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A unique hydrophobic cluster near the active site contributes to differences in borrelidin inhibition, among threonyl-tRNA synthetases

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Auteur
Ruan, B.; Bovee, M. L.; Sacher, M.; Stathopoulos, C.; Poralla, K.; Francklyn, C. S.; Söll, D.
Date
2005
DOI
10.1074/jbc.M411039200
Sujet
Bacteria
Binding energy
Bioassay
Escherichia coli
Fluorescence
Hydrophobicity
Microbiology
Mutagenesis
RNA
Borrelidin
Hydrophobic clusters
Threonyl-tRNA synthetase (ThrRS)
Enzyme inhibition
adenosine triphosphate
amino acid transfer RNA ligase
histidine
leucine
proline
threonine
threonine transfer RNA ligase
tryptophan
zinc ion
Archaeoglobus fulgidus
article
competitive inhibition
controlled study
drug binding
drug inhibition
drug mechanism
genetic selection
Halobacterium
Helicobacter pylori
Methanococcus jannaschii
nonhuman
priority journal
sequence alignment
structure activity relation
Sulfolobus solfataricus
Amino Acid Sequence
Bacterial Proteins
Binding Sites
Fatty Alcohols
Molecular Sequence Data
Protein Binding
Protein Conformation
Sequence Analysis
Species Specificity
Structure-Activity Relationship
Substrate Specificity
Threonine-tRNA Ligase
Archaea
Archaeoglobus
Bacteria (microorganisms)
Eukaryota
Halobacterium sp.
Halobacterium sp. NRC-1
Helicobacter
Methanocaldococcus
Methanocaldococcus jannaschii
Methanococcus
Negibacteria
Sulfolobus
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Résumé
Borrelidin, a compound with anti-microbial and anti-angiogenic properties, is a known inhibitor of bacterial and eukaryal threonyl-tRNA synthetase (ThrRS). The inhibition mechanism of borrelidin is not well understood. Archaea contain archaeal and bacterial genre ThrRS enzymes that can be distinguished by their sequence. We explored species-specific borrelidin inhibition of ThrRSs. The activity of ThrRS from Sulfolobus solfataricus and Halobacterium sp. NRC-1 was inhibited by borrelidin, whereas ThrRS enzymes from Methanocaldococcus jannaschii and Archaeoglobus fulgidus were not. In Escherichia coli ThrRS, borrelidin binding induced a conformational change, and threonine was not activated as shown by ATP-PPi exchange and a transient kinetic assay measuring intrinsic tryptophan fluorescence changes. These assays further showed that borrelidin is a noncompetitive tight binding inhibitor of E. coli ThrRS with respect to threonine and ATP. Genetic selection of borrelidin-resistant mutants showed that borrelidin binds to a hydrophobic region (Thr-307, His-309, Cys-334, Pro-335, Leu-489, Leu-493) proximal to the zinc ion at the active site of the E. coli ThrRS. Mutating residue Leu-489 → Trp reduced the space of the hydrophobic cluster and resulted in a 1500-fold increase of the K i value from 4 nM to 6 μM. An alignment of ThrRS sequences showed that this cluster is conserved in most organisms except for some Archaea (e.g. M. jannaschii, A. fulgidus) and some pathogens (e.g. Helicobacter pylori). This study illustrates how one class of natural product inhibitors affects aminoacyl-tRNA synthetase function, providing potentially useful information for structure-based inhibitor design.
URI
http://hdl.handle.net/11615/32729
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]
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