| Literature DB >> 32235801 |
Samir M Ahmad1, Mariana N Oliveira1, Nuno R Neng1,2, J M F Nogueira1,2.
Abstract
We developed, optimized and validated a fast analytical cycle using high throughput bar adsorptive microextraction and microliquid desorption (HT-BAμE-μLD) for the extraction and desorption of ketamine and norketamine in up to 100 urine samples simultaneously, resulting in an assay time of only 0.45 min/sample. The identification and quantification were carried out using large volume injection-gas chromatography-mass spectrometry operating in the selected ion monitoring mode (LVI-GC-MS(SIM)). Several parameters that could influencing HT-BAµE were assayed and optimized in order to maximize the recovery yields of ketamine and norketamine from aqueous media. These included sorbent selectivity, desorption solvent and time, as well as shaking rate, microextraction time, matrix pH, ionic strength and polarity. Under optimized experimental conditions, suitable sensitivity (1.0 μg L-1), accuracy (85.5-112.1%), precision (≤15%) and recovery yields (84.9-105.0%) were achieved. Compared to existing methods, the herein described analytical cycle is much faster, environmentally friendly and cost-effective for the quantification of ketamine and norketamine in urine samples. To our knowledge, this is the first work that employs a high throughput based microextraction approach for the simultaneous extraction and subsequent desorption of ketamine and norketamine in up to 100 urine samples simultaneously.Entities:
Keywords: LVI-GC-MS(SIM); high throughput bar adsorptive microextraction; ketamine; norketamine; urine
Mesh:
Substances:
Year: 2020 PMID: 32235801 PMCID: PMC7145298 DOI: 10.3390/molecules25061438
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Effect of polymeric sorbent selectivity (a), microliquid desorption (µLD) solvent (b) and µLD time (c), matrix pH (d), polarity (e) and ionic strength (f), as well as shaking speed (g) and microextraction time (h) on the enrichment of ketamine (KET) and norketamine (NKET) from aqueous media, obtained by high-throughput bar adsorptive microextraction (HT-BAµE)-µLD/large volume injection-gas chromatography-mass spectrometry operating in the selected ion monitoring mode (LVI-GC-MS(SIM)). The error bars represent the standard deviation for the recovery levels of three replicates for each parameter evaluated. The microextraction devices were designed to be used only one time, once they are inexpensive and in order to avoid carryover effects [17].
Chemical structures, octanol-water partition coefficients (log P) and acid dissociation constants (pKa), as well as retention times (RT) and ions (m/z) of KET and NKET obtained by LVI-GC-MS(SIM), under optimized instrumental conditions.
| Analyte | Chemical Structure | log P 1 | p | RT (min) | Ions ( |
|---|---|---|---|---|---|
|
|
| - | - | 5.42 | 83, 168, |
|
|
| 2.91 | 7.48 | 6.73 | |
|
|
| 3.35 | 7.45 | 6.97 |
1 Calculator plugins were used for structure property prediction and calculation, Marvin 6.2.2, 2014, ChemAxon (http://www.chemaxon.com). 2 Quantification (underlined) and qualifier ions.
Intraday (n = 6) and interday (n = 18) accuracy (%) and precision (± relative standard deviation (RSD), %), recovery yields (% ± RSD, %) and matrix effects (% ± RSD, %) using four spiking levels, as well as limits of detection (LODs), lower limits of quantification (LLOQs), linear ranges and r2, for KET and NKET in urine matrices, obtained by BAμE-μLD/LVI-GC-MS(SIM), under optimized experimental conditions.
| Parameter | KET | NKET |
|---|---|---|
|
| 1.0 | |
|
| 5.0 | |
|
| 5.0 to 1000.0 | |
|
| y = 0.0032x + 0.0066 | y = 0.0032x + 0.029 |
|
| 0.9990 | 0.9970 |
|
| ||
|
| 87.2 ± 7.6 | 87.5 ± 11.9 |
|
| 87.4 ± 6.6 | 98.8 ± 5.5 |
|
| 87.9 ± 8.5 | 89.0 ± 6.8 |
|
| 94.8 ± 3.2 | 98.6 ± 4.5 |
|
| ||
|
| 110.0 ± 5.7 | 102.0 ± 12.6 |
|
| 104.4 ± 10.1 | 112.1 ± 11.8 |
|
| 94.7 ± 8.7 | 89.8 ± 12.3 |
|
| 102.9 ± 6.9 | 85.5 ± 6.1 |
|
| ||
|
| 105.0 ± 9.2 | 103.1 ± 5.8 |
|
| 97.8 ± 7.9 | 89.8 ± 4.7 |
|
| 96.6 ± 7.2 | 88.1 ± 8.5 |
|
| 96.5 ± 4.0 | 84.9 ± 3.4 |
|
| ||
|
| −4.4 ± 6.1 | 8.4 ± 6.3 |
|
| 4.9 ± 2.9 | −4.6 ± 10.4 |
|
| 9.0 ± 1.5 | 2.5 ± 14.1 |
|
| −2.5 ± 6.2 | −9.1 ± 5.6 |
Comparison of the proposed method with other previously reported microextraction approaches for the determination of KET and NKET in urine samples.
| Microextraction Technique | HF-LPME | MEPS | SBSE | SPME | HF-LPME | HT-BAμE |
|---|---|---|---|---|---|---|
|
| GC-MS | GC-MS/MS | HPLC-UV | GC-MS | GC-FID | LVI-GC-MS |
|
| 0.1–0.25 | 5 | 2.3–9.1 | 100 | 8 | 1.0 |
|
| 0.5–50 | 10–250 | 30–3000 | 100–15000 | 3–350 | 5.0–1000.0 |
|
| 88.3–108 | 91.4–105.6 | n.a. | 105.9–113.6 | 75.2–119.3 | 85.5–112.1 |
|
| ≤10.1 | ≤9.2 | ≤8.9 | ≤14.8 | ≤8.9 | ≤12.6 |
|
| 85.2–101 | 72.5–100.7 | 90.8 | n.a. | n.a. | 84.9–105.0 |
|
| 2 | 0.25 | 3 | 1 | 3 | 0.5 |
|
| 60 a | 7.42 b | 40 c | 21 d | 20 c | 45 |
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| [ | [ | [ | [ | [ | This work |
n.a. Information not available. a Multi-tube vortexer. Number of simultaneous microextractions not available. b 8 cycles of 500 μL, 1 cycle of 250 μL and 2 cycles of 100 μL at rates of 10.0 μL s−1. c Magnetic stirrer. Number of simultaneous microextractions not available. d LEAP CombiPAL. Number of simultaneous microextractions not available.
Figure 2Total ion chromatogram of an assay from a spiked (125.0 μg L−1) and unspiked urine sample, performed by HT-BAμE-μLD/LVI-GC-MS(SIM), under optimized experimental conditions.