165–>165 Na > 1650 log Na > 3.22 | Not active log R < 3.26 Vc: >165–>165 Na > 1650 log Na > 3.22 | Not active log R < 3.26 Vc: >165–>165 Na > 1650 log Na > 3.22 |
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Kybartas, M.; Virgailis, M.; Ruzauskas, M.; Klimienė, I.; Šiugždinienė, R.; Merkevičienė, L.; Štreimikytė-Mockeliūnė, Ž.; Mockeliūnas, R. A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine. Vet. Sci. 2023, 10, 510. https://doi.org/10.3390/vetsci10080510
Kybartas M, Virgailis M, Ruzauskas M, Klimienė I, Šiugždinienė R, Merkevičienė L, Štreimikytė-Mockeliūnė Ž, Mockeliūnas R. A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine. Veterinary Sciences. 2023; 10(8):510. https://doi.org/10.3390/vetsci10080510
Chicago/Turabian StyleKybartas, Modestas, Marius Virgailis, Modestas Ruzauskas, Irena Klimienė, Rita Šiugždinienė, Lina Merkevičienė, Žaneta Štreimikytė-Mockeliūnė, and Raimundas Mockeliūnas. 2023. "A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine" Veterinary Sciences 10, no. 8: 510. https://doi.org/10.3390/vetsci10080510
APA StyleKybartas, M., Virgailis, M., Ruzauskas, M., Klimienė, I., Šiugždinienė, R., Merkevičienė, L., Štreimikytė-Mockeliūnė, Ž., & Mockeliūnas, R. (2023). A Study on the Stability and Antimicrobial Efficacy of a Newly Modeled Teat Dip Solution Containing Chlorhexidine. Veterinary Sciences, 10(8), 510. https://doi.org/10.3390/vetsci10080510