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首页> 外文期刊>Journal of Medicinal Chemistry >Automated analysis of large sets of heteronuclear correlation spectra in NMR-based drug discovery.
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Automated analysis of large sets of heteronuclear correlation spectra in NMR-based drug discovery.

机译:在基于NMR的药物发现中自动分析大量的异核相关光谱。

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Drug discovery procedures based on NMR typically require the analysis of thousands of NMR spectra. For example, in "SAR by NMR", two-dimensional NMR spectra are recorded for a target protein mixed with ligand candidates from a comprehensive library of small molecules and are compared to the corresponding spectrum for the protein alone. We present an automated procedure for the comparative analysis of large sets of heteronuclear single quantum coherence spectra, which is based on three-way decomposition and implemented as the software package MUNIN. In a single step, spectra with differences in the peak positions (indicating ligand binding) and the affected peaks are identified. By omission of peak picking, ad hoc scoring of the quality of doubtful peaks is avoided. The procedure has been tested on the bacterial ribonuclease barnase, with a protein concentration of only 50 microM, using several small molecules including the substrate analogue 3'-GMP. Sets of 51 spectra were processed simultaneously, and it is concluded that spectra with binding ligands can be unambiguously identified from much larger sets of spectra.
机译:基于NMR的药物发现程序通常需要分析数千个NMR光谱。例如,在“通过SAR的SAR”中,记录了目标蛋白质与来自小分子综合库的配体候选物混合的二维NMR光谱,并将其与单独蛋白质的对应光谱进行比较。我们提出了一种用于比较分析大批异核单量子相干光谱的自动化程序,该程序基于三路分解并以软件包MUNIN的形式实现。只需一步即可确定峰位置(表明配体结合)和受影响峰具有差异的光谱。通过省略峰选择,可以避免对可疑峰质量进行临时评分。该过程已在细菌核糖核酸酶barnase上进行了测试,蛋白质浓度仅为50 microM,使用了几种小分子,包括底物类似物3'-GMP。同时处理了51个光谱集,并得出结论,可以从更大的光谱集中明确识别具有结合配体的光谱。

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