| Literature DB >> 34068704 |
Laura Palacios Colón1, Andrés J Rascón1, Lamia Hejji1,2, Abdelmonaim Azzouz1,2, Evaristo Ballesteros1.
Abstract
Endocrine disrupting chemicals (EDCs) are exogenous substances capable of altering the human hormone system and causing various diseases such as infertility and cancer as a result. In this work, a method for determining twenty-three different EDCs including parabens, alkylphenols, phenylphenols, organophosphorus pesticides, bisphenol A and triclosan in dairy products was developed. Samples are conditioned by addition of acetonitrile containing 1% formic acid, centrifugation and clean-up of the extract by continuous solid-phase extraction. EDCs in the extract are derivatised by heating in a microwave oven and quantified by gas chromatography-mass spectrometry. The proposed method features good limits of detection (6-40 ng/kg) and precision (relative standard deviation < 7.6%); also, it is scarcely subject to matrix effects (1-20%). EDC recoveries from spiked samples ranged from 80 to 108%. The method was used to analyse a total of 33 samples of dairy products including cow, sheep and goat milk, yoghourt, milkshakes, cheese, cream, butter and custard. Bisphenol A was the individual contaminant detected in the greatest number of samples, at concentrations from 180 to 4800 ng/kg. 2-Phenylphenol and ethylparaben were found in more than one-half, at concentrations over the range 130-3500 and 89-4300 ng/kg, respectively. In contrast, alkylphenols, organophosphorus pesticides and triclosan were detected in none.Entities:
Keywords: dairy products; endocrine disrupting chemicals; gas chromatography–mass spectrometry; milk; solid-phase extraction
Year: 2021 PMID: 34068704 PMCID: PMC8151977 DOI: 10.3390/foods10051040
Source DB: PubMed Journal: Foods ISSN: 2304-8158
Analytical figures of the determination of EDCs in milk and dairy products by the proposed SPE–GC–MS method a.
| EDCs | Compounds | LOD (ng/kg) | r | Linear | tR | [M]+ | [M − 15]+ | Additional Ions |
|---|---|---|---|---|---|---|---|---|
|
| Methylparaben | 12 | 0.994 | 40–10,000 | 9.47 | 224 |
| 135, 149, 177, 193 |
| Ethylparaben | 9 | 0.994 | 30–10,000 | 10.41 | 238 |
| 135, 151, 193 | |
| Isopropylparaben | 10 | 0.995 | 33–10,000 | 10.75 | 252 | 237 | 151, | |
| Propylparaben | 11 | 0.996 | 36–10,000 | 11.87 | 252 | 237 | ||
| Isobutylparaben | 10 | 0.997 | 34–10,000 | 12.70 | 266 | 251 | 151, | |
