Literature DB >> 18052936

The guanine-nucleotide-exchange factor BopE from Burkholderia pseudomallei adopts a compact version of the Salmonella SopE/SopE2 fold and undergoes a closed-to-open conformational change upon interaction with Cdc42.

Abhishek Upadhyay1, Huan-Lin Wu, Christopher Williams, Terry Field, Edouard E Galyov, Jean M H van den Elsen, Stefan Bagby.   

Abstract

BopE is a type III secreted protein from Burkholderia pseudomallei, the aetiological agent of melioidosis, a severe emerging infection. BopE is a GEF (guanine-nucleotide-exchange factor) for the Rho GTPases Cdc42 (cell division cycle 42) and Rac1. We have determined the structure of BopE catalytic domain (amino acids 78-261) by NMR spectroscopy and it shows that BopE(78-261) comprises two three-helix bundles (alpha1alpha4alpha5 and alpha2alpha3alpha6). This fold is similar to that adopted by the BopE homologues SopE and SopE2, which are GEFs from Salmonella. Whereas the two three-helix bundles of SopE(78-240) and SopE2(69-240) form the arms of a 'Lambda' shape, BopE(78-261) adopts a more closed conformation with substantial interactions between the two three-helix bundles. We propose that arginine and proline residues are important in the conformational differences between BopE and SopE/E2. Analysis of the molecular interface in the SopE(78-240)-Cdc42 complex crystal structure indicates that, in a BopE-Cdc42 interaction, the closed conformation of BopE(78-261) would engender steric clashes with the Cdc42 switch regions. This implies that BopE(78-261) must undergo a closed-to-open conformational change in order to catalyse guanine nucleotide exchange. In an NMR titration to investigate the BopE(78-261)-Cdc42 interaction, the appearance of additional peaks per NH for residues in hinge regions of BopE(78-261) indicates that BopE(78-261) does undergo a closed-to-open conformational change in the presence of Cdc42. The conformational change hypothesis is further supported by substantial improvement of BopE(78-261) catalytic efficiency through mutations that favour an open conformation. Requirement for closed-to-open conformational change explains the 10-40-fold lower k(cat) of BopE compared with SopE and SopE2.

Entities:  

Mesh:

Substances:

Year:  2008        PMID: 18052936      PMCID: PMC2495041          DOI: 10.1042/BJ20071546

Source DB:  PubMed          Journal:  Biochem J        ISSN: 0264-6021            Impact factor:   3.857


  47 in total

1.  The VMD-XPLOR visualization package for NMR structure refinement.

Authors:  C D Schwieters; G M Clore
Journal:  J Magn Reson       Date:  2001-04       Impact factor: 2.229

2.  Genomic plasticity of the causative agent of melioidosis, Burkholderia pseudomallei.

Authors:  Matthew T G Holden; Richard W Titball; Sharon J Peacock; Ana M Cerdeño-Tárraga; Timothy Atkins; Lisa C Crossman; Tyrone Pitt; Carol Churcher; Karen Mungall; Stephen D Bentley; Mohammed Sebaihia; Nicholas R Thomson; Nathalie Bason; Ifor R Beacham; Karen Brooks; Katherine A Brown; Nat F Brown; Greg L Challis; Inna Cherevach; Tracy Chillingworth; Ann Cronin; Ben Crossett; Paul Davis; David DeShazer; Theresa Feltwell; Audrey Fraser; Zahra Hance; Heidi Hauser; Simon Holroyd; Kay Jagels; Karen E Keith; Mark Maddison; Sharon Moule; Claire Price; Michael A Quail; Ester Rabbinowitsch; Kim Rutherford; Mandy Sanders; Mark Simmonds; Sirirurg Songsivilai; Kim Stevens; Sarinna Tumapa; Monkgol Vesaratchavest; Sally Whitehead; Corin Yeats; Bart G Barrell; Petra C F Oyston; Julian Parkhill
Journal:  Proc Natl Acad Sci U S A       Date:  2004-09-17       Impact factor: 11.205

Review 3.  Bioinformatics, genomics and evolution of non-flagellar type-III secretion systems: a Darwinian perspective.

Authors:  Mark J Pallen; Scott A Beatson; Christopher M Bailey
Journal:  FEMS Microbiol Rev       Date:  2005-04       Impact factor: 16.408

4.  An Inv/Mxi-Spa-like type III protein secretion system in Burkholderia pseudomallei modulates intracellular behaviour of the pathogen.

