Literature DB >> 22583967

A sialyltransferase mutant with decreased donor hydrolysis and reduced sialidase activities for directly sialylating LewisX.

Go Sugiarto1, Kam Lau, Jingyao Qu, Yanhong Li, Sunghyuk Lim, Shengmao Mu, James B Ames, Andrew J Fisher, Xi Chen.   

Abstract

Glycosyltransferases are important catalysts for enzymatic and chemoenzymatic synthesis of complex carbohydrates and glycoconjugates. The glycosylation efficiencies of wild-type glycosyltransferases vary considerably when different acceptor substrates are used. Using a multifunctional Pasteurella multocida sialyltransferase 1 (PmST1) as an example, we show here that the sugar nucleotide donor hydrolysis activity of glycosyltransferases contributes significantly to the low yield of glycosylation when a poor acceptor substrate is used. With a protein crystal structure-based rational design, we generated a single mutant (PmST1 M144D) with decreased donor hydrolysis activity without significantly affecting its α2-3-sialylation activity when a poor fucose-containing acceptor substrate was used. The single mutant also has a drastically decreased α2-3-sialidase activity. X-ray and NMR structural studies revealed that unlike the wild-type PmST1, which changes to a closed conformation once a donor binds, the M144D mutant structure adopts an open conformation even in the presence of the donor substrate. The PmST1 M144D mutant with decreased donor hydrolysis and reduced sialidase activity has been used as a powerful catalyst for efficient chemoenzymatic synthesis of complex sialyl Lewis(x) antigens containing different sialic acid forms. This work sheds new light on the effect of donor hydrolysis activity of glycosyltransferases on glycosyltransferase-catalyzed reactions and provides a novel strategy to improve glycosyltransferase substrate promiscuity by decreasing its donor hydrolysis activity.

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Year:  2012        PMID: 22583967      PMCID: PMC3521065          DOI: 10.1021/cb300125k

Source DB:  PubMed          Journal:  ACS Chem Biol        ISSN: 1554-8929            Impact factor:   5.100


  42 in total

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Authors:  Hai Yu; Harshal Chokhawala; Rebekah Karpel; Hui Yu; Bingyuan Wu; Jianbo Zhang; Yingxin Zhang; Qiang Jia; Xi Chen
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Review 3.  Possible functions of tumor-associated carbohydrate antigens.

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4.  Sialic acid. A calcium-binding carbohydrate.

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Journal:  J Biol Chem       Date:  1977-07-10       Impact factor: 5.157

5.  Sialidase substrate specificity studies using chemoenzymatically synthesized sialosides containing C5-modified sialic acids.

Authors:  Hongzhi Cao; Yanhong Li; Kam Lau; Saddam Muthana; Hai Yu; Jiansong Cheng; Harshal A Chokhawala; Go Sugiarto; Lei Zhang; Xi Chen
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6.  Structural analysis of the sialyltransferase CstII from Campylobacter jejuni in complex with a substrate analog.

Authors:  Cecilia P C Chiu; Andrew G Watts; Luke L Lairson; Michel Gilbert; Daniel Lim; Warren W Wakarchuk; Stephen G Withers; Natalie C J Strynadka
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8.  Comparative study of substrate and product binding to the human ABO(H) blood group glycosyltransferases.

Authors:  Naoto Soya; Glen K Shoemaker; Monica M Palcic; John S Klassen
Journal:  Glycobiology       Date:  2009-07-31       Impact factor: 4.313

Review 9.  Sialyl Lewis(a): a tumor-associated carbohydrate antigen involved in adhesion and metastatic potential of cancer cells.

Authors:  Maciej Ugorski; Anna Laskowska
Journal:  Acta Biochim Pol       Date:  2002       Impact factor: 2.149

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Authors:  Harshal A Chokhawala; Shengshu Huang; Kam Lau; Hai Yu; Jiansong Cheng; Vireak Thon; Nancy Hurtado-Ziola; Juan A Guerrero; Ajit Varki; Xi Chen
Journal:  ACS Chem Biol       Date:  2008-08-27       Impact factor: 5.100

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  54 in total

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Journal:  Carbohydr Res       Date:  2019-05-16       Impact factor: 2.104

2.  A substrate tagging and two-step enzymatic reaction strategy for large-scale synthesis of 2,7-anhydro-sialic acid.

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Journal:  Carbohydr Res       Date:  2019-05-16       Impact factor: 2.104

Review 3.  Glycosyltransferase engineering for carbohydrate synthesis.

Authors:  John B McArthur; Xi Chen
Journal:  Biochem Soc Trans       Date:  2016-02       Impact factor: 5.407

4.  The one-pot multienzyme (OPME) synthesis of human blood group H antigens and a human milk oligosaccharide (HMOS) with highly active Thermosynechococcus elongates α1-2-fucosyltransferase.

Authors:  Chao Zhao; Yijing Wu; Hai Yu; Ishita M Shah; Yanhong Li; Jie Zeng; Bin Liu; David A Mills; Xi Chen
Journal:  Chem Commun (Camb)       Date:  2016-02-11       Impact factor: 6.222

5.  Synthesis of an Aminooxy Derivative of the GM3 Antigen and Its Application in Oxime Ligation.

Authors:  Kristopher A Kleski; Mengchao Shi; Matthew Lohman; Gabrielle T Hymel; Vinod K Gattoji; Peter R Andreana
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6.  Facile Chemoenzymatic Synthesis of O-Mannosyl Glycans.

Authors:  Shuaishuai Wang; Qing Zhang; CongCong Chen; Yuxi Guo; Madhusudhan Reddy Gadi; Jin Yu; Ulrika Westerlind; Yunpeng Liu; Xuefeng Cao; Peng G Wang; Lei Li
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7.  Crystal structures of sialyltransferase from Photobacterium damselae.

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8.  α2-6-Neosialidase: A Sialyltransferase Mutant as a Sialyl Linkage-Specific Sialidase.

Authors:  John B McArthur; Hai Yu; Nova Tasnima; Christie M Lee; Andrew J Fisher; Xi Chen
Journal:  ACS Chem Biol       Date:  2018-03-28       Impact factor: 5.100

9.  HPLC-Assisted Automated Oligosaccharide Synthesis: Implementation of the Autosampler as a Mode of the Reagent Delivery.

Authors:  Salvatore G Pistorio; Swati S Nigudkar; Keith J Stine; Alexei V Demchenko
Journal:  J Org Chem       Date:  2016-09-14       Impact factor: 4.354

10.  One-pot multi-enzyme (OPME) chemoenzymatic synthesis of sialyl-Tn-MUC1 and sialyl-T-MUC1 glycopeptides containing natural or non-natural sialic acid.

Authors:  Hamed Malekan; Gabriel Fung; Vireak Thon; Zahra Khedri; Hai Yu; Jingyao Qu; Yanhong Li; Li Ding; Kit S Lam; Xi Chen
Journal:  Bioorg Med Chem       Date:  2013-03-07       Impact factor: 3.641

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