ACS Chemical Biology· 2026Q1
Ebselen Inactivates Essential Mycoplasmopsis bovis Proteins
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- 2026year
Short summary
Ebselen covalently modifies and inactivates essential Mycoplasmopsis bovis metabolic enzymes lactate dehydrogenase (Ldh) and enolase (Eno) at non-catalytic cysteine residues (Ldh Cys124, Eno Cys216), with low micromolar IC50 values.
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Key points
- Ebselen was identified from a screen of ~2800 compounds as a potential antibiotic against Mycoplasmopsis bovis.
- Ebselen inactivates essential M. bovis proteins, including lactate dehydrogenase (Ldh) and enolase (Eno), through covalent modification.
- Specific cysteine residues (Ldh Cys124 and Eno Cys216) are modified by ebselen, leading to enzyme inactivation with low micromolar IC50 values.
- The modification sites are poorly conserved, suggesting potential for narrow-spectrum therapeutic development.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Mycoplasmopsis bovis contributes to a variety of infectious diseases in cattle that limit meat and milk production, motivating significant antimicrobial use to prevent animal and economic loss. Currently approved antimicrobial treatments for M. bovis are ineffective or becoming so due to adaptive antimicrobial resistance (AMR). Thus, to discover alternatives to these therapies, we screened a drug repurposing library of ∼2800 compounds as antibiotics, resulting in the prioritization of ebselen (Eb) for study. The ability of Eb to prevent M. bovis growth could be ascribed to the covalent modification and inhibition of key metabolic targets, including lactate dehydrogenase (Ldh), enolase (Eno) and elongation factor G. The identification, validation, and consequences of covalent modifications by Eb at specific sites in Ldh and Eno were determined using mass spectrometry and steady-state kinetic experiments. Specifically, non-catalytic cysteine residues that are modified by Eb – Ldh Cys124 and Eno Cys216 – result in enzyme inactivation with low micromolar IC50 values. The poorly conserved Eb modification sites in M. bovis offer an opportunity for future narrow-spectrum therapeutic development for this major agricultural pathogen.
The authors' abstract, as published at the source. ACS Chemical Biology, 2026 · DOI ↗
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Field: Biochemistry (Biochemistry, Genetics and Molecular Biology)
BiochemistryBiochemistry, Genetics and Molecular Biology