Comparison of Four Extraction Techniques for the Evaluation of Volatile Compounds in Spray-Dried New Zealand Sheep Milk
Abstract
:1. Introduction
2. Results
2.1. Evaluation Criteria
2.2. Sensitivity and Selectivity
2.3. Reproducibility
3. Discussion
3.1. Comparison of Method Sensitivity, Selectivity, Reproducibility, and Efficiency
3.2. Comparison of Results with Prior Analyses of Sheep Milk Volatiles
3.3. Overall Comparison
4. Materials and Methods
4.1. Chemicals
4.2. Spray-Dried Sheep Milk Powder
4.3. Sample Preparation
4.4. Equipment and Glassware Preparation
4.5. PDMS Stir Bar Extractions (SBSE and HSSE)
4.6. Solid Phase Microextraction (SPME)
4.7. Solvent Assisted Flavour Evaporation (SAFE)
4.8. GC-MS Analysis
4.9. Data Analysis
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Appendix A
References
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RI ‡ | SAFE | SPME | HSSE | SBSE | ||||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
# | Compound † | Obs | Ref | Method(s) of ID ¥ | Quant Ion (m/z) | %RSD | %RSD | %RSD | %RSD | Previous ID Sheep Milk | ||||
Alcohols | ||||||||||||||
1 | 1-pentanol 2 | 1230 | 1256 | MS, RI | 70 | trace | --- | 26.7 | 18.5 | 11.8 | 3.0 | 1.3 | 6.5 | [4,6,10] |
2 | 2-furanmethanol 2 | 1627 | 1620 | MS, RI | 98 | nd | --- | nd | --- | 6.3 | 47.8 | trace | --- | [8] |
3 | phenol 3 | 1961 | 1965 | MS, RI | 94 | nd | --- | nd | --- | trace | --- | trace | --- | |
Aldehydes | ||||||||||||||
4 | pentanal 1 | 935 | 974 | MS, RI | 86 | nd | --- | 4.3 | 7.6 | trace | --- | trace | --- | [4,6,9,10] |
5 | hexanal 1 | 1058 | 1069 | MS, RI | 82 | nd | --- | nd | --- | trace | --- | trace | --- | [4,8,9,10] |
6 | heptanal 2 | 1163 | 1165 | MS, RI | 81 | 8.6 | 13.0 | 5.4 | 11.1 | 5.6 | 15.3 | 2.5 | 5.9 | [4,6,9,10] |
7 | octanal 2 | 1266 | 1267 | MS, RI | 81 | nd | --- | nd | --- | trace | --- | 0.7 | 30.1 | [4,6,10] |
8 | nonanal 2 | 1368 | 1396 | MS, RI | 98 | 14.6 | 54.4 | trace | --- | 7.1 | 12.9 | 3.4 | 12.5 | [4,6,10] |
9 | furfural 2 | 1431 | 1451 | MS, RI | 96 | nd | --- | nd | --- | trace | --- | trace | --- | [8] |
10 | 2,4-heptadienal 2 | 1460 | 1469 | MS, RI | 81 | nd | --- | nd | --- | nd | --- | trace | --- | [10] |
11 | benzaldehyde 2 | 1485 | 1485 | MS, RI | 106 | trace | --- | trace | --- | 4.7 | 10.3 | 1.9 | 16.0 | [4,6] |
12 | (Z)-2-nonenal 2 | 1502 | 1534 | MS, RI | 96 | nd | --- | nd | --- | trace | --- | trace | --- | [10] |
Alkanes | ||||||||||||||
13 | octane 1 | 800 | 800 | MS, RI | 85 | nd | --- | 4.4 | 8.7 | nd | --- | nd | --- | [9] |
14 | 2,2,4,6,6-pentamethyl heptane 1 | 927 | 957 | MS, RI | 99 | nd | --- | 3.8 | 7.1 | 7.8 | 36.9 | trace | --- | |
