White-Tailed Eagles’ (Haliaeetus albicilla) Exposure to Anticoagulant Rodenticides and Causes of Poisoning in Poland (2018–2020)
Abstract
:1. Introduction
2. Materials and Methods
2.1. Samples Collection
2.2. Analytical Method
2.2.1. Sample Preparation
2.2.2. Liquid Chromatography–Mass Spectrometry Analysis of AR
2.2.3. Calibration Range, Recovery, and Limit of Quantification
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Acknowledgments
Conflicts of Interest
References
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Analyte | Precursor Ion (Da) | Product Ions (Da) | Declustering Potential (V) | Collision Energy (CE) |
---|---|---|---|---|
Bromadiolone | 525.0 | 181.0 | −262 | −47 |
250.0 | −47 | |||
Brodifacoum | 521.1 | 135.1 | −120 | −48 |
143.1 | −80 | |||
Chlorophacinone | 373.0 | 145.1 | −225 | −33 |
201.2 | −30 | |||
Coumachlor | 340.9 | 160.9 | −120 | −30 |
284.0 | −34 | |||
Coumatetralyl | 291.7 | 248.0 | −270 | −30 |
142.0 | −40 | |||
Difenacoum | 443.0 | 135.0 | −254 | −45 |
143.0 | −75 | |||
Difethialone | 539.1 | 151 | −90 | −50 |
143 | −99 | |||
Diphacinone | 339.1 | 116.1 | −254 | −59 |
167.2 | −34 | |||
Flocoumafen | 541.2 | 161.1 | −205 | −47 |
382.3 | −35 | |||
Warfarin | 307.1 | 161.1 | −250 | −28 |
250.2 | −29 |
Year | ID | Concentration (µg/kg, w.w.) | ||||
---|---|---|---|---|---|---|
Bromadiolone | Brodifacoum | Difenacoum | Flocoumafen | Sum of AR | ||
2018 | #1 | 11.1 | 1.5 | 9.2 | 1.1 | 22.9 |
#2 1 | 358.4 | 35.4 | 393.8 | |||
#3 | 79.5 | 14.2 | 93.7 | |||
#4 1 | 53.0 | 199.3 | 252.3 | |||
#5 | 2.5 | 2.5 | ||||
#6 | 2.5 | 2.5 | ||||
#7 | 143.2 | 35.8 | 179.0 | |||
#8 | 78.1 | 16.4 | 94.5 | |||
#9 | 10.0 | 21.4 | 31.4 | |||
#10 | 6.4 | 12.7 | 19.1 | |||
#11 | 18.2 | 20.1 | 1.8 | 40.1 | ||
#12 | 69.0 | 172.0 | 241.0 | |||
#13 1 | 170.0 | 59.6 | 7.6 | 7.6 | 244.8 | |
2019 | #14 | 19.4 | 61.0 | 80.4 | ||
#15 1,2 | 362.0 | 53.6 | 415.6 | |||
#16 | 57.2 | 90.6 | 147.8 | |||
#17 | 36.7 | 68.6 | 105.3 | |||
#18 | 83.1 | 89.1 | 172.2 | |||
#19 1,2 | 88.2 | 128.2 | 3.3 | 219.7 | ||
#20 1 | 132.7 | 33.9 | 5.4 | 172.0 | ||
#21 | 60.7 | 2.2 | 62.9 | |||
#22 | 11.6 | 145.0 | 156.6 | |||
2020 | #23 | 43.4 | 7.6 | 51.0 | ||
#24 | 25.1 | 12.9 | 38.0 | |||
#25 | 45.5 | 16.1 | 61.6 | |||
#26 | 38.1 | 38.1 | ||||
#27 | 78.1 | 56.3 | 134.4 | |||
#28 | 12.7 | 44.8 | 57.5 | |||
#29 1 | 260.0 | 27.1 | 287.1 | |||
#30 1,2 | 903.0 | 19.1 | 922.1 | |||
#31 | 77.3 | 71.3 | 148.6 | |||
#32 | 72.7 | 63.3 | 136.0 | |||
#33 | 24.6 | 42.5 | 67.1 | |||
#34 1,2 | 802.0 | 423.0 | 1225.0 | |||
#35 | 84.3 | 12.9 | 97.2 | |||
#36 1 | 219.0 | 74.3 | 293.3 | |||
#37 | 95.4 | 37.5 | 10.2 | 143.1 | ||
#38 | 31.5 | 13.6 | 45.1 | |||
#39 | 26.0 | 14.1 | 40.1 | |||
#40 | 34.0 | 7.6 | 41.6 |
Bromadiolone | Brodifacoum | Difenacoum | Flocoumafen | Sum of AR | |
---|---|---|---|---|---|
Number of Cases | 39/40 | 38/40 | 6/40 | 2/40 | 40/40 |
Concentration (µg/kg, w.w.) | |||||
Maximum | 903.0 | 423.0 | 10.2 | 7.6 | 1225.0 |
Minimum | 2.5 | 1.5 | 1.8 | 1.1 | 2.5 |
Median | 60.7 | 35.6 | 6.5 | 4.4 | 101.3 |
Mean | 121.1 | 58.1 | 6.2 | 4.4 | 174.4 |
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Sell, B.; Śniegocki, T.; Giergiel, M.; Posyniak, A. White-Tailed Eagles’ (Haliaeetus albicilla) Exposure to Anticoagulant Rodenticides and Causes of Poisoning in Poland (2018–2020). Toxics 2022, 10, 63. https://doi.org/10.3390/toxics10020063
Sell B, Śniegocki T, Giergiel M, Posyniak A. White-Tailed Eagles’ (Haliaeetus albicilla) Exposure to Anticoagulant Rodenticides and Causes of Poisoning in Poland (2018–2020). Toxics. 2022; 10(2):63. https://doi.org/10.3390/toxics10020063
Chicago/Turabian StyleSell, Bartosz, Tomasz Śniegocki, Marta Giergiel, and Andrzej Posyniak. 2022. "White-Tailed Eagles’ (Haliaeetus albicilla) Exposure to Anticoagulant Rodenticides and Causes of Poisoning in Poland (2018–2020)" Toxics 10, no. 2: 63. https://doi.org/10.3390/toxics10020063
APA StyleSell, B., Śniegocki, T., Giergiel, M., & Posyniak, A. (2022). White-Tailed Eagles’ (Haliaeetus albicilla) Exposure to Anticoagulant Rodenticides and Causes of Poisoning in Poland (2018–2020). Toxics, 10(2), 63. https://doi.org/10.3390/toxics10020063