Literature DB >> 29666272

Human N-acetylglucosaminyltransferase II substrate recognition uses a modular architecture that includes a convergent exosite.

Renuka Kadirvelraj1, Jeong-Yeh Yang2, Justin H Sanders1, Lin Liu2, Annapoorani Ramiah2, Pradeep Kumar Prabhakar2, Geert-Jan Boons2, Zachary A Wood3, Kelley W Moremen3,2.   

Abstract

Asn-linked oligosaccharides are extensively modified during transit through the secretory pathway, first by trimming of the nascent glycan chains and subsequently by initiating and extending multiple oligosaccharide branches from the trimannosyl glycan core. Trimming and branching pathway steps are highly ordered and hierarchal based on the precise substrate specificities of the individual biosynthetic enzymes. A key committed step in the synthesis of complex-type glycans is catalyzed by N-acetylglucosaminyltransferase II (MGAT2), an enzyme that generates the second GlcNAcβ1,2- branch from the trimannosyl glycan core using UDP-GlcNAc as the sugar donor. We determined the structure of human MGAT2 as a Mn2+-UDP donor analog complex and as a GlcNAcMan3GlcNAc2-Asn acceptor complex to reveal the structural basis for substrate recognition and catalysis. The enzyme exhibits a GT-A Rossmann-like fold that employs conserved divalent cation-dependent substrate interactions with the UDP-GlcNAc donor. MGAT2 interactions with the extended glycan acceptor are distinct from other related glycosyltransferases. These interactions are composed of a catalytic subsite that binds the Man-α1,6- monosaccharide acceptor and a distal exosite pocket that binds the GlcNAc-β1,2Man-α1,3Manβ- substrate "recognition arm." Recognition arm interactions are similar to the enzyme-substrate interactions for Golgi α-mannosidase II, a glycoside hydrolase that acts just before MGAT2 in the Asn-linked glycan biosynthetic pathway. These data suggest that substrate binding by MGAT2 employs both conserved and convergent catalytic subsite modules to provide substrate selectivity and catalysis. More broadly, the MGAT2 active-site architecture demonstrates how glycosyltransferases create complementary modular templates for regiospecific extension of glycan structures in mammalian cells.

Entities:  

Keywords:  N-glycan processing; convergent evolution; exosite; glycosyltranferase; substrate recognition

Mesh:

Substances:

Year:  2018        PMID: 29666272      PMCID: PMC5939069          DOI: 10.1073/pnas.1716988115

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  24 in total

1.  Congenital disorder of glycosylation IIa: the trouble with diagnosing a dysmorphic inborn error of metabolism.

Authors:  Anas M Alazami; Dorota Monies; Brian F Meyer; Fatema Alzahrani; Mais Hashem; Mustafa A Salih; Fowzan S Alkuraya
Journal:  Am J Med Genet A       Date:  2011-11-21       Impact factor: 2.802

2.  Synthetic substrate analogues for UDP-GlcNAc: Man alpha 1-3R beta 1-2-N-acetylglucosaminyltransferase I. Substrate specificity and inhibitors for the enzyme.

Authors:  F Reck; M Springer; E Meinjohanns; H Paulsen; I Brockhausen; H Schachter
Journal:  Glycoconj J       Date:  1995-12       Impact factor: 2.916

Review 3.  Carbohydrate-deficient glycoprotein syndrome type II.

Authors:  H Schachter; J Jaeken
Journal:  Biochim Biophys Acta       Date:  1999-10-08

4.  Golgi N-glycosyltransferases form both homo- and heterodimeric enzyme complexes in live cells.

Authors:  Antti Hassinen; Antti Rivinoja; Annika Kauppila; Sakari Kellokumpu
Journal:  J Biol Chem       Date:  2010-04-08       Impact factor: 5.157

5.  Mutations in the MGAT2 gene controlling complex N-glycan synthesis cause carbohydrate-deficient glycoprotein syndrome type II, an autosomal recessive disease with defective brain development.

Authors:  J Tan; J Dunn; J Jaeken; H Schachter
Journal:  Am J Hum Genet       Date:  1996-10       Impact factor: 11.025

6.  Carbohydrate-binding domain of the POMGnT1 stem region modulates O-mannosylation sites of α-dystroglycan.

Authors:  Naoyuki Kuwabara; Hiroshi Manya; Takeyuki Yamada; Hiroaki Tateno; Motoi Kanagawa; Kazuhiro Kobayashi; Keiko Akasaka-Manya; Yuriko Hirose; Mamoru Mizuno; Mitsunori Ikeguchi; Tatsushi Toda; Jun Hirabayashi; Toshiya Senda; Tamao Endo; Ryuichi Kato
Journal:  Proc Natl Acad Sci U S A       Date:  2016-08-04       Impact factor: 11.205

7.  Synthetic substrate analogues for UDP-GlcNAc: Man alpha 1-6R beta(1-2)-N-acetylglucosaminyltransferase II. Substrate specificity and inhibitors for the enzyme.