15 | decane 1 | 1000 | 1000 | MS, RI | 142 | nd | --- | 3.4 | 7.0 | trace | --- | trace | --- | [4,6] |
16 | dodecane 2 | 1200 | 1200 | MS, RI | 85 | 15.5 | 40.2 | 9.5 | 11.1 | 10.8 | 26.2 | 1.1 | 19.9 | [4] |
17 | tetradecane 2 | 1400 | 1400 | MS, RI | 85 | nd | --- | 2.6 | 13.2 | 6.7 | 18.5 | 1.4 | 32.4 | [4,6] |
18 | hexadecane 2 | 1600 | 1600 | MS, RI | 85 | nd | --- | trace | --- | trace | --- | 0.8 | 28.8 | [4] |
19 | octadecane 3 | 1800 | 1800 | MS, RI | 85 | nd | --- | nd | --- | trace | --- | 9.9 | 38.2 | |
Acids | ||||||||||||||
20 | acetic acid 2 | 1425 | 1440 | MS, RI | 60 | trace | --- | nd | --- | 10.3 | 99.5 | 4.5 | 22.1 | [8] |
21 | butanoic acid 2 | 1596 | 1620 | MS, RI | 60 | nd | --- | trace | --- | trace | --- | 2.0 | 32.8 | [8,27] |
22 | hexanoic acid 3 | 1808 | 1834 | MS, RI | 60 | 6.6 | 127.9 | 28.7 | 28.9 | 19.0 | 30.4 | 8.1 | 11.4 | [8,27] |
23 | octanoic acid 3 | 2017 | 2050 | MS, RI | 60 | 11.1 | 150.1 | 18.7 | 19.7 | 10.9 | 13.8 | 18.8 | 6.7 | [8,10,27] |
24 | nonanoic acid 3 | 2122 | 2157 | MS, RI | 60 | 19.3 | 89.8 | trace | --- | 8.9 | 20.8 | 5.6 | 18.7 | [27] |
25 | decanoic acid 3 | 2226 | 2240 | MS, RI | 60 | 16.6 | 19.3 | trace | --- | 6.9 | 41.9 | 90.2 | 7.5 | [8,27] |
26 | dodecanoic acid 3 | 2435 | 2449 | MS, RI | 60 | 14.1 | 15.6 | nd | --- | 27.1 | 26.6 | 34.5 | 5.9 | [8,27] |
27 | tetradecanoic acid 3 | 2641 | 2674 | MS, RI | 60 | nd | --- | nd | --- | 17.2 | 27.7 | 28.3 | 8.4 | [8,27] |
28 | pentadecanoic acid 3 | 2743 | 2779 | MS, RI | 60 | nd | --- | nd | --- | 5.7 | 21.3 | 2.7 | 26.3 | |
29 | hexadecanoic acid 3 | 2847 | 2871 | MS, RI | 60 | 129.0 | 139.3 | nd | --- | 91.2 | 39.9 | 54.8 | 17.5 | [27] |
Ketones | ||||||||||||||
30 | 4-methyl-2-pentanone 1 | 981 | 1008 | IS | 100 | 80.0 | 5.1 | 40.0 | 11.8 | 40.0 | 30.6 | 40.0 | 33.1 | |
31 | 3-octanone 2 | 1228 | 1242 | IS | 99 | 80.0 | 3.5 | 40.0 | 12.6 | 40.0 | 5.0 | 40.0 | 6.1 | |
32 | 4-decanone 3 | 1404 | --- | IS | 113 | 80.0 | 5.3 | 40.0 | 13.0 | 40.0 | 8.6 | 40.0 | 10.6 | |
33 | 2-heptanone 2 | 1160 | 1160 | MS, RI | 114 | nd | --- | nd | --- | trace | --- | 0.3 | 11.6 | [4,6,8,10] |
34 | 2-nonanone 2 | 1363 | 1389 | MS, RI | 142 | nd | --- | nd | --- | nd | --- | 0.2 | 4.9 | [4,6,10] |
35 | 3,5-octanedien-2-one 2 | 1487 | 1521 | MS, RI | 124 | nd | --- | nd | --- | trace | --- | 0.8 | 2.4 | |
36 | acetophenone 2 | 1609 | 1628 | MS, RI | 120 | nd | --- | nd | --- | 1.0 | 16.9 | trace | --- | |
37 | 2(5H)-furanone 2 | 1710 | 1712 | MS, RI | 84 | nd | --- | nd | --- | trace | --- | trace | --- | [8] |
Lactones | ||||||||||||||
38 | δ-hexalactone 3 | 1747 | 1751 | MS, RI, Std* | 70 | 12.8 | 16.1 | nd | --- | nd | --- | trace | --- | |
