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Published on: May 2, 2018
Potential of Tetracycline Resistance Proteins To Evolve Tigecycline Resistance
Marius Linkevicius1, Linus Sandegren1, Dan I Andersson2
1Department of Medical Biochemistry and Microbiology, Uppsala University, Uppsala, Sweden.
Abstract:
Tigecycline is a glycylcycline antibiotic active against multidrug-resistant bacterial pathogens. The objectives of our study were to examine the potential of the Tet(A), Tet(K), Tet(M), and Tet(X) tetracycline resistance proteins to acquire mutations causing tigecycline resistance and to determine how this affects resistance to earlier classes of tetracyclines. Mutations in all four tet genes caused a significant increase in the tigecycline MIC in Escherichia coli, and strains expressing mutant Tet(A) and Tet(X) variants reached clinically relevant MICs (2 mg/liter and 3 mg/liter, respectively). Mutations predominantly accumulated in transmembrane domains of the efflux pumps, most likely increasing the accommodation of tigecycline as a substrate. All selected Tet(M) mutants contained at least one mutation in the functionally most important loop III of domain IV. Deletion of leucine 505 of this loop led to the highest increase of the tigecycline MIC (0.5 mg/liter) among Tet(M) mutants. It also caused collateral sensitivity to earlier classes of tetracyclines. A majority of the Tet(X) mutants showed increased activity against all three classes of tetracylines. All tested Tet proteins have the potential to acquire mutations leading to increased MICs of tigecycline. As tet genes are widely found in pathogenic bacteria and spread easily by horizontal gene transfer, resistance development by alteration of existing Tet proteins might compromise the future medical use of tigecycline. We predict that Tet(X) might become the most problematic future Tet determinant, since its weak intrinsic tigecycline activity can be mutationally improved to reach clinically relevant levels without collateral loss in activity to other tetracyclines.
Insights
Mutations in tetracycline resistance (tet) genes can increase resistance to tigecycline, a crucial antibiotic. Tet(X) variants are predicted to be the most problematic, potentially compromising future tigecycline use.
Area of Science:
- Microbiology
- Molecular Biology
- Antimicrobial Resistance
Background:
- Tigecycline is a glycylcycline antibiotic effective against multidrug-resistant bacteria.
- Tetracycline resistance (tet) genes are common in pathogenic bacteria and spread via horizontal gene transfer.
Purpose of the Study:
- To investigate mutations in Tet(A), Tet(K), Tet(M), and Tet(X) proteins conferring tigecycline resistance.
- To assess the impact of these mutations on resistance to earlier tetracycline classes.
Main Methods:
- Mutagenesis of tet genes in Escherichia coli.
- Determination of minimum inhibitory concentrations (MICs) for tigecycline and other tetracyclines.
- Analysis of mutation locations within efflux pump domains and loops.
Main Results:
- Mutations in all four tet genes significantly increased tigecycline MICs.
- Mutant Tet(A) and Tet(X) variants reached clinically relevant tigecycline MICs.
- Tet(X) mutants showed improved tigecycline activity without losing activity against other tetracyclines.
Conclusions:
- All tested Tet proteins can acquire mutations leading to increased tigecycline resistance.
- Alterations in existing Tet proteins pose a threat to future tigecycline efficacy.
- Tet(X) is a potential future concern due to its ability to develop high-level tigecycline resistance without collateral loss.
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