| Literature DB >> 28496290 |
Irmina Wojciechowska1, Aleksandra Wojciechowska1, Karolina Wieszczycka1, Przemysław Aksamitowski1, Joanna Zembrzuska2, Grzegorz Framski3.
Abstract
LC-MS/MS method to determine hydrophobic N-alkyloxy substituted amidines: N-(2-ethylhexyloxy)pyridine-2-carboximidamide, N-(2-ethylhexyloxy)pyridine-3-carboximidamide, N-(2-ethylhexyloxy)pyridine-4-carboximidamide, N-decyloxy pyridine-2-carboximidamide, N-decyloxypyridine-3-carboximidamide and N-decyloxypyridine-4-carboximidamide was developed and validated in terms of linearity, precision and accuracy. The developed method was successfully applied to monitor and control the synthesis process. The experimental data points indicated that the straight chain alkyl bromide reacted most rapidly than branched alkyl bromide and the enhancement of the reaction efficiency strongly depended on reaction temperature.Entities:
Keywords: LC–MS/MS; N-alkyloxypyridinecarboximidamide; O-alkylation reaction; Reaction kinetics
Year: 2016 PMID: 28496290 PMCID: PMC5403844 DOI: 10.1007/s11696-016-0019-1
Source DB: PubMed Journal: Chem Zvesti ISSN: 0366-6352 Impact factor: 2.097
Fig. 1Mechanism of O-alkylation of N-hydroxypyridinecarboximidamide
Structure and spectroscopic data of studied N-alkyloxypyridinecarboximidamides with 2-ethylhexyloxy group
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1H NMR (400 MHz, CDCl3) |
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13C NMR (CDCl3) |
| MS(ESI) |
Structure and spectroscopic data of studied N-alkyloxypyridinecarboximidamides with decyloxy group
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1H NMR (400 MHz, CDCl3) |
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13C NMR (CDCl3) |
| MS(ESI) |
Regression equations, linear ranges, LOD and LOQ parameters determined for N-(2-ethylhexyloxy)pyridine-2-carboximidamide (2-Eh), N-(2-ethylhexyloxy)pyridine-3-carboximidamide (3-Eh) and N-(2-ethylhexyloxy)pyridine-4-carboximidamide (4-Eh)
| Analyte | Mass of degradation products | Linear range (ng mL−1) | Linear regression equation | LOD (ng mL−1) | LOQ (ng mL−1) |
|---|---|---|---|---|---|
| 2-Eh | 250 → 105 | 0.25–50 |
| 0.013 | 0.25 |
| 250 → 120 | 0.25–50 |
| 0.013 | 0.25 | |
| 250 → 138 | 0.25–50 |
| 0.013 | 0.25 | |
| 3-Eh | 250 → 79 | 0.25–500 |
| 0.050 | 0.25 |
| 250 → 105 | 0.25–250 |
| 0.025 | 0.25 | |
| 250 → 121 | 0.25–500 |
| 0.025 | 0.25 | |
| 4-Eh | 250 → 79 | 0.10–500 |
| 0.025 | 0.10 |
| 250 → 121 | 0.10–100 |
| 0.050 | 0.10 | |
| 250 → 138 | 0.10–250 |
| 0.050 | 0.10 |
r 2 > 0.999; n = 3
Regression equations, linear ranges, LOD and LOQ parameters determined for N-decyloxypyridine-2-carboximidamide (2-D), N-decyloxypyridine-3-carboximidamide (3-D) and N-decyloxypyridine-4-carboximidamide (4-D)
| Analyte | Mass of degradation products | Linear range (ng mL−1) | Linear regression equation | LOD (ng mL−1) | LOQ (ng mL−1) |
|---|---|---|---|---|---|
| 2-D | 278 → 78 | 0.01–250 |
| 0.025 | 0.01 |
| 278 → 96 | 0.10–250 |
| 0.025 | 0.10 | |
| 278 → 120 | 0.10–250 |
| 0.025 | 0.10 | |
| 3-D | 278 → 96 | 0.50–500 |
| 0.050 | 0.50 |
| 278 → 105 | 0.25–500 |
| 0.050 | 0.25 | |
| 278 → 120 | 0.30–10 |
| 0.050 | 0.30 | |
| 4-D | 278 → 79 | 0.50–250 |
| 0.025 | 0.50 |
| 278 → 105 | 0.25–250 |
| 0.050 | 0.25 | |
| 278 → 120 | 0.50–1000 |
| 0.050 | 0.50 | |
| 278 → 121 | 0.50–250 |
| 0.050 | 0.50 |
r 2 > 0.999; n = 3
Fig. 2Changes in concentration of N-(2-ethylhexyloxy)pyridine-2-carboximidamide during reaction carried out at 50 and 80 °C
Fig. 3Changes in concentration of N-(2-ethylhexyloxy)pyridine-3-carboximidamide during reaction carried out at 50 and 80 °C
Fig. 4Changes in concentration of N-(2-ethylhexyloxy)pyridine-4-carboximidamide during reaction carried out at 50 and 80 °C
Fig. 5Changes in concentration of N-decyloxypyridine-2-carboximidamide during reaction carried out at 50 and 80 °C
Fig. 6Changes in concentration of N-decyloxypyridine-4-carboximidamide during reaction carried out at 50 and 80 °C
Fig. 7Changes in concentration of N-decyloxypyridine-3-carboximidamide during reaction carried out at 50 and 80 °C