Practical Application of a Urinary Zearalenone Monitoring System for Feed Hygiene Management of a Japanese Black Cattle Breeding Herd—Relevance to Anti-Müllerian Hormone and Serum Amyloid A Clarified from a Two-Year Survey
Abstract
:1. Introduction
2. Results
2.1. Long-Term (2 Years) Monitoring of ZEN in a JB Breeding Cattle Herd
2.2. Calving Intervals as a Reproductive Indicator
3. Discussion
4. Conclusions
5. Materials and Methods
5.1. ZEN Monitoring and Reproductive Performance Evaluation
5.2. Analysis Methods of ZEN, AMH, and SAA
5.3. Feeding Management
5.4. Data Management and Statistical Analysis
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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ZEN | AMH | SAA | |||||||
---|---|---|---|---|---|---|---|---|---|
Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | |
ZEN (lag 1-month) | –0.227 | 0.401 | 0.611 | 0.336 | 0.171 | 0.145 | 0.001 | 0.002 | 0.238 |
ZEN (lag 2-month) | 0.545 | 0.229 | 0.098 | –0.247 | 0.098 | 0.086 | 0.001 | 0.001 | 0.094 |
AMH (lag 1-month) | 1.116 | 0.833 | 0.272 | 0.214 | 0.356 | 0.59 | –0.002 | 0.004 | 0.646 |
AMH (lag 2-month) | 2.021 | 0.825 | 0.092 | 0.64 | 0.353 | 0.167 | 0.002 | 0.004 | 0.71 |
SAA (lag 1-month) | –61.186 | 54.531 | 0.344 | 5.901 | 23.325 | 0.817 | –0.603 | 0.274 | 0.115 |
SAA (lag 2-month) | –54.915 | 39.886 | 0.262 | 35.217 | 17.061 | 0.131 | 0.35 | 0.201 | 0.179 |
∆ZEN | ∆AMH | ∆SAA | |||||||
---|---|---|---|---|---|---|---|---|---|
Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | |
∆ZEN (lag 1-month) | –0.22 | 0.463 | 0.652 | 0.188 | 0.177 | 0.331 | –0.001 | 0.002 | 0.6 |
∆AMH (lag 1-month) | 0.699 | 1.198 | 0.581 | –0.142 | 0.459 | 0.768 | –0.008 | 0.005 | 0.184 |
∆SAA (lag 1-month) | –63.11 | 62.435 | 0.351 | –9.712 | 23.925 | 0.699 | –0.455 | 0.283 | 0.159 |
ZEN | AMH | SAA | |||||||
---|---|---|---|---|---|---|---|---|---|
Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | |
ZEN (lag 1-month) | 5.75 × 10−3 | 1.30 × 10−1 | 0.965 | –0.012 | 0.021 | 0.582 | –1.48 × 10−5 | 2.66 × 10−4 | 0.956 |
ZEN (lag 2-month) | –6.12 × 10−2 | 1.27 × 10−1 | 0.632 | –0.042 | 0.021 | 0.049 * | 3.01 × 10−4 | 2.59 × 10−4 | 0.252 |
AMH (lag 1-month) | 9.98 × 10−1 | 8.80 × 10−1 | 0.264 | 0.41 | 0.144 | 0.007 ** | –1.47 × 10−3 | 1.80 × 10−3 | 0.42 |
AMH (lag 2-month) | 1.16 × 100 | 9.21 × 10−1 | 0.216 | 0.299 | 0.151 | 0.054 | 3.58 × 10−3 | 1.89 × 10−3 | 0.065 |
SAA (lag 1-month) | 1.53 × 10 | 7.20 × 10 | 0.833 | 1.814 | 11.759 | 0.878 | 5.49 × 10−3 | 1.47 × 10−1 | 0.711 |
SAA (lag 2-month) | –1.02 × 102 | 7.26 × 10 | 0.17 | 12.499 | 11.859 | 0.298 | 2.38 × 10−1 | 1.49 × 10−1 | 0.117 |
∆ZEN | ∆AMH | ∆SAA | |||||||
---|---|---|---|---|---|---|---|---|---|
Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | Estimate | Std. Error | p-Value | |
∆ZEN (lag 1-month) | –0.441 | 0.137 | 0.003 ** | –0.003 | 0.019 | 0.855 | 2.3 × 10−5 | 2.7 × 10−4 | 0.933 |
∆ZEN (lag 2-month) | –0.242 | 0.129 | 0.067 | –0.045 | 0.018 | 0.016 * | 3.5 × 10−4 | 2.6 × 10−4 | 0.179 |
∆AMH (lag 1-month) | 1.725 | 1.049 | 0.109 | –0.428 | 0.145 | 0.005 ** | –0.002 | 0.002 | 0.266 |
∆AMH (lag 2-month) | 1.662 | 1.064 | 0.126 | –0.199 | 0.147 | 0.184 | 0.002 | 0.002 | 0.475 |
∆SAA (lag 1-month) | 27.007 | 80.606 | 0.739 | –7.057 | 11.111 | 0.529 | –0.527 | 0.161 | 0.002 ** |
∆SAA (lag 2-month) | –70.452 | 81.193 | 0.391 | 5.148 | 11.192 | 0.648 | 0.057 | 0.163 | 0.728 |
Calving Interval | n | Mean | SEM | p-Value | Calving Interval | n | Mean | SEM | p-Value |
---|---|---|---|---|---|---|---|---|---|
Pre-ZEN monitoring (2019) | 18 | 471.7 | 33.1 | 0.007 * | Pre-ZEN monitoring (2019) | 18 | 471.7 | 33.1 | 0.005 * |
Post-ZEN monitoring (2020, 2021, 2022) | 59 | 388.2 | 10.3 | Post-ZEN monitoring (2022) | 20 | 368.3 | 10 |
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Widodo, O.S.; Pambudi, D.; Etoh, M.; Kokushi, E.; Uno, S.; Yamato, O.; Taniguchi, M.; Lamid, M.; Takagi, M. Practical Application of a Urinary Zearalenone Monitoring System for Feed Hygiene Management of a Japanese Black Cattle Breeding Herd—Relevance to Anti-Müllerian Hormone and Serum Amyloid A Clarified from a Two-Year Survey. Toxins 2023, 15, 317. https://doi.org/10.3390/toxins15050317
Widodo OS, Pambudi D, Etoh M, Kokushi E, Uno S, Yamato O, Taniguchi M, Lamid M, Takagi M. Practical Application of a Urinary Zearalenone Monitoring System for Feed Hygiene Management of a Japanese Black Cattle Breeding Herd—Relevance to Anti-Müllerian Hormone and Serum Amyloid A Clarified from a Two-Year Survey. Toxins. 2023; 15(5):317. https://doi.org/10.3390/toxins15050317
Chicago/Turabian StyleWidodo, Oky Setyo, Dhidhi Pambudi, Makoto Etoh, Emiko Kokushi, Seiichi Uno, Osamu Yamato, Masayasu Taniguchi, Mirni Lamid, and Mitsuhiro Takagi. 2023. "Practical Application of a Urinary Zearalenone Monitoring System for Feed Hygiene Management of a Japanese Black Cattle Breeding Herd—Relevance to Anti-Müllerian Hormone and Serum Amyloid A Clarified from a Two-Year Survey" Toxins 15, no. 5: 317. https://doi.org/10.3390/toxins15050317
APA StyleWidodo, O. S., Pambudi, D., Etoh, M., Kokushi, E., Uno, S., Yamato, O., Taniguchi, M., Lamid, M., & Takagi, M. (2023). Practical Application of a Urinary Zearalenone Monitoring System for Feed Hygiene Management of a Japanese Black Cattle Breeding Herd—Relevance to Anti-Müllerian Hormone and Serum Amyloid A Clarified from a Two-Year Survey. Toxins, 15(5), 317. https://doi.org/10.3390/toxins15050317