| Butylparaben | 9 | 0.995 | 30–10,000 | 13.41 | 266 | 251 | 193, 195, | |
| Benzylparaben | 7 | 0.997 | 23–10,000 | 19.50 | 300 | 285 | 91, | |
|
| Dichlorvos | 21 | 0.993 | 70–10,000 | 6.61 | 220 | – | |
| Dimethoate | 23 | 0.996 | 76–10,000 | 12.90 | 229 | – | 187, 93, | |
| Diazinon | 32 | 0.996 | 105–10,000 | 13.78 | 304 | – | 137, | |
| Parathion methyl | 40 | 0.999 | 135–10,000 | 15.54 |
| – | 109, 200 | |
| Malathion | 28 | 0.994 | 92–10,000 | 16.46 | 332 | – | 93, 125, 158, | |
| Chloropyrifos | 18 | 0.995 | 60–10,000 | 16.65 | 349 | – | 199, 258, 286, | |
| Fenthion | 20 | 0.998 | 65–10,000 | 16.78 |
| – | 109, 125, 169 | |
| Bromophos methyl | 35 | 0.995 | 115–10,000 | 17.33 | 366 | – | 109, 125, 213, | |
| Methidathion | 36 | 0.996 | 120–10,000 | 18.57 | 302 | – | 85, 125, | |
| Fenthion sulfoxide | 22 | 0.998 | 73–10,000 | 20.47 | 294 | – | 125, 169, | |
|
| 4- | 6 | 0.995 | 20–10,000 | 11.50 | 278 | 263 | 151, 191, |
| Nonylphenol | 6 | 0.994 | 20–10,000 | 13.15 | 292 | 277 | 179, | |
|
| 2-Phenylphenol | 7 | 0.996 | 23–10,000 | 10.89 | 242 |
| 105, 152, 211 |
| 4-Phenylphenol | 6 | 0.994 | 20–10,000 | 13.65 |
| 227 | 113, 152, 207, 211 | |
|
| Bisphenol A | 8 | 0.998 | 26–10,000 | 19.82 | 372 |
| 207, 285 |
| Triclosan | 9 | 0.996 | 30–10,000 | 18.82 | 362 |
| 200, 310 | |
a LOD: limit of detection; r: correlation coefficient; tR: retention time; m/z: mass/charge ratio; [M]+: ionised mass, [M − 15]+: loss of a CH3 radical from the Si(CH3)3 group; –: analyte non-derivatised; the peaks used for quantification are boldfaced.
Figure 1Procedure for determining endocrine disrupting chemicals in dairy products. BSTFA N,O-bis(trimethylsilyl)trifluoroacetamide; GC–MS gas chromatography–mass spectrometry; IV injection valve; SPE solid-phase extraction; TMCS trimethylchlorosilane.
Figure 2Influence of the solvent on the extraction of endocrine disrupting chemicals from dairy products.
Performance of the sample treatment procedure in terms of precision as relative standard deviation (RSD, %) and matrix effects.
| Compounds | RSD (%) a | Matrix Effect (%) b | |||||||||||||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| Milk | Yoghourt | Custard | Butter | Cream | Shakes | Cheese | Milk | Yoghourt | Custard | Buttter | Cream | Shakes | Cheese | ||||||||
| WD | BD | WD | BD | WD | BD | WD | BD | WD | BD | WD | BD | WD | BD | ||||||||
