| Literature DB >> 26090434 |
Hecheng Wang1, Haiwei Huang2, Jin Cao2, Dehua Chui3, Shengyuan Xiao4.
Abstract
High performance liquid chromatography tandem mass spectrometry (HPLC MS) has been widely used for β-lactam antibiotics determination. However, its application to identify impurities of these frequently used drugs is not sufficient at present. In this job, characteristic profiles of the collision induced dissociation (CID) spectra of both β-Entities:
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Year: 2015 PMID: 26090434 PMCID: PMC4450268 DOI: 10.1155/2015/697958
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1Representative chromatograms of cefixime and impurities. (a) Total ion chromatogram of cefixime capsule (TIC), (b) extracted ion chromatogram (EIC) at m/z 454; (c) EIC at m/z 472; (d) EIC exclude m/z 454. 0, cefixime; 1, m/z 454; 2, 3, m/z 472; 4, m/z 442; 5, 6, m/z 428; 7, m/z 468; 8, 9, m/z 486; 10, m/z 442; 11, m/z 482; and 12, 13, m/z 500. The data was recorded under positive mode with an electrospray ionization source (ESI). The scan range is between 100 amu and 800 amu.
Figure 2Represent online ultra violine spectrum (UV) of cefixime and ring-opened cefixime. The spectrum was recorded online. The solution is acetonitrile (32–36%).
Figure 3Representative low energy activated CID spectra of cefixime (a) and ring-opened cefixime (b).
Scheme 1Proposed fragmentation pattern for cefixime.
Scheme 3Fragmentation patterns proposed for deaminated daughter ion of cefprozil (R-1) and amoxillin (R-2).
Figure 4CID spectra of cefprozil activated under different activating voltage. The spectra were obtained with a Q-TOF. The activating voltages were 26 volt, 10 volt, and 5 volt, respectively.
Figure 5Represent CID spectra of deaminated daughter ion of cefprozil (a) and amoxillin (b). The spectra were obtained with the ion trap. The resonance voltages were both 1 volt, and the activating times were both 20 millisecond. The activating widths were both 10 amu.
Scheme 2Proposed mechanism for the formation of daughter ion m/z 337.
Figure 6High energy activated CID spectra of cefixime (a) and ring-opened cefixime (b). The spectra were obtained with a Q-TOF under the mode of auto MS/MS. The activating voltages were 27.7 volt and 28.6 volt, respectively.
Scheme 4Structures of cefixime and impurities with β-lactam ring.
Scheme 5Structure of ring-opened impurities of cefixime.
Figure 7Representative chromatogram of cefdinir capsule and its impurities. 0 represents the major constituent.
Scheme 6Proposed pathway for the formation of fragment at m/z 337.
Figure 8Representative chromatograms of cefaclor capsule and its impurities. 0 represents the major constituent.
Figure 9Low energy activated CID spectra of cefaclor (a), delta-3 cefaclor (b), and corresponding ring-opened compounds ((c) and (d)).
Scheme 7Proposed fragmentation pattern for cefaclor and delta-3 cefaclor.