Analysis of the Resistance Mechanism of a Benzoxaborole Inhibitor Reveals Insight into the Leucyl-tRNA Synthetase Editing Mechanism.

Symplectic ID
534153
Source
Europe PubMed Central
Last Synced with Symplectic
Monday, 20 July, 2026 - 07:16
DOI
10.1021/acschembio.5b00291
Publication Date
Thursday, 1 October, 2015
First Page
2277
Last Page
2285
Keywords
Candida albicans
Boron Compounds
Leucine-tRNA Ligase
Fungal Proteins
Enzyme Inhibitors
Anti-Bacterial Agents
Drug Resistance, Bacterial
Enzyme Activation
Thermodynamics
Models, Molecular
Computer Simulation
Bridged Bicyclo Compounds, Heterocyclic
Authors
Zhao, H
Palencia, A
Seiradake, E
Ghaemi, Z
Cusack, S
Luthey-Schulten, Z
Martinis, S
Authors list has been truncated
0
Editors list has been truncated
Abstract
A new class of antimicrobial benzoxaborole compounds was identified as a potent inhibitor of leucyl-tRNA synthetase (LeuRS) and therefore of protein synthesis. In a novel mechanism, AN2690 (5-fluoro-1,3-dihydro-1-hydroxy-2,1-benzoxaborole) blocks fungal cytoplasmic LeuRS by covalently trapping tRNA(Leu) in the editing site of the enzyme\'s CP1 domain. However, some resistant mutation sites are located outside of the CP1 hydrolytic editing active site. Thus, their mode of action that undermines drug inhibition was not understood. A combination of X-ray crystallography, molecular dynamics, metadynamics, biochemical experiments, and mutational analysis of a distal benzoxaborole-resistant mutant uncovered a eukaryote-specific tyrosine \"switch\" that is critical to tRNA-dependent post-transfer editing. The tyrosine \"switch\" has three states that shift between interactions with a lysine and the 3\'-hydroxyl of the tRNA terminus, to inhibit or promote post-transfer editing. The oxaborole\'s mechanism of action capitalizes upon one of these editing active site states. This tunable editing mechanism in eukaryotic and archaeal LeuRSs is proposed to facilitate precise quality control of aminoacylation fidelity. These mechanistic distinctions could also be capitalized upon for development of the benzoxaboroles as a broad spectrum antibacterial.
ISSN
1554-8929
Journal Title
ACS chemical biology
eISSN
1554-8937
Volume
10
Issue
10
ID at Source
MED:26172575
Publication Status
Published
Open access
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