| Methylparaben | 4.8 | 5.6 | 5.0 | 5.9 | 5.2 | 6.2 | 4.8 | 5.7 | 5.5 | 6.9 | 6.0 | 6.5 | 5.4 | 6.4 | 0.94 (−6%) | 0.85 (−15%) | 0.88 (−12%) | 1.07 (+7%) | 0.83 (−17%) | 1.08 (+8%) | 1.19 (+19%) |
| Ethylparaben | 4.5 | 5.3 | 5.6 | 6.6 | 5.8 | 6.9 | 5.7 | 6.7 | 3.8 | 7.5 | 4.6 | 6.5 | 3.9 | 4.6 | 1.01 (+1%) | 1.08 (+8%) | 0.83 (−17%) | 0.90 (−10%) | 0.86 (−14%) | 0.98 (−2%) | 1.06 (+6%) |
| Isopropylparaben | 5.7 | 6.7 | 5.8 | 6.8 | 6.0 | 7.1 | 3.3 | 3.9 | 5.0 | 5.8 | 6.0 | 6.9 | 3.7 | 4.4 | 0.91 (−9%) | 1.11 (+11%) | 0.98 (−2%) | 0.93 (−7%) | 0.94 (−6%) | 1.15 (+15%) | 0.91 (−9%) |
| Propylparaben | 5.5 | 6.5 | 2.7 | 3.2 | 2.8 | 3.5 | 5.5 | 6.5 | 3.1 | 6.1 | 2.9 | 3.7 | 3.9 | 4.6 | 1.08 (+8%) | 0.87 (−13%) | 0.88 (−12%) | 0.86 (−14%) | 0.91 (−9%) | 0.91 (−9%) | 1.14 (+14%) |
| Isobutylparaben | 3.1 | 3.7 | 3.4 | 4,0 | 3.6 | 4.3 | 5.1 | 6.0 | 4.6 | 7.6 | 3.4 | 3.9 | 5.3 | 6.2 | 0.83 (−17%) | 0.83 (−17%) | 1.09 (+9%) | 0.89 (−11%) | 1.01 (+8%) | 0.98 (−2%) | 0.80 (−20%) |
| Butylparaben | 5.8 | 6.8 | 2.2 | 3.6 | 2.6 | 4.7 | 5.4 | 6.4 | 3.6 | 4.6 | 2.9 | 3.6 | 4.8 | 5.7 | 0.86 (−14%) | 0.94 (−6%) | 1.06 (+6%) | 0.84 (−16%) | 0.86 (−14%) | 1.11 (+11%) | 0.87 (−13%) |
| Benzylparaben | 5.7 | 6.7 | 2.4 | 2.8 | 2.8 | 2.9 | 5.4 | 6.3 | 3.8 | 4.2 | 3.4 | 4.8 | 5.8 | 6.8 | 0.84 (−16%) | 0.83 (−17%) | 0.89 (−11%) | 1.18 (+18%) | 0.87 (−13%) | 1.03 (+3%) | 0.86 (−14%) |
| Dichlorvos | 5.8 | 6.8 | 5.4 | 6.3 | 5.6 | 6.4 | 4.3 | 5.0 | 4.6 | 7.0 | 5.5 | 6.3 | 5.0 | 5.9 | 1.04 (+4%) | 0.85 (−15%) | 0.83 (−17%) | 0.92 (−8%) | 1.15 (+15%) | 0.89 (−11%) | 1.13 (+13%) |
| Dimethoate | 4.9 | 5.8 | 4.5 | 5.3 | 4.7 | 5.4 | 4.8 | 5.6 | 4.8 | 5.5 | 6.0 | 7.3 | 5.8 | 6.8 | 0.96 (−4%) | 1.12 (+12%) | 1.10 (+10%) | 0.88 (−12%) | 0.87 (−17%) | 1.01 (+1%) | 0.89 (−11%) |
| Diazinon | 6.0 | 7.1 | 6.0 | 7.0 | 6.6 | 7.1 | 5.4 | 6.4 | 5.9 | 7.5 | 6.3 | 6.9 | 5.9 | 6.9 | 0.87 (−13%) | 0.98 (−2%) | 0.86 (−14%) | 1.17 (+17%) | 0.98 (−2%) | 0.85 (−15%) | 1.13 (+13%) |
| Parathion methyl | 4.8 | 5.6 | 2.7 | 3.2 | 3.3 | 3.6 | 5.9 | 6.9 | 4.3 | 6.0 | 3.7 | 5.3 | 6.0 | 7.0 | 0.98 (−2%) | 0.85 (−15%) | 0.83 (−17%) | 1.14 (+14%) | 1.05 (+5%) | 0.96 (−4%) | 1.12 (+12%) |
| Malathion | 5.9 | 6.9 | 3.5 | 4.1 | 4.1 | 4.5 | 5.4 | 6.4 | 5.1 | 5.9 | 5.5 | 6.5 | 4.3 | 5.1 | 1.15 (+15%) | 1.05 (+5%) | 0.87 (−13%) | 0.96 (−4%) | 0.79 (−19%) | 0.91 (−9%) | 1.03 (+3%) |