39 | δ-octalactone 3 | 1923 | 1964 | MS, RI, Std | 99 | 17.1 | 17.2 | trace | --- | trace | --- | 14.3 | 5.6 | |
40 | γ-decalactone 3 | 2101 | 2103 | MS, RI, Std | 85 | nd | --- | nd | --- | nd | --- | 5.6 | 8.0 | |
41 | δ-decalactone 3 | 2149 | 2173 | MS, RI, Std | 99 | 43.9 | 17.7 | trace | --- | trace | --- | 156.5 | 5.1 | [4,6] |
42 | γ-dodecalactone 3 | 2331 | 2353 | MS, RI, Std | 85 | nd | --- | nd | --- | nd | --- | 10.8 | 9.0 | |
43 | δ-dodecalactone 3 | 2380 | 2395 | MS, RI, Std | 99 | 20.7 | 24.2 | nd | --- | nd | --- | 133.8 | 5.1 | [4,6] |
44 | δ-tetradecalactone 3 | 2609 | 2701 | MS, Std | 99 | nd | --- | nd | --- | nd | --- | 32.5 | 7.4 | |
45 | δ-hexadecalactone 3 | 2832 | --- | Std* | 99 | nd | --- | nd | --- | nd | --- | 6.0 | 14.2 | |
Sulphur compounds | ||||||||||||||
46 | dimethyl sulphide 1 | 776 | 777 | MS, RI | 62 | nd | --- | 2.7 | 9.7 | nd | --- | nd | --- | [8,10] |
47 | dimethyl sulphone 2 | 1857 | 1895 | MS, RI | 94 | 233.6 | 8.3 | 62.8 | 35.1 | trace | --- | 7.4 | 14.3 | [4,8,10] |
Terpenes | ||||||||||||||
48 | D-limonene 2 | 1176 | 1175 | MS, RI | 136 | 4.3 | 123.5 | nd | --- | 0.8 | 33.8 | 0.4 | 11.4 | [10] |
49 | p-cymene 2 | 1248 | 1253 | MS, RI | 134 | 5.4 | 93.8 | nd | --- | nd | --- | nd | --- | [10] |
50 | neophytadiene 3 | 1914 | 1915 | MS, RI | 123 | 23.4 | 29.4 | nd | --- | trace | --- | 15.3 | 42.4 | |
Other | ||||||||||||||
51 | N,N-diethylformamide, 2 | 1391 | 1413 | MS, RI | 101 | nd | --- | d | --- | 10.6 | 26.6 | .8 | 18.0 | |
Total Apparent Conc. | 627 | 173 | 271 | 657 |
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High, R.; Bremer, P.; Kebede, B.; Eyres, G.T. Comparison of Four Extraction Techniques for the Evaluation of Volatile Compounds in Spray-Dried New Zealand Sheep Milk. Molecules 2019, 24, 1917. https://doi.org/10.3390/molecules24101917
High R, Bremer P, Kebede B, Eyres GT. Comparison of Four Extraction Techniques for the Evaluation of Volatile Compounds in Spray-Dried New Zealand Sheep Milk. Molecules. 2019; 24(10):1917. https://doi.org/10.3390/molecules24101917
Chicago/Turabian StyleHigh, Ryan, Phil Bremer, Biniam Kebede, and Graham T. Eyres. 2019. "Comparison of Four Extraction Techniques for the Evaluation of Volatile Compounds in Spray-Dried New Zealand Sheep Milk" Molecules 24, no. 10: 1917. https://doi.org/10.3390/molecules24101917
APA StyleHigh, R., Bremer, P., Kebede, B., & Eyres, G. T. (2019). Comparison of Four Extraction Techniques for the Evaluation of Volatile Compounds in Spray-Dried New Zealand Sheep Milk. Molecules, 24(10), 1917. https://doi.org/10.3390/molecules24101917