| Literature DB >> 31416182 |
Karolina Kilińska1, Judyta Cielecka-Piontek1, Robert Skibiński2, Daria Szymanowska3, Andrzej Miklaszewski4, Kornelia Lewandowska5, Waldemar Bednarski5, Mikołaj Mizera1, Ewa Tykarska6, Przemysław Zalewski7.
Abstract
For the first time, the influence of ionising radiation on the physicochemical properties ofEntities:
Keywords: EPR; FT-IR; HPLC; Q-TOF; Raman; XRPD; ertapenem; microbiological activity; radiation sterilization
Mesh:
Substances:
Year: 2019 PMID: 31416182 PMCID: PMC6720701 DOI: 10.3390/molecules24162944
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Figure 1Calculated (black-DFT) and experimental (red) IR absorption spectra of ertapenem at room temperature.
Figure 2Calculated (black-DFT) and experimental (red) Raman scattering spectra of ertapenem at room temperature.
Selected characteristic vibrionic features of ertapenem in the form of the sodium salt (ERP); (s-stretching, b-bending, w-wagging, t-twisting, oop-out of plane).
| IR (cm−1) | RAMAN (cm−1) | DFT (cm−1) | Bands Assignment |
|---|---|---|---|
| 549 | 544 | Def. β-lactam ring | |
| 613 | 627 | Def. all molecule | |
| 663 | 687 | Def. benzene ring | |
| 675 | 717 | O-H oop. in COOH | |
| 775 | 775 | 788 | N-H oop. in pyrrolidine ring |
| 816 | 818 | Def. β-lactam ring | |
| 892 | 881 | C-C s + C-H w in pyrrolidine ring | |
| 940 | 953 | C-H r in pyrrolidine and benzene rings + C-C s in pyrrolidine ring | |
| 992 | 981 | C-S s | |
| 1001 | 1010 | Breathing benzene ring + C-C s in C-C s + C-N s in pyrrolidine ring | |
| 1057 | 1062 | C-N s between pyrrolidine and benzene rings + def. pyrrolidine ring | |
| 1075 | 1077 | 1075 | Breathing β-lactam ring |
| 1100 | 1100 | 1110 | C-C s near β-lactam ring + C-O s in COH + C-H w near β-lactam ring |
| 1151 | 1156 | C-O s in COH + C-C s near β-lactam ring + C-H w near β-lactam ring | |
| 1169 | 1167 | C-O s in COOH + C-H w | |
| 1180 | 1189 | C-H w near β-lactam and benzene ring | |
| 1228 | 1222 | C-C s between pyrrolidine and benzene rings + C-H t near pyrrolidine ring | |
| 1262 | 1258 | 1268 | C-H t near pyrrolidine ring |
| 1291 | 1315 | C-N s in β-lactam ring + C-H w near β-lactam ring | |
| 1315 | 1316 | 1320 | C-N s between pyrrolidine and benzene rings |
| 1385 | 1382 | 1395 | C-O-H b in COOH |
| 1441 | 1445 | 1438 | C-H b in benzene ring |
| 1565 | 1563 | 1564 | C-N-H b |
| 1572 | 1582 | C=O s in COONa | |
| 1613 | 1597 | C=C s in β-lactam ring | |
| 1656 | 1647 | C=C s in benzene ring | |
| 1692 | 1695 | 1764 | C=O s between pyrrolidine and benzene rings + C-N-H b |
| 1750 | 1755 | 1816 | C=O s in COOH and near β-lactam ring |
| 2726 | 2987 | C-H s in | |
| 2883 | 3055 | C-H s in pyrrolidine ring | |
| 2930 | 3171 | C-H s in pyrrolidine ring | |
| 2976 | 3208 | C-H s in benzene ring | |
| 3263 | 3474 | O-H in COOH group + N-H s in pyrrolidine ring | |
| 3406 | 3843 | O-H s + N-H s |
Figure 3Electron Paramagnetic Resonance (EPR) spectra of the ERP sample recorded at 48.5 (a) and 355.5 (b) hours after irradiation (25 kGy) (c) presents the simulated anisotropic spectrum according to the parameters described in the text.
Figure 4Concentration of free radicals vs. time after sterilisation (irradiation dose 25 kGy).
Melting enthalpies and characteristic temperatures of ERP from differential scanning calorimetry (DSC) data.
| (kGy) | Tonset (°C) | Tendset (°C) | ΔH (J/g) |
|---|---|---|---|
| 0 | 66.5 | 73.9 | 52.2 |
| 25 | 70.8 | 78.7 | 42.2 |
| 400 | 72.9 | 83.5 | 29.5 |
Figure 5Differential scanning calorimetry (DSC) curves of non-irradiated and irradiated (25 and 400 kGy) ERP.
Figure 6X-ray powder diffraction (XRPD) spectra of non-irradiated and irradiated ERT.
Figure 7Fourier Transform Infrared (FT-IR) spectra of non-irradiated and irradiated ertapenem.
Figure 8Raman spectra of non-irradiated and irradiated ERP.
MIC values (mg·L−1) of non-irradiated and irradiated ertapenem samples.
| Microorganism | 0 kGy | 25 kGy | 400 kGy |
|---|---|---|---|
| 250 | 250 | - | |
| 250 | 250 | - | |
| 250 | 250 | 250 | |
| 125 | 250 | 250 | |
| 250 | 250 | - | |
| 250 | 250 | 250 | |
| 125 | 125 | - | |
| 250 | 250 | - | |
|
| 250 | 250 | 250 |
| 250 | 250 | - |
Quadrupole time-of-flight (Q-TOF) accurate mass elemental composition and mass spectrometry/mass spectrometry (MS/MS) fragmentation of the analyzed substances.
| Chemical Structure | Retention Time | Measured Mass ( | Theoretical Mass ( | Mass Error (ppm) | Molecular Formula [M + H+] | MS/MS Fragmentation Ions ( | MS/MS Fragment Formula |
|---|---|---|---|---|---|---|---|
| Ertapenem | 7.3 | 476.14955 | 476.14859 | 2.01 | C22H26N3O7S | 432.15889 | C20H22N3O6S |
| E1 | 4.2 | 235.10871 | 235.10771 | 4.56 | C12H15N2O3 | 99.98675 | C5H12N2 |
| E2 | 5.5 | 267.07880 | 267.07978 | 1.63 | C12H15N2O3S | 230.96416 | C12H11N2O3 |