| Chloropyrifos | 4.4 | 5.2 | 6.3 | 7.4 | 6.9 | 7.5 | 5.9 | 6.9 | 3.9 | 6.3 | 6.4 | 7.0 | 6.4 | 7.5 | 0.81 (−19%) | 1.03 (+3%) | 0.92 (−8%) | 1.15 (+15%) | 1.10 (+10%) | 0.88 (−12%) | 1.15 (+15%) |
| Fenthion | 6.0 | 7.0 | 5.4 | 6.3 | 6.0 | 6.9 | 5.6 | 6.6 | 5.0 | 6.3 | 3.4 | 6.5 | 6.1 | 7.2 | 1.08 (+8%) | 1.11 (+11%) | 0.91 (−9%) | 1.12 (+12%) | 0.90 (−10%) | 0.88 (−12%) | 1.06 (+6%) |
| Bromophos methyl | 5.2 | 6.1 | 4.3 | 5.0 | 4.9 | 5.1 | 2.8 | 3.8 | 2.9 | 5.6 | 3.3 | 5.0 | 5.4 | 6.4 | 1.13 (+13%) | 0.85 (−15%) | 0.85 (−15%) | 0.96 (−4%) | 1.08 (+8%) | 0.94 (−6%) | 1.09 (+9%) |
| Methidathion | 5.2 | 6.1 | 4.1 | 4.8 | 4.7 | 4.9 | 5.8 | 6.8 | 4.7 | 6.2 | 2.1 | 5.8 | 5.3 | 6.2 | 1.12 (+12%) | 0.95 (−5%) | 0.91 (−9%) | 1.10 (+10%) | 1.01 (+1%) | 0.85 (−15%) | 1.01 (+1%) |
| Fenthion sulphoxide | 5.0 | 5.9 | 4.3 | 5.0 | 4.7 | 5.1 | 5.0 | 5.9 | 3.7 | 5.0 | 4.5 | 5.1 | 5.9 | 6.9 | 1.01 (+1%) | 0.93 (−7%) | 1.19 (+19%) | 0.87 (−13%) | 1.08 (+8%) | 0.85 (−15%) | 1.19 (+19%) |
| 4-tert-Octylphenol | 6.0 | 7.1 | 2.4 | 2.8 | 2.6 | 3.1 | 5.9 | 6.9 | 2.6 | 2.9 | 4.4 | 5.8 | 5.2 | 6.8 | 0.85 (−15%) | 1.17 (+17%) | 1.06 (+6%) | 0.86 (−14%) | 1.15 (+15%) | 1.01 (+1%) | 0.92 (−8%) |
| Nonylphenol | 5.9 | 6.9 | 5.8 | 6.8 | 6.0 | 6.9 | 3.4 | 4.0 | 5.7 | 7.0 | 6.8 | 7.3 | 6.0 | 7.1 | 1.04 (+4%) | 1.13 (+13%) | 1.01 (+1%) | 1.04 (+4%) | 0.87 (−13%) | 0.86 (−14%) | 0.85 (−15%) |
| 2-Phenylphenol | 6.0 | 7.0 | 6.0 | 7.0 | 6.2 | 7.3 | 4.6 | 5.4 | 3.2 | 6.4 | 6.2 | 7.1 | 4.2 | 7.1 | 0.99 (−1%) | 1.08 (+8%) | 0.92 (−8%) | 1.12 (+12%) | 0.87 (−13%) | 1.01 (+1%) | 0.88 (−12%) |
| 4-Phenylphenol | 4.1 | 4.8 | 2.4 | 2.8 | 3.2 | 2.9 | 6.0 | 7.0 | 3.3 | 4.7 | 2.8 | 4.8 | 5.7 | 6.7 | 0.79 (−19%) | 1.14 (+14%) | 0.86 (−14%) | 0.89 (−11%) | 1.08 (+8%) | 0.83 (−17%) | 0.91 (−9%) |
| Bisphenol A | 3.9 | 4.6 | 3.3 | 4.5 | 2.7 | 3.6 | 5.7 | 6.7 | 2.7 | 4.9 | 2.3 | 4.5 | 5.2 | 6.1 | 1.14 (+14%) | 0.99 (−1%) | 0.90 (−10%) | 0.94 (−6%) | 0.78 (−16%) | 0.85 (−15%) | 1.02 (+2%) |
| Triclosan | 2.6 | 3.1 | 3.0 | 3.5 | 3.4 | 3.6 | 4.3 | 5.1 | 3.4 | 4.5 | 3.5 | 5.5 | 4.9 | 5.8 | 0.94 (−6%) | 1.02 (+2%) | 0.97 (−3%) | 0.85 (−15%) | 1.18 (+18%) | 0.91 (−9%) | 1.16 (+16%) |
a WD: within-day; BD: between-day. b Matrix effects are expressed as the ratio between the calibration curve slope in matrix and calibration curve slope in solvent. The result of the following operation is included in parentheses: [(calibration curve slope in matrix/calibration curve slope in solvent) − 1] × 100.
