Literature DB >> 6705794

Chemical behaviour of cytidine 5'-monophospho-N-acetyl-beta-D-neuraminic acid under neutral and alkaline conditions.

J M Beau, R Schauer, J Haverkamp, J P Kamerling, L Dorland, J F Vliegenthart.   

Abstract

The chemical behaviour of CMP-N-acetylneuraminic acid under neutral and different alkaline conditions has been investigated. The products formed were isolated by ion-exchange chromatography and gel filtration and analysed by colorimetric methods, thin-layer chromatography, combined gas-liquid chromatography/mass spectrometry and/or 360-MHz 1H-NMR spectroscopy. A maximum stability of CMP-N-acetylneuraminic acid was observed at pH8-11. In the tested pH range of 6-13, CMP and N-acetylneuraminic acid were formed in variable amounts as decomposition products. 2-Deoxy-2,3-dehydro-N-acetylneuraminic acid was produced at pH greater than 7; the amount of this substance increased with increasing pH. In anhydrous triethylamine its yield was 50%. A new neuraminic acid derivative, N-acetyl-beta-D-neuraminic acid 2-phosphate, could be isolated from the mixture of alkaline decomposition products of CMP-N-acetylneuraminic acid. The yield of this compound was maximum 22% in anhydrous triethylamine. Because 2-deoxy-2,3-dehydro-N-acetylneuraminic acid was formed under simulated physiological conditions, it is assumed that this compound, which occurs in tissues and fluids of man and animals, is derived from CMP-N-acetylneuraminic acid non-enzymically also under conditions in vivo.

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Year:  1984        PMID: 6705794     DOI: 10.1111/j.1432-1033.1984.tb08087.x

Source DB:  PubMed          Journal:  Eur J Biochem        ISSN: 0014-2956


  9 in total

1.  Detection of CMP-N-acetylneuraminic acid hydroxylase activity in fractionated mouse liver.

Authors:  L Shaw; R Schauer
Journal:  Biochem J       Date:  1989-10-15       Impact factor: 3.857

2.  CMP-N-acetylneuraminic acid hydroxylase activity determines the wheat germ agglutinin-binding phenotype in two mutants of the lymphoma cell line MDAY-D2.

Authors:  L Shaw; S Yousefi; J W Dennis; R Schauer
Journal:  Glycoconj J       Date:  1991-10       Impact factor: 2.916

Review 3.  Diversity of microbial sialic acid metabolism.

Authors:  Eric R Vimr; Kathryn A Kalivoda; Eric L Deszo; Susan M Steenbergen
Journal:  Microbiol Mol Biol Rev       Date:  2004-03       Impact factor: 11.056

4.  Action of rat liver Gal beta 1-4GlcNAc alpha(2-6)-sialyltransferase on Man beta 1-4GlcNAc beta-OMe, GalNAc beta 1-4GlcNAc beta-OMe, Glc beta 1-4GlcNAc beta-OMe and GlcNAc beta 1-4GlcNAc beta-OMe as synthetic substrates.

Authors:  C H Hokke; J G van der Ven; J P Kamerling; J F Vliegenthart
Journal:  Glycoconj J       Date:  1993-02       Impact factor: 2.916

5.  In vitro Measurement of CMP-Sialic Acid Transporter Activity in Reconstituted Proteoliposomes.

Authors:  James Cahill; Shivani Ahuja; Matthew R Whorton
Journal:  Bio Protoc       Date:  2020-03-20

6.  Engineering analysis of multienzyme cascade reactions for 3'-sialyllactose synthesis.

Authors:  Sabine Schelch; Manuel Eibinger; Stefanie Gross Belduma; Barbara Petschacher; Jürgen Kuballa; Bernd Nidetzky
Journal:  Biotechnol Bioeng       Date:  2021-08-02       Impact factor: 4.395

7.  Structural basis for mammalian nucleotide sugar transport.

Authors:  Shivani Ahuja; Matthew R Whorton
Journal:  Elife       Date:  2019-04-15       Impact factor: 8.140

Review 8.  Nucleotide Sugars in Chemistry and Biology.

Authors:  Satu Mikkola
Journal:  Molecules       Date:  2020-12-06       Impact factor: 4.411

Review 9.  Exploration of the Sialic Acid World.

Authors:  Roland Schauer; Johannis P Kamerling
Journal:  Adv Carbohydr Chem Biochem       Date:  2018-11-28       Impact factor: 12.200

  9 in total

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