Authors:  F Reck; E Meinjohanns; M Springer; R Wilkens; J A Van Dorst; H Paulsen; G Möller; I Brockhausen; H Schachter
Journal:  Glycoconj J       Date:  1994-06       Impact factor: 2.916

8.  Control of glycoprotein synthesis. Kinetic mechanism, substrate specificity, and inhibition characteristics of UDP-N-acetylglucosamine:alpha-D-mannoside beta 1-2 N-acetylglucosaminyltransferase II from rat liver.

Authors:  B Bendiak; H Schachter
Journal:  J Biol Chem       Date:  1987-04-25       Impact factor: 5.157

9.  The biosynthesis of highly branched N-glycans: studies on the sequential pathway and functional role of N-acetylglucosaminyltransferases I, II, III, IV, V and VI.

Authors:  I Brockhausen; S Narasimhan; H Schachter
Journal:  Biochimie       Date:  1988-11       Impact factor: 4.079

Review 10.  Biological roles of glycans.

Authors:  Ajit Varki
Journal:  Glycobiology       Date:  2016-08-24       Impact factor: 4.313

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  14 in total

1.  Modulation of hepatocyte sialylation drives spontaneous fatty liver disease and inflammation.

Authors:  Douglas M Oswald; Mark B Jones; Brian A Cobb
Journal:  Glycobiology       Date:  2020-04-20       Impact factor: 4.313

2.  Characterizing human α-1,6-fucosyltransferase (FUT8) substrate specificity and structural similarities with related fucosyltransferases.

Authors:  Bhargavi M Boruah; Renuka Kadirvelraj; Lin Liu; Annapoorani Ramiah; Chao Li; Guanghui Zong; Gerlof P Bosman; Jeong-Yeh Yang; Lai-Xi Wang; Geert-Jan Boons; Zachary A Wood; Kelley W Moremen
Journal:  J Biol Chem       Date:  2020-10-01       Impact factor: 5.157

Review 3.  Emerging structural insights into glycosyltransferase-mediated synthesis of glycans.

Authors:  Kelley W Moremen; Robert S Haltiwanger
Journal:  Nat Chem Biol       Date:  2019-08-19       Impact factor: 15.040

Review 4.  Recent progress in synthesis of carbohydrates with sugar nucleotide-dependent glycosyltransferases.

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Journal:  Curr Opin Chem Biol       Date:  2020-12-10       Impact factor: 8.822

Review 5.  3D Structure and Function of Glycosyltransferases Involved in N-glycan Maturation.

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Journal:  Int J Mol Sci       Date:  2020-01-09       Impact factor: 5.923

6.  Comparison of human poly-N-acetyl-lactosamine synthase structure with GT-A fold glycosyltransferases supports a modular assembly of catalytic subsites.

Authors:  Renuka Kadirvelraj; Jeong-Yeh Yang; Hyun W Kim; Justin H Sanders; Kelley W Moremen; Zachary A Wood
Journal:  J Biol Chem       Date:  2020-12-03       Impact factor: 5.157

7.  A photo-cross-linking GlcNAc analog enables covalent capture of N-linked glycoprotein-binding partners on the cell surface.

Authors:  Han Wu; Asif Shajahan; Jeong-Yeh Yang; Emanuela Capota; Amberlyn M Wands; Connie M Arthur; Sean R Stowell; Kelley W Moremen; Parastoo Azadi; Jennifer J Kohler
Journal:  Cell Chem Biol       Date:  2021-07-30       Impact factor: 9.039

8.  Promiscuity and specificity of eukaryotic glycosyltransferases.

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Journal:  Biochem Soc Trans       Date:  2020-06-30       Impact factor: 5.407

9.  Structure and mechanism of cancer-associated N-acetylglucosaminyltransferase-V.

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Journal:  Nat Commun       Date:  2018-08-23       Impact factor: 14.919

10.  Deep evolutionary analysis reveals the design principles of fold A glycosyltransferases.

Authors:  Rahil Taujale; Aarya Venkat; Liang-Chin Huang; Zhongliang Zhou; Wayland Yeung; Khaled M Rasheed; Sheng Li; Arthur S Edison; Kelley W Moremen; Natarajan Kannan
Journal:  Elife       Date:  2020-04-01       Impact factor: 8.140

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