Figure 3Typical chromatogram in the SIM mode for 1 g of skimmed cow milk spiked with a 500 ng/kg concentration of each EDC. 1, dichlorvos; 2, methylparaben; 3, ethylparaben; 4, isopropylparaben; 5, 2-phenylphenol; 6, 4-tert-octylphenol; 7, propylparaben; 8, isobutylparaben; 9, dimethoate; 10, nonylphenol; 11, butylparaben; 12, 4-phenylphenol; 13, diazinon; 14, parathion methyl; 15, malathion; 16, chloropyrifos; 17, fenthion; 18, bromophos methyl; 19, methidathion; 20, triclosan; 21, benzylparaben; 22, bisphenol A; 23, fenthion sulphoxide; IS, internal standard.
Average recoveries (% ± SD, n = 3) of endocrine disrupting chemicals spiked to milk and dairy products.
| Compounds | Milk | Yoghourt | Custard | Butter | Cream | Shakes | Cheese | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | 200 ng/kg | 500 ng/kg | ||
|
| Methylparaben | 106 ± 6 | 99 ± 5 | 86 ± 4 | 99 ± 8 | 98 ± 6 | 98 ± 7 | 86 ± 5 | 99 ± 6 | 104 ± 5 | 100 ± 9 | 96 ± 5 | 105 ± 4 | 101 ± 5 | 99 ± 5 |
| Ethylparaben | 89 ± 7 | 91 ± 5 | 85 ± 4 | 102 ± 5 | 86 ± 4 | 100 ± 5 | 84 ± 5 | 101 ± 5 | 105 ± 6 | 101 ± 7 | 104 ± 7 | 100 ± 5 | 89 ± 6 | 99 ± 5 | |
| Isopropylparaben | 104 ± 6 | 84 ± 5 | 103 ± 6 | 101 ± 6 | 80 ± 4 | 99 ± 5 | 96 ± 5 | 94 ± 5 | 94 ± 7 | 94 ± 5 | 106 ± 6 | 99 ± 6 | 104 ± 6 | 81 ± 4 | |
| Propylparaben | 88 ± 5 | 100 ± 7 | 85 ± 4 | 95 ± 5 | 101 ± 5 | 95 ± 5 | 83 ± 5 | 102 ± 6 | 89 ± 5 | 85 ± 4 | 93 ± 5 | 103 ± 6 | 85 ± 5 | 105 ± 7 | |
| Isobutylparaben | 86 ± 7 | 89 ± 6 | 88 ± 2 | 100 ± 3 | 82 ± 1 | 102 ± 6 | 81 ± 4 | 99 ± 5 | 102 ± 6 | 99 ± 6 | 91 ±5 | 95 ± 5 | 87 ± 3 | 101 ± 6 | |
| Butylparaben | 103 ± 5 | 88 ± 5 | 105 ± 5 | 99 ± 5 | 108 ± 7 | 98 ± 5 | 82 ± 4 | 88 ± 5 | 105 ± 7 | 99 ± 5 | 88 ± 5 | 89 ± 5 | 82 ± 5 | 107 ± 6 | |
| Benzylparaben | 85 ± 4 | 101 ± 5 | 92 ± 5 | 98 ± 6 | 105 ± 6 | 97 ± 6 | 88 ± 5 | 99 ± 5 | 88 ± 4 | 105 ± 5 | 98 ± 7 | 90 ± 5 | 102 ± 6 | 88 ± 4 | |
