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A Deep-sequencing-assisted, Spontaneous Suppressor Screen in the Fission Yeast Schizosaccharomyces pombe
Published on: March 7, 2019
Antibiotic-sensitive TolC mutants and their suppressors
Anne Marie Augustus1, Teresa Celaya, Fasahath Husain
1Department of Chemistry and Biochemistry, Arizona State University, Tempe, Arizona 85287, USA.
Abstract:
The TolC protein of Escherichia coli, through its interaction with AcrA and AcrB, is thought to form a continuous protein channel that expels inhibitors from the cell. Consequently, tolC null mutations display a hypersensitive phenotype. Here we report the isolation and characterization of tolC missense mutations that direct the synthesis of mutant TolC proteins partially disabled in their efflux role. All alterations, consisting of single amino acid substitutions, were localized within the periplasmic alpha-helical domain. In two mutants carrying an I106N or S350F substitution, the hypersensitivity phenotype may be in part due to aberrant TolC assembly. However, two other alterations, R367H and R390C, disrupted efflux function by affecting interactions among the helices surrounding TolC's periplasmic tunnel. Curiously, these two TolC mutants were sensitive to a large antibiotic, vancomycin, and exhibited a Dex(+) phenotype. These novel phenotypes of TolC(R367H) and TolC(R390C) were likely the result of a general influx of molecules through a constitutively open tunnel aperture, which normally widens only when TolC interacts with other proteins during substrate translocation. An intragenic suppressor alteration (T140A) was isolated from antibiotic-resistant revertants of the hypersensitive TolC(R367H) mutant. T140A also reversed, either fully (R390C) or partially (I106N and S350F), the hypersensitivity phenotype of other TolC mutants. Our data suggest that this global suppressor phenotype of T140A is the result of impeded antibiotic influx caused by tapering of the tunnel passage rather than by correcting individual mutational defects. Two extragenic suppressors of TolC(R367H), mapping in the regulatory region of acrAB, uncoupled the AcrR-mediated repression of the acrAB genes. The resulting overexpression of AcrAB reduced the hypersensitivity phenotype of all the TolC mutants. Similar results were obtained when the chromosomal acrR gene was deleted or the acrAB genes were expressed from a plasmid. Unlike the case for the intragenic suppressor T140A, the overexpression of AcrAB diminished hypersensitivity towards only erythromycin and novobiocin, which are substrates of the TolC-AcrAB efflux pump, but not towards vancomycin, which is not a substrate of this pump. This showed that the two types of suppressors produced their effects by fundamentally different means, as the intragenic suppressor decreased the general influx while extragenic suppressors increased the efflux of TolC-AcrAB pump-specific antibiotics.
Insights
Mutations in the TolC protein of Escherichia coli can impair its drug efflux function, leading to increased sensitivity to antibiotics. Suppressor mutations can either reduce molecular influx or enhance efflux, revealing distinct mechanisms for overcoming TolC defects.
Area of Science:
- Microbiology
- Molecular Biology
- Biochemistry
Background:
- The TolC protein, along with AcrA and AcrB, forms a tripartite efflux pump in Escherichia coli, crucial for expelling toxic compounds and maintaining multidrug resistance.
- Null mutations in tolC result in a hypersensitive phenotype, indicating TolC's essential role in cellular protection against inhibitors.
Purpose of the Study:
- To investigate the functional consequences of specific missense mutations within the TolC protein.
- To characterize novel phenotypes associated with TolC dysfunction, including sensitivity to specific antibiotics and altered molecular influx/efflux properties.
- To identify and analyze suppressor mutations that restore resistance in TolC-deficient strains, elucidating mechanisms of resistance and efflux pump regulation.
Main Methods:
- Isolation and characterization of tolC missense mutations affecting single amino acid substitutions within the periplasmic alpha-helical domain.
- Phenotypic analysis of mutant strains, including hypersensitivity assays, vancomycin sensitivity, and Dextran (Dex) uptake.
- Genetic analysis involving the isolation of intragenic and extragenic suppressors to identify compensatory mutations and regulatory interactions.
Main Results:
- Specific TolC mutations (I106N, S350F) may cause hypersensitivity due to aberrant protein assembly.
- Mutations R367H and R390C disrupt efflux by affecting periplasmic tunnel interactions, leading to vancomycin sensitivity and a Dex(+) phenotype, suggesting a constitutively open tunnel.
- An intragenic suppressor (T140A) reversed hypersensitivity by impeding antibiotic influx, while extragenic suppressors (acrAB regulatory region) restored resistance by increasing AcrAB-mediated efflux.
Conclusions:
- TolC mutations can impair efflux through various mechanisms, including assembly defects and disruption of periplasmic tunnel interactions.
- Novel phenotypes associated with TolC mutations provide insights into the dynamic nature of the efflux channel and its regulation.
- Distinct suppressor mechanisms highlight the complex interplay between efflux pump function, substrate specificity, and cellular defense strategies in bacteria.
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