Literature DB >> 28573376

Maximal clique method for the automated analysis of NMR TOCSY spectra of complex mixtures.

Da-Wei Li1, Cheng Wang2, Rafael Brüschweiler3,4,5.   

Abstract

Characterization of the chemical components of complex mixtures in solution is important in many areas of biochemistry and chemical biology, including metabolomics. The use of 2D NMR total correlation spectroscopy (TOCSY) experiments has proven very useful for the identification of known metabolites as well as for the characterization of metabolites that are unknown by taking advantage of the good resolution and high sensitivity of this homonuclear experiment. Due to the complexity of the resulting spectra, automation is critical to facilitate and speed-up their analysis and enable high-throughput applications. To better meet these emerging needs, an automated spin-system identification algorithm of TOCSY spectra is introduced that represents the cross-peaks and their connectivities as a mathematical graph, for which all subgraphs are determined that are maximal cliques. Each maximal clique can be assigned to an individual spin system thereby providing a robust deconvolution of the original spectrum for the easy extraction of critical spin system information. The approach is demonstrated for a complex metabolite mixture consisting of 20 compounds and for E. coli cell lysate.

Entities:  

Keywords:  2D NMR TOCSY; Complex mixture analysis; Graph theoretical analysis; Maximum cliques; Metabolomics; Spectral deconvolution

Mesh:

Year:  2017        PMID: 28573376      PMCID: PMC7032946          DOI: 10.1007/s10858-017-0119-4

Source DB:  PubMed          Journal:  J Biomol NMR        ISSN: 0925-2738            Impact factor:   2.835


  24 in total

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7.  TOCCATA: a customized carbon total correlation spectroscopy NMR metabolomics database.

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Review 8.  Multidimensional approaches to NMR-based metabolomics.

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Review 2.  Non-Uniform and Absolute Minimal Sampling for High-Throughput Multidimensional NMR Applications.

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3.  Accurate Identification of Unknown and Known Metabolic Mixture Components by Combining 3D NMR with Fourier Transform Ion Cyclotron Resonance Tandem Mass Spectrometry.

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Review 5.  Quantitative NMR-Based Biomedical Metabolomics: Current Status and Applications.

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