|
| Dichlorvos | 90 ± 5 | 103 ± 6 | 92 ± 5 | 99 ± 7 | 102 ± 6 | 99 ± 6 | 88 ± 5 | 86 ± 5 | 106 ± 6 | 89 ± 5 | 98 ± 6 | 96 ± 6 | 98 ± 7 | 105 ± 7 |
| Dimethoate | 92 ± 6 | 91 ± 6 | 102 ± 8 | 101 ± 6 | 101 ± 6 | 100 ± 6 | 101 ± 5 | 98 ± 6 | 99 ± 6 | 101 ± 7 | 101 ± 7 | 108 ± 7 | 95 ± 7 | 99 ± 5 | |
| Diazinon | 86 ± 5 | 106 ± 6 | 83 ± 4 | 99 ± 5 | 86 ± 5 | 89 ± 5 | 89 ± 5 | 106 ± 7 | 86 ± 5 | 99 ± 7 | 89 ± 5 | 102 ± 6 | 86 ± 5 | 100 ± 6 | |
| Parathion methyl | 105 ± 6 | 95 ± 5 | 106 ± 6 | 105 ± 6 | 99 ± 7 | 100 ± 7 | 86 ± 4 | 95 ± 6 | 96 ± 6 | 101 ± 6 | 96 ± 5 | 95 ± 6 | 103 ± 6 | 87 ± 5 | |
| Malathion | 101 ± 6 | 105 ± 5 | 93 ± 5 | 83 ± 4 | 89 ± 4 | 93 ± 5 | 83 ± 4 | 100 ± 7 | 103 ± 7 | 86 ± 5 | 83 ± 5 | 99 ± 6 | 82 ± 4 | 89 ± 5 | |
| Chloropyrifos | 95 ± 6 | 101 ± 6 | 98 ± 6 | 108 ± 7 | 101 ± 7 | 99 ± 6 | 104 ± 6 | 89 ± 5 | 90 ± 5 | 89 ± 5 | 104 ± 6 | 99 ± 6 | 97 ± 6 | 108 ± 7 | |
| Fenthion | 107 ± 6 | 97 ± 6 | 89 ± 5 | 99 ± 5 | 88 ± 4 | 100 ± 6 | 101 ± 7 | 86 ± 4 | 95 ± 6 | 98 ± 6 | 102 ± 7 | 96 ± 5 | 106 ± 6 | 100 ± 6 | |
| Bromophos methyl | 88 ± 5 | 101 ± 6 | 103 ± 5 | 102 ± 8 | 93 ± 6 | 99 ± 6 | 99 ± 6 | 101 ± 6 | 87 ± 4 | 106 ± 6 | 99 ± 6 | 101 ± 6 | 90 ± 5 | 100 ± 6 | |
| Methidathion | 85 ± 5 | 89 ± 5 | 106 ± 7 | 100 ± 5 | 87 ± 4 | 89 ± 5 | 101 ± 6 | 99 ± 7 | 86 ± 5 | 89 ± 5 | 99 ± 7 | 95 ± 6 | 100 ± 6 | 99 ± 7 | |
| Fenthion sulphoxide | 99 ± 6 | 100 ± 6 | 95 ± 5 | 99 ± 6 | 105 ± 6 | 107 ± 6 | 89 ± 4 | 101 ± 6 | 98 ± 6 | 90 ± 5 | 90 ± 5 | 103 ± 7 | 98 ± 5 | 85 ± 4 | |
|
| 4-tert-Octylphenol | 84 ± 4 | 99 ± 5 | 102 ± 5 | 100 ± 5 | 105 ± 7 | 101 ± 5 | 101 ± 3 | 89 ± 4 | 87 ± 4 | 89 ± 5 | 103 ± 6 | 99 ± 6 | 108 ± 6 | 88 ± 4 |
| Nonylphenol | 106 ± 7 | 97 ± 5 | 89 ± 5 | 95 ± 6 | 102 ± 7 | 89 ± 5 | 106 ± 7 | 87 ± 5 | 106 ± 6 | 89 ± 5 | 104 ± 6 | 97 ± 6 | 105 ± 6 | 101 ± 7 | |