Authors:  Mark P Stevens; Michael W Wood; Lowrie A Taylor; Paul Monaghan; Pippa Hawes; Philip W Jones; Timothy S Wallis; Edouard E Galyov
Journal:  Mol Microbiol       Date:  2002-11       Impact factor: 3.501

5.  Protein backbone angle restraints from searching a database for chemical shift and sequence homology.

Authors:  G Cornilescu; F Delaglio; A Bax
Journal:  J Biomol NMR       Date:  1999-03       Impact factor: 2.835

6.  Distribution of type III secretion gene clusters in Burkholderia pseudomallei, B. thailandensis and B. mallei.

Authors:  Lucille Rainbow; C Anthony Hart; Craig Winstanley
Journal:  J Med Microbiol       Date:  2002-05       Impact factor: 2.472

7.  Relapse in melioidosis: incidence and risk factors.

Authors:  W Chaowagul; Y Suputtamongkol; D A Dance; A Rajchanuvong; J Pattara-arechachai; N J White
Journal:  J Infect Dis       Date:  1993-11       Impact factor: 5.226

Review 8.  Melioidosis.

Authors:  N J White
Journal:  Lancet       Date:  2003-05-17       Impact factor: 79.321

9.  solution structure, backbone dynamics, and interaction with Cdc42 of Salmonella guanine nucleotide exchange factor SopE2.

Authors:  Christopher Williams; Edouard E Galyov; Stefan Bagby
Journal:  Biochemistry       Date:  2004-09-28       Impact factor: 3.162

10.  Biophysical characterization of the catalytic domain of guanine nucleotide exchange factor BopE from Burkholderia pseudomallei.

Authors:  Abhishek Upadhyay; Christopher Williams; Andrew C Gill; Didier L Philippe; Kenneth Davis; Lowrie A Taylor; Mark P Stevens; Edouard E Galyov; Stefan Bagby
Journal:  Biochim Biophys Acta       Date:  2004-04-08
View more
  11 in total

Review 1.  Bacterial protein toxins that modify host regulatory GTPases.

Authors:  Klaus Aktories
Journal:  Nat Rev Microbiol       Date:  2011-06-16       Impact factor: 60.633

Review 2.  Subversion of cell signaling by pathogens.

Authors:  Neal M Alto; Kim Orth
Journal:  Cold Spring Harb Perspect Biol       Date:  2012-09-01       Impact factor: 10.005

Review 3.  Bacterial factors exploit eukaryotic Rho GTPase signaling cascades to promote invasion and proliferation within their host.

Authors:  Michel R Popoff
Journal:  Small GTPases       Date:  2014-05-08

4.  Identification of F-actin as the dynamic hub in a microbial-induced GTPase polarity circuit.

Authors:  Robert C Orchard; Mark Kittisopikul; Steven J Altschuler; Lani F Wu; Gürol M Süel; Neal M Alto
Journal:  Cell       Date:  2012-02-17       Impact factor: 41.582

Review 5.  Bacterial guanine nucleotide exchange factors SopE-like and WxxxE effectors.

Authors:  Richard Bulgin; Benoit Raymond; James A Garnett; Gad Frankel; Valerie F Crepin; Cedric N Berger; Ana Arbeloa
Journal:  Infect Immun       Date:  2010-02-01       Impact factor: 3.441

Review 6.  Caspase-1 activation via Rho GTPases: a common theme in mucosal infections?

Authors:  Andreas J Müller; Claudia Hoffmann; Wolf-Dietrich Hardt
Journal:  PLoS Pathog       Date:  2010-02-26       Impact factor: 6.823

7.  A structural basis for Staphylococcal complement subversion: X-ray structure of the complement-binding domain of Staphylococcus aureus protein Sbi in complex with ligand C3d.

Authors:  Elizabeth A Clark; Susan Crennell; Abhishek Upadhyay; Alexey V Zozulya; Julia D Mackay; Dmitri I Svergun; Stefan Bagby; Jean M H van den Elsen
Journal:  Mol Immunol       Date:  2010-11-04       Impact factor: 4.407

8.  Strategies for Intracellular Survival of Burkholderia pseudomallei.

Authors:  Elizabeth M Allwood; Rodney J Devenish; Mark Prescott; Ben Adler; John D Boyce
Journal:  Front Microbiol       Date:  2011-08-22       Impact factor: 5.640

9.  Optimization and stabilization of Rho small GTPase proteins for solution NMR studies: The case of Rnd1.

Authors:  Shufen Cao; Matthias Buck
Journal:  Small GTPases       Date:  2011-11-01

10.  Caspase-1-dependent and -independent cell death pathways in Burkholderia pseudomallei infection of macrophages.

Authors:  Antje Bast; Kathrin Krause; Imke H E Schmidt; Matsayapan Pudla; Stefanie Brakopp; Verena Hopf; Katrin Breitbach; Ivo Steinmetz
Journal:  PLoS Pathog       Date:  2014-03-13       Impact factor: 6.823

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.