| Literature DB >> 35627569 |
Beatrice Campanella1, Tommaso Lomonaco2, Edoardo Benedetti3, Massimo Onor1, Riccardo Nieri1, Federica Marmorino4, Chiara Cremolini4, Emilia Bramanti1.
Abstract
Background. Salivary metabolomics is garnering increasing attention in the health field because of easy, minimally invasive saliva sampling. Dihydrouracil (DHU) is a metabolite of pyrimidine metabolism present in urine, plasma, and saliva and of fluoropyrimidines-based chemotherapeutics. Its fast quantification would help in the identification of patients with higher risk of fluoropyrimidine-induced toxicity and inborn errors of pyrimidine metabolism. Few studies consider DHU as the main salivary metabolite, but reports of its concentration levels in saliva are scarce. We propose the direct determination of DHU in saliva by reversed-phase high-performance liquid chromatography (RP-HPLC-UV detector) as a simple, rapid procedure for non-invasive screening. Methods. The method used was validated and applied to 176 saliva samples collected from 21 nominally healthy volunteers and 4 saliva samples from metastatic colorectal cancer patients before and after receiving 5-fluorouracil chemotherapy. Results. DHU levels in all samples analyzed were in the μmol L-1 range or below proving that DHU is not the main metabolite in saliva and confirming the results found in the literature with LC-MS/MS instrumentation. Any increase of DHU due to metabolism dysfunctions can be suggestive of disease and easily monitored in saliva using common, low-cost instrumentation available also for population screening.Entities:
Keywords: chemotherapy metabolite; dihydrouracil; high-performance liquid chromatography; saliva
Mesh:
Substances:
Year: 2022 PMID: 35627569 PMCID: PMC9140617 DOI: 10.3390/ijerph19106033
Source DB: PubMed Journal: Int J Environ Res Public Health ISSN: 1660-4601 Impact factor: 4.614
Figure 1(A) Absorbance chromatogram at 220 nm of 5, 10, and 45 μmol L−1 DHU. (B) Absorbance chromatogram at 220 nm of unspiked saliva (continuous line) and spiked with 10 μmol L−1 DHU (dotted line). (C) Absorbance chromatogram at 220 nm of unspiked saliva (continuous line) and spiked with 1 (red line), 3 (blue line), 10 (magenta line), or 30 μmol L−1 DHU (green line). (D) External calibration curve (full circle) and calibration curve of DHU analytical standard added in saliva (open circle) (N = 3 replicates).
Calibration curves and limit of quantitation LOQ for the determination of dihydrouracil DHU by HPLC-DAD (N = 3 replicates).
| External Calibration Curve | Analytical Standard | |
|---|---|---|
| Slope (μmol−1 L) | 4.443 ± 0.053 | 4.450 ± 0.044 |
| Intercept | 60.8 ± 26.18 | −4.238 ± 50.9 |
| R2 | 0.9981 | 0.9990 |
| LOQ (μmol L−1) | 0.103 | 0.103–3.0 |
The matrix effect was ruled out by the negligible difference (p > 0.05) observed between the external and internal calibration slope [27].
Figure 2Representative absorbance chromatogram at 220 nm of saliva samples of S20 (dotted line, 0.66 ± 0.67 μmol L−1 DHU, N = 3 sampling in different days) and S21 (continuous line, 0.19 ± 0.14 μmol L−1 DHU, N = 4 sampling in different days) compared with the chromatogram of a nominally healthy volunteer with DHU < LOQ (S18, dash-dotted line).
Summary of data on DHU quantitation in saliva.
| Data Set | Method | Concentration (μmol L−1) | Ref. |
|---|---|---|---|
| 73 colorectal cancer patients treated with 5-fluorouracil-based chemotherapy | HPLC method (Reversed Phase and cation exchange) | 0.043 ± 0.035 (after chemotherapy) | [ |
| 10 healthy adults | <3 in adults | [ | |
| 38 healthy volunteers | LC-MS/MS (dried spot saliva) | 0.926 (median) (range 0.673–1.798) | [ |
| 60 patients with gastrointestinal malignancies | LC–MS/MS | 2.168 (median) (range 1.139–5.013) | [ |
| 155 healthy adult volunteers | Capillary electrophoresis-MS | 2210 ± 353 | [ |
| 16 healthy adult volunteers | HPLC–UV | 2168 ± 128 | [ |
| 21 healthy volunteers + 4 colorectal cancer patients treated with 5-fluorouracil-based chemotherapy (176 saliva samples collected in different days) | RP-HPLC-UV | This work |
1 LOQ = 0.103–3 μmol L−1.