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Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition

For the efficient pathogenesis of Shigella, the causative agent of bacillary dysentery, full functionality of tRNA-guanine transglycosylase (TGT) is mandatory. TGT performs post-transcriptional modifications of tRNAs in the anticodon loop taking impact on virulence development. This suggests TGT as...

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Autores principales: Ehrmann, Frederik Rainer, Stojko, Johann, Metz, Alexander, Debaene, François, Barandun, Luzi Jakob, Heine, Andreas, Diederich, François, Cianférani, Sarah, Reuter, Klaus, Klebe, Gerhard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5395182/
https://www.ncbi.nlm.nih.gov/pubmed/28419165
http://dx.doi.org/10.1371/journal.pone.0175723
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author Ehrmann, Frederik Rainer
Stojko, Johann
Metz, Alexander
Debaene, François
Barandun, Luzi Jakob
Heine, Andreas
Diederich, François
Cianférani, Sarah
Reuter, Klaus
Klebe, Gerhard
author_facet Ehrmann, Frederik Rainer
Stojko, Johann
Metz, Alexander
Debaene, François
Barandun, Luzi Jakob
Heine, Andreas
Diederich, François
Cianférani, Sarah
Reuter, Klaus
Klebe, Gerhard
author_sort Ehrmann, Frederik Rainer
collection PubMed
description For the efficient pathogenesis of Shigella, the causative agent of bacillary dysentery, full functionality of tRNA-guanine transglycosylase (TGT) is mandatory. TGT performs post-transcriptional modifications of tRNAs in the anticodon loop taking impact on virulence development. This suggests TGT as a putative target for selective anti-shigellosis drug therapy. Since bacterial TGT is only functional as homodimer, its activity can be inhibited either by blocking its active site or by preventing dimerization. Recently, we discovered that in some crystal structures obtained by soaking the full conformational adaptation most likely induced in solution upon ligand binding is not displayed. Thus, soaked structures may be misleading and suggest irrelevant binding modes. Accordingly, we re-investigated these complexes by co-crystallization. The obtained structures revealed large conformational rearrangements not visible in the soaked complexes. They result from spatial perturbations in the ribose-34/phosphate-35 recognition pocket and, consequently, an extended loop-helix motif required to prevent access of water molecules into the dimer interface loses its geometric integrity. Thermodynamic profiles of ligand binding in solution indicate favorable entropic contributions to complex formation when large conformational adaptations in the dimer interface are involved. Native MS titration experiments reveal the extent to which the homodimer is destabilized in the presence of each inhibitor. Unexpectedly, one ligand causes a complete rearrangement of subunit packing within the homodimer, never observed in any other TGT crystal structure before. Likely, this novel twisted dimer is catalytically inactive and, therefore, suggests that stabilizing this non-productive subunit arrangement may be used as a further strategy for TGT inhibition.
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spelling pubmed-53951822017-05-04 Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition Ehrmann, Frederik Rainer Stojko, Johann Metz, Alexander Debaene, François Barandun, Luzi Jakob Heine, Andreas Diederich, François Cianférani, Sarah Reuter, Klaus Klebe, Gerhard PLoS One Research Article For the efficient pathogenesis of Shigella, the causative agent of bacillary dysentery, full functionality of tRNA-guanine transglycosylase (TGT) is mandatory. TGT performs post-transcriptional modifications of tRNAs in the anticodon loop taking impact on virulence development. This suggests TGT as a putative target for selective anti-shigellosis drug therapy. Since bacterial TGT is only functional as homodimer, its activity can be inhibited either by blocking its active site or by preventing dimerization. Recently, we discovered that in some crystal structures obtained by soaking the full conformational adaptation most likely induced in solution upon ligand binding is not displayed. Thus, soaked structures may be misleading and suggest irrelevant binding modes. Accordingly, we re-investigated these complexes by co-crystallization. The obtained structures revealed large conformational rearrangements not visible in the soaked complexes. They result from spatial perturbations in the ribose-34/phosphate-35 recognition pocket and, consequently, an extended loop-helix motif required to prevent access of water molecules into the dimer interface loses its geometric integrity. Thermodynamic profiles of ligand binding in solution indicate favorable entropic contributions to complex formation when large conformational adaptations in the dimer interface are involved. Native MS titration experiments reveal the extent to which the homodimer is destabilized in the presence of each inhibitor. Unexpectedly, one ligand causes a complete rearrangement of subunit packing within the homodimer, never observed in any other TGT crystal structure before. Likely, this novel twisted dimer is catalytically inactive and, therefore, suggests that stabilizing this non-productive subunit arrangement may be used as a further strategy for TGT inhibition. Public Library of Science 2017-04-18 /pmc/articles/PMC5395182/ /pubmed/28419165 http://dx.doi.org/10.1371/journal.pone.0175723 Text en © 2017 Ehrmann et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ehrmann, Frederik Rainer
Stojko, Johann
Metz, Alexander
Debaene, François
Barandun, Luzi Jakob
Heine, Andreas
Diederich, François
Cianférani, Sarah
Reuter, Klaus
Klebe, Gerhard
Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title_full Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title_fullStr Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title_full_unstemmed Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title_short Soaking suggests “alternative facts”: Only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric tRNA-binding protein indicating a novel mode-of-inhibition
title_sort soaking suggests “alternative facts”: only co-crystallization discloses major ligand-induced interface rearrangements of a homodimeric trna-binding protein indicating a novel mode-of-inhibition
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5395182/
https://www.ncbi.nlm.nih.gov/pubmed/28419165
http://dx.doi.org/10.1371/journal.pone.0175723
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