4.6 Article

Nuclear Magnetic Resonance Metabolomics with Double Pulsed-Field-Gradient Echo and Automatized Solvent Suppression Spectroscopy for Multivariate Data Matrix Applied in Novel Wine and Juice Discriminant Analysis

期刊

MOLECULES
卷 26, 期 14, 页码 -

出版社

MDPI
DOI: 10.3390/molecules26144146

关键词

H-1-NMR; multivariate statistical analysis; wine; juices; NMR pulse sequence; Cabernet Sauvignon; Candida zemplinina; Saccharomyces Bayanus ex uvarum

资金

  1. Mexican Ministry of Science and Technology (CONACyT)
  2. CONACyT [682, LN295321]
  3. CONACyT-INFRA [269012]

向作者/读者索取更多资源

The study utilizes NMR techniques and multivariate statistical analysis to analyze food quality, including using DPFGE experiments and different data processing methods. By studying the H-1 resonance of wine samples and discrimination of colors and juice varieties, novel analytical approaches are demonstrated.
The quality of foods has led researchers to use various analytical methods to determine the amounts of principal food constituents; some of them are the NMR techniques with a multivariate statistical analysis (NMR-MSA). The present work introduces a set of NMR-MSA novelties. First, the use of a double pulsed-field-gradient echo (DPFGE) experiment with a refocusing band-selective uniform response pure-phase selective pulse for the selective excitation of a 5-10-ppm range of wine samples reveals novel broad H-1 resonances. Second, an NMR-MSA foodomics approach to discriminate between wine samples produced from the same Cabernet Sauvignon variety fermented with different yeast strains proposed for large-scale alcohol reductions. Third a comparative study between a nonsupervised Principal Component Analysis (PCA), supervised standard partial (PLS-DA), and sparse (sPLS-DA) least squares discriminant analysis, as well as orthogonal projections to a latent structures discriminant analysis (OPLS-DA), for obtaining holistic fingerprints. The MSA discriminated between different Cabernet Sauvignon fermentation schemes and juice varieties (apple, apricot, and orange) or juice authentications (puree, nectar, concentrated, and commercial juice fruit drinks). The new pulse sequence DPFGE demonstrated an enhanced sensitivity in the aromatic zone of wine samples, allowing a better application of different unsupervised and supervised multivariate statistical analysis approaches.

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