Literature DB >> 15653684

Novel poly-GalNAcbeta1-4GlcNAc (LacdiNAc) and fucosylated poly-LacdiNAc N-glycans from mammalian cells expressing beta1,4-N-acetylgalactosaminyltransferase and alpha1,3-fucosyltransferase.

Ziad S Kawar1, Stuart M Haslam, Howard R Morris, Anne Dell, Richard D Cummings.   

Abstract

Glycans containing the GalNAcbeta1-4GlcNAc (LacdiNAc or LDN) motif are expressed by many invertebrates, but this motif also occurs in vertebrates and is found on several mammalian glycoprotein hormones. This motif contrasts with the more commonly occurring Galbeta1-4GlcNAc (LacNAc or LN) motif. To better understand LDN biosynthesis and regulation, we stably expressed the cDNA encoding the Caenorhabditis elegans beta1,4-N-acetylgalactosaminyltransferase (GalNAcT), which generates LDN in vitro, in Chinese hamster ovary (CHO) Lec8 cells, to establish L8-GalNAcT CHO cells. The glycan structures from these cells were determined by mass spectrometry and linkage analysis. The L8-GalNAcT cell line produces complex-type N-glycans quantitatively bearing LDN structures on their antennae. Unexpectedly, most of these complex-type N-glycans contain novel "poly-LDN" structures consisting of repeating LDN motifs (-3GalNAcbeta1-4GlcNAcbeta1-)n. These novel structures are in contrast to the well known poly-LN structures consisting of repeating LN motifs (-3Galbeta1-4GlcNAcbeta1-)n. We also stably expressed human alpha1,3-fucosyltransferase IX in the L8-GalNAcT cells to establish a new cell line, L8-GalNAcT-FucT. These cells produce complex-type N-glycans with alpha1,3-fucosylated LDN (LDNF) GalNAcbeta1-4(Fucalpha1-3)GlcNAcbeta1-R as well as novel "poly-LDNF" structures (-3GalNAcbeta1-4(Fucalpha 1-3)GlcNAcbeta1-)n. The ability of these cell lines to generate glycoprotein hormones with LDN-containing N-glycans was studied by expressing a recombinant form of the common alpha-subunit in L8-GalNAcT cells. The alpha-subunit N-glycans carried LDN structures, which were further modified by co-expression of the human GalNAc 4-sulfotransferase I, which generates SO4-4GalNAcbeta1-4GlcNAc-R. Thus, the generation of these stable mammalian cells will facilitate future studies on the biological activities and properties of LDN-related structures in glycoproteins.

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Year:  2005        PMID: 15653684     DOI: 10.1074/jbc.M414273200

Source DB:  PubMed          Journal:  J Biol Chem        ISSN: 0021-9258            Impact factor:   5.157


  25 in total

1.  Molecular phylogeny and functional genomics of beta-galactoside alpha2,6-sialyltransferases that explain ubiquitous expression of st6gal1 gene in amniotes.

Authors:  Daniel Petit; Anne-Marie Mir; Jean-Michel Petit; Christine Thisse; Philippe Delannoy; Rafael Oriol; Bernard Thisse; Anne Harduin-Lepers
Journal:  J Biol Chem       Date:  2010-09-20       Impact factor: 5.157

2.  Peptide-specific transfer of N-acetylgalactosamine to O-linked glycans by the glycosyltransferases β1,4-N-acetylgalactosaminyl transferase 3 (β4GalNAc-T3) and β4GalNAc-T4.

Authors:  Dorothy Fiete; Mary Beranek; Jacques U Baenziger
Journal:  J Biol Chem       Date:  2012-06-21       Impact factor: 5.157

3.  "Stuck on sugars - how carbohydrates regulate cell adhesion, recognition, and signaling".

Authors:  Richard D Cummings
Journal:  Glycoconj J       Date:  2019-07-02       Impact factor: 2.916

4.  Specific glycosylation of membrane proteins in epithelial ovarian cancer cell lines: glycan structures reflect gene expression and DNA methylation status.

Authors:  Merrina Anugraham; Francis Jacob; Sheri Nixdorf; Arun Vijay Everest-Dass; Viola Heinzelmann-Schwarz; Nicolle H Packer
Journal:  Mol Cell Proteomics       Date:  2014-05-22       Impact factor: 5.911

5.  Structure elucidation of NeuAc, NeuGc and Kdn-containing O-glycans released from Triturus alpestris oviductal mucins. Characterization of the poly LacdiNAc sequence: HSO3(4)(GalNAcbeta1-4GlcNAcbeta1-3)1-3GalNAcbeta1-4(GlcNAcbeta1-3)0-1GlcNAcbeta1-6GalNAc-ol.

Authors:  Doina Florea; Emmanuel Maes; Yann Guérardel; Adeline Page; Jean-Pierre Zanetta; Dan Cogalniceanu; Gérard Strecker
Journal:  Glycoconj J       Date:  2006-07       Impact factor: 2.916

6.  Glycomic studies of Drosophila melanogaster embryos.

Authors:  Simon J North; Kate Koles; Caleb Hembd; Howard R Morris; Anne Dell; Vladislav M Panin; Stuart M Haslam
Journal:  Glycoconj J       Date:  2006-07       Impact factor: 2.916

7.  An in-depth Comparison of the Pediatric and Adult Urinary N-glycomes.

Authors:  Haiying Li; Viral Patel; Shannon E DiMartino; John W Froehlich; Richard S Lee
Journal:  Mol Cell Proteomics       Date:  2020-07-31       Impact factor: 5.911

8.  Isotopic labeling with cellular O-glycome reporter/amplification (ICORA) for comparative O-glycomics of cultured cells.

Authors:  Matthew R Kudelka; Alison V Nairn; Mohammed Y Sardar; Xiaodong Sun; Elliot L Chaikof; Tongzhong Ju; Kelley W Moremen; Richard D Cummings
Journal:  Glycobiology       Date:  2018-04-01       Impact factor: 4.313

9.  Antibodies that detect O-linked β-D-N-acetylglucosamine on the extracellular domain of cell surface glycoproteins.

Authors:  Yuko Tashima; Pamela Stanley
Journal:  J Biol Chem       Date:  2014-02-26       Impact factor: 5.157

10.  Glycomics profiling of Chinese hamster ovary cell glycosylation mutants reveals N-glycans of a novel size and complexity.

Authors:  Simon J North; Hung-Hsiang Huang; Subha Sundaram; Jihye Jang-Lee; A Tony Etienne; Alana Trollope; Sara Chalabi; Anne Dell; Pamela Stanley; Stuart M Haslam
Journal:  J Biol Chem       Date:  2009-12-01       Impact factor: 5.157

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