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Rapid identification of atypical tetracyclines using tandem mass spectrometric fragmentation patterns

机译:使用串联质谱碎裂模式快速鉴定非典型四环素

摘要

[Rationale]: When applying biosynthetic engineering approaches at the early stages of drug discovery, e.g. aiming to develop novel tetracycline analogues, target compounds are generally produced by engineered microorganisms in low yields. Rapid and reliable identification of metabolites with desired structural modification directly from bacterial cultures is therefore of great importance. [Methods]: Structural elucidation of atypical tetracyclines was carried out by fragmentation applying electrospray ionisation tandem mass spectrometry (ESI-MS/MS) (triple quadrupole - linear ion trap; Applied Biosystems 4000 QTRAP) and a high-resolution mass spectrometer (Agilent Technologies 6224 TOF). Fragmentation patterns were obtained either with direct injection or by applying separation of target compounds with high-performance liquid chromatography (HPLC) prior to mass spectrometry. In-source and CID fragmentation were compared. Theoretical calculations of target structures using the Gaussian programme suite were carried out with the aim of strengthening experimental structural elucidation. [Results]: Recombinant strains of Amycolatopsis sulphurea producing atypical tetracyclines chelocardin, modified chelocardin analogues (9-demethylchelocardin and 2-carboxyamido-2-deacetyl-chelocardin (CDCHD), and anhydrotetracycline (ATC) were analysed by collision-induced dissociation (CID) fragmentation with higher collision energies to yield structurally important fragments which were identified. We have demonstrated that ATC is more prone to fragmentation compared to its epimer, which was further supported by comparison of both structures calculated with ab initio calculations. [Conclusions]: We have demonstrated that fragmentation patterns of atypical tetracyclines in CID-MS spectra enable rapid structural elucidation of target metabolites produced by cultures of genetically engineered bacteria. This method is of significant importance for early stages of drug development considering that isolation of target metabolites produced at low concentration is challenging.
机译:[理论]:在药物研发的早期阶段应用生物合成工程方法时,例如为了开发新的四环素类似物,目标化合物通常由工程微生物以低收率生产。因此,直接从细菌培养物中快速,可靠地鉴定具有所需结构修饰的代谢物非常重要。 [方法]:通过电喷雾电离串联质谱(ESI-MS / MS)(三重四极杆-线性离子阱; Applied Biosystems 4000 QTRAP)和高分辨率质谱仪(Agilent Technologies)进行片段化,对非典型四环素进行结构解析6224 TOF)。质谱分析之前,可以通过直接进样或通过使用高效液相色谱(HPLC)分离目标化合物来获得片段化模式。比较了源内和CID碎片。使用高斯程序套件对目标结构进行了理论计算,目的是加强实验结构的阐明。 [结果]:通过碰撞诱导解离法(CID)分析了产生非典型四环素螯合剂的硫链霉菌重组菌株,修饰的螯合剂类似物(9-去甲基螯合剂和2-羧基酰胺基-2-脱乙酰基螯合剂(CDCHD)和脱水四环素(ATC)。具有较高碰撞能的片段化产生了重要的结构片段,我们证实了ATC与其差向异构体相比更易于片段化,这是通过从头算计算得出的两个结构的比较进一步支持的。证明了CID-MS光谱中非典型四环素的片段化模式可以快速阐明基因工程菌培养物产生的目标代谢物,该方法对于药物开发的早期阶段具有重要意义,考虑到低浓度目标代谢物的分离是具有挑战性的。

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