Campus Chemical Instrument Center, The Ohio State University, 460 W. 12th Avenue, Columbus, OH, 43210, USA.
Department of Chemistry and Biochemistry, The Ohio State University, 100 West 18th Avenue, Columbus, OH, 43210, USA.
Angew Chem Int Ed Engl. 2017 Jul 3;56(28):8149-8152. doi: 10.1002/anie.201703587. Epub 2017 Jun 13.
Modern applications of 2D NMR spectroscopy to diagnostic screening, metabolomics, quality control, and other high-throughput applications are often limited by the time-consuming sampling requirements along the indirect time domain t . 2D total correlation spectroscopy (TOCSY) provides unique spin connectivity information for the analysis of a large number of compounds in complex mixtures, but standard methods typically require >100 t increments for an accurate spectral reconstruction, rendering these experiments ineffective for high-throughput applications. For a complex metabolite mixture it is demonstrated that absolute minimal sampling (AMS), based on direct fitting of resonance frequencies and amplitudes in the time domain, yields an accurate spectral reconstruction of TOCSY spectra using as few as 16 t points. This permits the rapid collection of homonuclear 2D NMR experiments at high resolution with measurement times that previously were only the realm of 1D experiments.
二维核磁共振波谱在诊断筛选、代谢组学、质量控制和其他高通量应用中的现代应用通常受到间接时域 t 中耗时的采样要求的限制。二维全相关光谱(TOCSY)为分析复杂混合物中的大量化合物提供了独特的自旋连接信息,但标准方法通常需要 >100 个 t 增量才能进行准确的光谱重建,从而使这些实验在高通量应用中无效。对于复杂的代谢物混合物,已经证明基于在时域中直接拟合共振频率和幅度的绝对最小采样(AMS)可以使用多达 16 个 t 点准确重建 TOCSY 光谱。这允许以高分辨率快速采集同核二维 NMR 实验,测量时间以前仅在一维实验的范围内。