Literature DB >> 6307148

Proton-nuclear magnetic resonance study of peracetylated derivatives of ten oligosaccharides isolated from human milk.

U Dabrowski, H Egge, J Dabrowski.   

Abstract

Proton-nuclear magnetic resonance (NMR) spectra of peracetylated derivatives of ten structurally related oligosaccharides isolated from human milk were measured for solutions in CDCl3 at 360 MHz. The following oligosaccharides were investigated: Gal beta 1 leads to 4Glc-ol (1), GlcNAc beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (2), Gal beta 1 leads to 4GlcNAc beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (3), Gal beta 1 leads to 3GlcNAc beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (4), Gal beta 1 leads to 3GlcNAc(4 comes from 1Fuc alpha) beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (5), Fuc alpha 1 leads to 2Gal beta 1 leads to 3GlcNAc beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (6), Fuc alpha 1 leads to 2Gal beta 1 leads to 3GlcNAc(4 comes from 1Fuc alpha)beta 1 leads to 3Gal beta 1 leads to 4Glc-ol (7), Fuc alpha 1 leads to 2Gal beta 1 leads to 4Glc-ol(3 comes from 1Fuc alpha) (8), and a 1:3 mixture of Fuc alpha 1 leads to 2Gal beta 1 leads to 4Glc-ol (9) and Gal beta 1 leads to 4Glc-ol(3 comes from 1Fuc alpha) (10). Owing to the strong downfield shifts of the resonances of protons linked to acetoxylated carbons, the problems of signal overlap are less severe and the spin systems of all constituent sugar residues can be assigned fully. The sites of glycosidic linkage can be recognized by the high-field position of the signals of protons linked to those sites; for example, type 1 (Gal beta 1 leads to 3GlcNAc) and type 2(Gal beta 1 leads to 4GlcNAc) saccharide chains can be distinguished. The sequence can be established by observing a nuclear Overhauser effect involving the anomomeric and the aglyconic proton.

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Year:  1983        PMID: 6307148     DOI: 10.1016/0003-9861(83)90208-4

Source DB:  PubMed          Journal:  Arch Biochem Biophys        ISSN: 0003-9861            Impact factor:   4.013


  6 in total

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2.  Unusual free oligosaccharides in human bovine and caprine milk.

Authors:  Wei-Chien Weng; Hung-En Liao; Shih-Pei Huang; Shang-Ting Tsai; Hsu-Chen Hsu; Chia Yen Liew; Veeranjaneyulu Gannedi; Shang-Cheng Hung; Chi-Kung Ni
Journal:  Sci Rep       Date:  2022-06-24       Impact factor: 4.996

3.  Safety of lacto-N-tetraose (LNT) produced by derivative strains of Escherichia coli BL21 (DE3) as a Novel Food pursuant to Regulation (EU) 2015/2283.

Authors:  Dominique Turck; Torsten Bohn; Jacqueline Castenmiller; Stefaan De Henauw; Karen Ildico Hirsch-Ernst; Alexandre Maciuk; Inge Mangelsdorf; Harry J McArdle; Androniki Naska; Carmen Pelaez; Kristina Pentieva; Alfonso Siani; Frank Thies; Sophia Tsabouri; Marco Vinceti; Francesco Cubadda; Thomas Frenzel; Marina Heinonen; Rosangela Marchelli; Monika Neuhäuser-Berthold; Morten Poulsen; Miguel Prieto Maradona; Josef Rudolf Schlatter; Henk van Loveren; Paolo Colombo; Estefanía Noriega Fernández; Helle Katrine Knutsen
Journal:  EFSA J       Date:  2022-05-16

4.  A computerized approach to the analysis of oligosaccharide structure by high-resolution proton n.m.r.

Authors:  E F Hounsell; D J Wright; A S Donald; J Feeney
Journal:  Biochem J       Date:  1984-10-01       Impact factor: 3.857

Review 5.  Human Milk Oligosaccharides (HMOS): Structure, Function, and Enzyme-Catalyzed Synthesis.

Authors:  Xi Chen
Journal:  Adv Carbohydr Chem Biochem       Date:  2015-11-11       Impact factor: 3.714

Review 6.  Biology of human milk oligosaccharides: From basic science to clinical evidence.

Authors:  Norbert Sprenger; Hanne L P Tytgat; Aristea Binia; Sean Austin; Atul Singhal
Journal:  J Hum Nutr Diet       Date:  2022-02-02       Impact factor: 2.995

  6 in total

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