|
| 2-Phenylphenol | 97 ± 6 | 100 ± 6 | 99 ± 6 | 98 ± 7 | 86 ± 4 | 88 ± 5 | 100 ± 7 | 95 ± 6 | 107 ± 6 | 101 ± 6 | 100 ± 6 | 96 ± 7 | 95 ± 5 | 94 ± 5 |
| 4-Phenylphenol | 84 ± 4 | 94 ± 5 | 104 ± 6 | 81 ± 4 | 88 ± 4 | 102 ± 6 | 87 ± 4 | 104 ± 6 | 99 ± 6 | 99 ± 6 | 97 ± 6 | 100 ± 5 | 82 ± 4 | 91 ± 5 | |
|
| Bisphenol A | 97 ± 6 | 87 ± 4 | 99 ± 6 | 92 ± 5 | 89 ± 5 | 106 ± 6 | 107 ± 6 | 97 ± 7 | 99 ± 5 | 108 ± 6 | 97 ± 5 | 107 ± 6 | 102 ± 6 | 102 ± 6 |
| Triclosan | 105 ± 6 | 99 ± 5 | 96 ± 5 | 101 ± 6 | 105 ± 6 | 100 ± 5 | 96 ± 5 | 89 ± 5 | 91 ± 5 | 95 ± 5 | 106 ± 6 | 89 ± 4 | 93 ± 4 | 91 ± 4 | |
EDC contents (mean ± standard deviation, ng/kg, n = 3) found in various types of dairy products a.
| Sample | Compounds | Concentration | Sample | Compounds | Concentration | Sample | Compounds | Concentration Found (ng/kg) |
|---|---|---|---|---|---|---|---|---|
|
| 2-Phenylphenol | 470 ± 30 | Ethylparaben | 950 ± 60 | Ethylparaben | 260 ± 10 | ||
|
| 2-Phenylphenol | 1300 ± 100 | Ethylparaben | 320 ± 20 | Ethylparaben | 800 ± 50 | ||
|
| 2-Phenylphenol | 960 ± 60 | Butylparaben | 330 ± 20 | ||||
|
| nd | - | Ethylparaben | 89 ± 5 | 2-Phenylphenol | 3500 ± 200 | ||
|
| 2-Phenylphenol | 2000 ± 100 | Bisphenol A | 990 ± 60 | 2-Phenylphenol | 2400 ± 100 | ||
|
| 2-Phenylphenol | 510 ± 30 | Ethylparaben | 91 ± 6 | nd | - | ||
|
| Bisphenol A | 4300 ± 300 | Ethylparaben | 4100 ± 200 | nd | - | ||
|
| Ethylparaben | 230 ± 10 | Ethylparaben | 4300 ± 300 | nd | - | ||
|
| Ethylparaben | 120 ± 10 | Ethylparaben | 1600 ± 100 | nd | - | ||
|
| Ethylparaben | 160 ± 10 | Ethylparaben | 760 ± 50 | - | |||
|
| Ethylparaben | 3100 ± 200 | Metylparaben | 170 ± 10 | ||||
|
| Ethylparaben | 280 ± 20 | Ethylparaben | 920 ± 60 |
a (%, fat content/protein content); nd: not detected.
