Implementation of pure shift 1H NMR in metabolic phenotyping for structural information recovery of biofluid metabolites with complex spin systems

Author:

Serrano‐Contreras Jose Ivan1ORCID,Lindon John C.2ORCID,Frost Gary1,Holmes Elaine134ORCID,Nicholson Jeremy K.345,Garcia‐Perez Isabel1

Affiliation:

1. Department of Metabolism, Digestion and Reproduction, Division of Digestive Diseases, Section of Nutrition, Faculty of Medicine Imperial College London London UK

2. Department of Metabolism, Digestion and Reproduction, Division of Systems Medicine Imperial College London London UK

3. Australian National Phenome Centre, Computational and Systems Medicine, Health Futures Institute Murdoch University Perth Western Australia Australia

4. Center for Computational and Systems Medicine, Health Futures Institute Murdoch University Perth Western Australia Australia

5. Imperial College London Institute of Global Health Innovation London UK

Abstract

AbstractNMR spectroscopy is a mainstay of metabolic profiling approaches to investigation of physiological and pathological processes. The one‐dimensional proton pulse sequences typically used in phenotyping large numbers of samples generate spectra that are rich in information but where metabolite identification is often compromised by peak overlap. Recently developed pure shift (PS) NMR spectroscopy, where all J‐coupling multiplicities are removed from the spectra, has the potential to simplify the complex proton NMR spectra that arise from biosamples and hence to aid metabolite identification. Here we have evaluated two complementary approaches to spectral simplification: the HOBS (band‐selective with real‐time acquisition) and the PSYCHE (broadband with pseudo‐2D interferogram acquisition) pulse sequences. We compare their relative sensitivities and robustness for deconvolving both urine and serum matrices. Both methods improve resolution of resonances ranging from doublets, triplets and quartets to more complex signals such as doublets of doublets and multiplets in highly overcrowded spectral regions. HOBS is the more sensitive method and takes less time to acquire in comparison with PSYCHE, but can introduce unavoidable artefacts from metabolites with strong couplings, whereas PSYCHE is more adaptable to these types of spin system, although at the expense of sensitivity. Both methods are robust and easy to implement. We also demonstrate that strong coupling artefacts contain latent connectivity information that can be used to enhance metabolite identification. Metabolite identification is a bottleneck in metabolic profiling studies. In the case of NMR, PS experiments can be included in metabolite identification workflows, providing additional capability for biomarker discovery.

Funder

NIHR Imperial Biomedical Research Centre

Publisher

Wiley

Subject

Spectroscopy,Radiology, Nuclear Medicine and imaging,Molecular Medicine

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