Literature DB >> 16237199

A focused microarray approach to functional glycomics: transcriptional regulation of the glycome.

Elena M Comelli1, Steven R Head, Tim Gilmartin, Thomas Whisenant, Stuart M Haslam, Simon J North, Nyet-Kui Wong, Takashi Kudo, Hisashi Narimatsu, Jeffrey D Esko, Kurt Drickamer, Anne Dell, James C Paulson.   

Abstract

Glycosylation is the most common posttranslational modification of proteins, yet genes relevant to the synthesis of glycan structures and function are incompletely represented and poorly annotated on the commercially available arrays. To fill the need for expression analysis of such genes, we employed the Affymetrix technology to develop a focused and highly annotated glycogene-chip representing human and murine glycogenes, including glycosyltransferases, nucleotide sugar transporters, glycosidases, proteoglycans, and glycan-binding proteins. In this report, the array has been used to generate glycogene-expression profiles of nine murine tissues. Global analysis with a hierarchical clustering algorithm reveals that expression profiles in immune tissues (thymus [THY], spleen [SPL], lymph node, and bone marrow [BM]) are more closely related, relative to those of nonimmune tissues (kidney [KID], liver [LIV], brain [BRN], and testes [TES]). Of the biosynthetic enzymes, those responsible for synthesis of the core regions of N- and O-linked oligosaccharides are ubiquitously expressed, whereas glycosyltransferases that elaborate terminal structures are expressed in a highly tissue-specific manner, accounting for tissue and ultimately cell-type-specific glycosylation. Comparison of gene expression profiles with matrix-assisted laser desorption ionization-time of flight (MALDI-TOF) profiling of N-linked oligosaccharides suggested that the alpha1-3 fucosyltransferase 9, Fut9, is the enzyme responsible for terminal fucosylation in KID and BRN, a finding validated by analysis of Fut9 knockout mice. Two families of glycan-binding proteins, C-type lectins and Siglecs, are predominately expressed in the immune tissues, consistent with their emerging functions in both innate and acquired immunity. The glycogene chip reported in this study is available to the scientific community through the Consortium for Functional Glycomics (CFG) (http://www.functionalglycomics.org).

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Year:  2005        PMID: 16237199     DOI: 10.1093/glycob/cwj048

Source DB:  PubMed          Journal:  Glycobiology        ISSN: 0959-6658            Impact factor:   4.313


  58 in total

1.  Systemic blockade of sialylation in mice with a global inhibitor of sialyltransferases.

Authors:  Matthew S Macauley; Britni M Arlian; Cory D Rillahan; Poh-Choo Pang; Nikki Bortell; Maria Cecilia G Marcondes; Stuart M Haslam; Anne Dell; James C Paulson
Journal:  J Biol Chem       Date:  2014-11-03       Impact factor: 5.157

2.  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

Review 3.  Proteoglycomics: recent progress and future challenges.

Authors:  Mellisa Ly; Tatiana N Laremore; Robert J Linhardt
Journal:  OMICS       Date:  2010-08

4.  Glycosylation-related genes are variably expressed depending on the differentiation state of a bioaminergic neuronal cell line: implication for the cellular prion protein.

Authors:  Myriam Ermonval; Daniel Petit; Aurélien Le Duc; Odile Kellermann; Paul-François Gallet
Journal:  Glycoconj J       Date:  2008-10-21       Impact factor: 2.916

5.  Peptide- and saccharide-conjugated dendrimers for targeted drug delivery: a concise review.

Authors:  Jie Liu; Warren D Gray; Michael E Davis; Ying Luo
Journal:  Interface Focus       Date:  2012-03-21       Impact factor: 3.906

6.  Type 2 diabetes in mice induces hepatic overexpression of sulfatase 2, a novel factor that suppresses uptake of remnant lipoproteins.

Authors:  Keyang Chen; Ming-Lin Liu; Lana Schaffer; Mingzhen Li; Guenther Boden; Xiangdong Wu; Kevin Jon Williams
Journal:  Hepatology       Date:  2010-11-03       Impact factor: 17.425

Review 7.  The sweet spot: defining virus-sialic acid interactions.

Authors:  Jennifer E Stencel-Baerenwald; Kerstin Reiss; Dirk M Reiter; Thilo Stehle; Terence S Dermody
Journal:  Nat Rev Microbiol       Date:  2014-09-29       Impact factor: 60.633

Review 8.  Glycobiology of the ocular surface: mucins and lectins.

Authors:  Pablo Argüeso
Journal:  Jpn J Ophthalmol       Date:  2013-01-17       Impact factor: 2.447

9.  A novel mechanism for LSECtin binding to Ebola virus surface glycoprotein through truncated glycans.

Authors:  Alex S Powlesland; Tanja Fisch; Maureen E Taylor; David F Smith; Bérangère Tissot; Anne Dell; Stefan Pöhlmann; Kurt Drickamer
Journal:  J Biol Chem       Date:  2007-11-05       Impact factor: 5.157

10.  Physiological and glycomic characterization of N-acetylglucosaminyltransferase-IVa and -IVb double deficient mice.

Authors:  Shinji Takamatsu; Aristotelis Antonopoulos; Kazuaki Ohtsubo; David Ditto; Yasunori Chiba; Dzung T Le; Howard R Morris; Stuart M Haslam; Anne Dell; Jamey D Marth; Naoyuki Taniguchi
Journal:  Glycobiology       Date:  2009-12-16       Impact factor: 4.313

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