Summary of studies reporting the presence of EDCs in dairy products a.
| Analytes | Samples | Location | Sample Pretreatment and Extract Clean-Up | Analytical | Analytical | Concentration in Real Samples | References |
|---|---|---|---|---|---|---|---|
| Parabens, triclosan, BPA, 2-phenylphenol and other phenols | Human milk | USA | SPE | HPLC-MS/MS | LOD: 100–400 ng/L | Parabens: 320–3040 ng/L | [ |
| BPA | Milk, butter and ultra-fresh dairy products and other foods | France | SPE, derivatisation (NMNTRA) | GC-MS/MS | LOD: 90–210 ng/kg | 45–6100 ng/kg | [ |
| Diazinon, methidathion, malathion, chloropyrifos, bromophos methyl and other pesticides | Cheese | Egypt | QuEChERS, DSPE | CG-MS/MS | LOD: 5000–50,000 ng/kg | 21,000–73,000 ng/kg | [ |
| Fethion, parathion methyl and other pesticides | Milk, butter, cheese and yogurt | Turkey | QuEChERS | GC-MS | LOD: 260–2990 ng/kg | ND | [ |
| Parabens, TCS, BPA, nonylphenol, octylphenol and other phenols | Human milk and other biological fluid | Spain | SPE, derivatisation (BSTFA + 1% TMCS) | CG/MS | LOD: 1–9 ng/L | Phenols: 550–5600 ng/L | [ |
| Dichlorvos, diazinon and other pesticides | Milk and other foods | Iran | SPE/DLLME | GC-MS | LOD: 0.5–1 ng/kg | ND | [ |
| BPA, nonylphenol and octylphenol | Milk and eggs | China | MSPDE | HPLC-MS/MS | LOD: 50–100 ng/kg | BPA: 490 ng/kg | [ |
| BPA | Milk | Spain | DMSPE | HPLC-UV | LOD: 3050 ng/L | ND | [ |
| Bisphenols | Milk | China | QuEChERS | HPLC-FLD | LOD: 1000–3100 ng/kg | 13,700 ng/kg | [ |
| Bisphenols and parabens | Human milk | Spain | QuEChERS | HPLC-MS/MS | LOQ: 100–250 ng/L | Bisphenols: 130–1660 ng/L | [ |
| BPA, nonylphenol, | Milk | China | SPME | HPLC-DAD | LOD: 91–230 ng/L | ND | [ |
| Diazinon, methidathion, parathion ethyl, parathion methyl and other pesticides | Raw milk | Italy | LLE, SPE | GC-NPD | LOD: 1000–5000 ng/kg | ND | [ |
| Diazinon, chlorpyrifos, dimethoate, fethion sulphoxide, malathion, parathion methyl and other pesticides | Cheese and other foods | China | QuEChERS | HPLC-MS/MS | LOD: 2000 ng/kg | ND | [ |
| Organophosphorus pesticides, parabens, alkylphenols, phenylphenols, BPA, TCS | Dairy products | Spain | LLE, SPE, derivatization (BSTFA + 1% TMCS) | GC-MS | LOD: 6–40 ng/kg | Parabens: 89–4300 ng/kg | This work |
a BPA: bisphenol A, BSTFA: N,O-bis(trimethylsilyl)trifluoroacetamide), DAD: diode array detector, DLLME: dispersive liquid-liquid microextraction, DMSPE: dispersive micro-solid phase extraction, DSPE: dispersive solid-phase microextraction, FLD: fluorescence detector, CG-MS: gas chromatography coupled to mass spectrometry, CG-MS/MS: gas chromatography coupled to tandem mass spectrometry, HPLC: high performance liquid chromatography, HPLC-MS/MS: high performance liquid chromatography coupled to tandem mass spectrometry, LLE: liquid–liquid extraction, LOD: limit of detection, LOQ: limit of quantification, ND: not detected, NMNTRA: N-mehtyl-N(trimethylsilyl)-trifluoroacetamide, NPD: nitrogen-phosphorus detector, QuEChERS: quick, easy, cheap, effective, robust and safe, R: recovery, SPE: solid-phase extraction, SPME: solid-phase microextraction, TCS: triclosan, TMCS: trimethylchlorosilane, UV: ultraviolet-visible detector.