Literature DB >> 28604696

A front-face 'SNi synthase' engineered from a retaining 'double-SN2' hydrolase.

Javier Iglesias-Fernández1,2, Susan M Hancock3, Seung Seo Lee3,4, Maola Khan3, Jo Kirkpatrick3, Neil J Oldham3, Katherine McAuley5, Anthony Fordham-Skelton6, Carme Rovira1,2,7, Benjamin G Davis3.   

Abstract

SNi-like mechanisms, which involve front-face leaving group departure and nucleophile approach, have been observed experimentally and computationally in chemical and enzymatic substitution at α-glycosyl electrophiles. Since SNi-like, SN1 and SN2 substitution pathways can be energetically comparable, engineered switching could be feasible. Here, engineering of Sulfolobus solfataricus β-glycosidase, which originally catalyzed double SN2 substitution, changed its mode to SNi-like. Destruction of the first SN2 nucleophile through E387Y mutation created a β-stereoselective catalyst for glycoside synthesis from activated substrates, despite lacking a nucleophile. The pH profile, kinetic and mutational analyses, mechanism-based inactivators, X-ray structure and subsequent metadynamics simulations together suggest recruitment of substrates by π-sugar interaction and reveal a quantum mechanics-molecular mechanics (QM/MM) free-energy landscape for the substitution reaction that is similar to those of natural, SNi-like glycosyltransferases. This observation of a front-face mechanism in a β-glycosyltransfer enzyme highlights that SNi-like pathways may be engineered in catalysts with suitable environments and suggests that 'β-SNi' mechanisms may be feasible for natural glycosyltransfer enzymes.

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Year:  2017        PMID: 28604696     DOI: 10.1038/nchembio.2394

Source DB:  PubMed          Journal:  Nat Chem Biol        ISSN: 1552-4450            Impact factor:   15.040


  59 in total

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Journal:  Proc Natl Acad Sci U S A       Date:  2002-09-23       Impact factor: 11.205

2.  The determination of enzyme inhibitor constants.

Authors:  M DIXON
Journal:  Biochem J       Date:  1953-08       Impact factor: 3.857

3.  The molecular mechanism of enzymatic glycosyl transfer with retention of configuration: evidence for a short-lived oxocarbenium-like species.

Authors:  Albert Ardèvol; Carme Rovira
Journal:  Angew Chem Int Ed Engl       Date:  2011-09-26       Impact factor: 15.336

4.  Sucrose phosphorylase harbouring a redesigned, glycosyltransferase-like active site exhibits retaining glucosyl transfer in the absence of a covalent intermediate.

Authors:  Christiane Goedl; Bernd Nidetzky
Journal:  Chembiochem       Date:  2009-09-21       Impact factor: 3.164

5.  Carbohydrate-aromatic interactions.

Authors:  Juan Luis Asensio; Ana Ardá; Francisco Javier Cañada; Jesús Jiménez-Barbero
Journal:  Acc Chem Res       Date:  2012-06-15       Impact factor: 22.384

6.  Substrate (aglycone) specificity of human cytosolic beta-glucosidase.

Authors:  Jean-Guy Berrin; Mirjam Czjzek; Paul A Kroon; W Russell McLauchlan; Antoine Puigserver; Gary Williamson; Nathalie Juge
Journal:  Biochem J       Date:  2003-07-01       Impact factor: 3.857

7.  Crystal structure of the retaining galactosyltransferase LgtC from Neisseria meningitidis in complex with donor and acceptor sugar analogs.

Authors:  K Persson; H D Ly; M Dieckelmann; W W Wakarchuk; S G Withers; N C Strynadka
Journal:  Nat Struct Biol       Date:  2001-02

8.  Features and development of Coot.

Authors:  P Emsley; B Lohkamp; W G Scott; K Cowtan
Journal:  Acta Crystallogr D Biol Crystallogr       Date:  2010-03-24

9.  Trypanosoma cruzi trans-sialidase operates through a covalent sialyl-enzyme intermediate: tyrosine is the catalytic nucleophile.

Authors:  Andrew G Watts; Iben Damager; Maria L Amaya; Alejandro Buschiazzo; Pedro Alzari; Alberto C Frasch; Stephen G Withers
Journal:  J Am Chem Soc       Date:  2003-06-25       Impact factor: 15.419

Review 10.  Glycosidases and glycosyl transferases in glycoside and oligosaccharide synthesis.

Authors:  D H Crout; G Vic
Journal:  Curr Opin Chem Biol       Date:  1998-02       Impact factor: 8.822

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  5 in total

Review 1.  Chemoenzymatic Methods for the Synthesis of Glycoproteins.

Authors:  Chao Li; Lai-Xi Wang
Journal:  Chem Rev       Date:  2018-08-24       Impact factor: 60.622

2.  Ab Initio Molecular Dynamics Simulations of the SN1/SN2 Mechanistic Continuum in Glycosylation Reactions.

Authors:  Yue Fu; Leonardo Bernasconi; Peng Liu
Journal:  J Am Chem Soc       Date:  2021-01-13       Impact factor: 15.419

3.  Glycosyl Oxocarbenium Ions: Structure, Conformation, Reactivity, and Interactions.

Authors:  Antonio Franconetti; Ana Ardá; Juan Luis Asensio; Yves Blériot; Sébastien Thibaudeau; Jesús Jiménez-Barbero
Journal:  Acc Chem Res       Date:  2021-04-30       Impact factor: 22.384

4.  Defining the SN1 Side of Glycosylation Reactions: Stereoselectivity of Glycopyranosyl Cations.

Authors:  Thomas Hansen; Ludivine Lebedel; Wouter A Remmerswaal; Stefan van der Vorm; Dennis P A Wander; Mark Somers; Herman S Overkleeft; Dmitri V Filippov; Jérôme Désiré; Agnès Mingot; Yves Bleriot; Gijsbert A van der Marel; Sebastien Thibaudeau; Jeroen D C Codée
Journal:  ACS Cent Sci       Date:  2019-04-18       Impact factor: 14.553

Review 5.  Computer Simulation to Rationalize "Rational" Engineering of Glycoside Hydrolases and Glycosyltransferases.

Authors:  Joan Coines; Irene Cuxart; David Teze; Carme Rovira
Journal:  J Phys Chem B       Date:  2022-01-24       Impact factor: 2.991

  5 in total

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