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Replication of the Ordered, Nonredundant Library of Pseudomonas aeruginosa strain PA14 Transposon Insertion Mutants
Published on: May 4, 2018
Multidrug Intrinsic Resistance Factors in Staphylococcus aureus Identified by Profiling Fitness within High-Diversity
Mithila Rajagopal1, Melissa J Martin2, Marina Santiago3
1Department of Microbiology and Immunobiology, Harvard Medical School, Boston, Massachusetts, USA Department of Chemistry and Chemical Biology, Harvard University, Cambridge, Massachusetts, USA.
Unlabelled:
Staphylococcus aureus is a leading cause of life-threatening infections worldwide. The MIC of an antibiotic against S. aureus, as well as other microbes, is determined by the affinity of the antibiotic for its target in addition to a complex interplay of many other cellular factors. Identifying nontarget factors impacting resistance to multiple antibiotics could inform the design of new compounds and lead to more-effective antimicrobial strategies. We examined large collections of transposon insertion mutants in S. aureus using transposon sequencing (Tn-Seq) to detect transposon mutants with reduced fitness in the presence of six clinically important antibiotics-ciprofloxacin, daptomycin, gentamicin, linezolid, oxacillin, and vancomycin. This approach allowed us to assess the relative fitness of many mutants simultaneously within these libraries. We identified pathways/genes previously known to be involved in resistance to individual antibiotics, including graRS and vraFG (graRS/vraFG), mprF, and fmtA, validating the approach, and found several to be important across multiple classes of antibiotics. We also identified two new, previously uncharacterized genes, SAOUHSC_01025 and SAOUHSC_01050, encoding polytopic membrane proteins, as important in limiting the effectiveness of multiple antibiotics. Machine learning identified similarities in the fitness profiles of graXRS/vraFG, SAOUHSC_01025, and SAOUHSC_01050 mutants upon antibiotic treatment, connecting these genes of unknown function to modulation of crucial cell envelope properties. Therapeutic strategies that combine a known antibiotic with a compound that targets these or other intrinsic resistance factors may be of value for enhancing the activity of existing antibiotics for treating otherwise-resistant S. aureus strains.
Importance:
Bacterial resistance to every major class of antibiotics has emerged, and we are entering a "post-antibiotic era" where relatively minor infections can lead to serious complications or even death. The utility of an antibiotic for a specific pathogen is limited by both intrinsic and acquired factors. Identifying the repertoire of intrinsic resistance factors of an antibiotic for Staphylococcus aureus, a leading cause of community- and hospital-acquired infections, would inform the design of new drugs as well as the identification of compounds that enhance the activity of existing drugs. To identify factors that limit the activity of antibiotics against S. aureus, we used Tn-Seq to simultaneously assess fitness of transposon mutants in every nonessential gene in the presence of six clinically important antibiotics. This work provides an efficient approach for identifying promising targets for drugs that can enhance susceptibility or restore sensitivity to existing antibiotics.
Insights
Researchers identified new genes in Staphylococcus aureus that contribute to antibiotic resistance. Targeting these genes could help overcome drug resistance and improve treatments for dangerous infections.
Area of Science:
- Microbiology
- Genetics
- Pharmacology
Background:
- Staphylococcus aureus is a major cause of life-threatening infections globally.
- Antibiotic resistance is a growing threat, potentially leading to a "post-antibiotic era."
- Understanding intrinsic resistance factors is crucial for developing new antimicrobial strategies.
Purpose of the Study:
- To identify non-target factors influencing Staphylococcus aureus resistance to multiple antibiotics.
- To discover novel genes and pathways involved in limiting antibiotic effectiveness.
- To inform the design of new drugs and enhance existing antimicrobial therapies.
Main Methods:
- Utilized transposon sequencing (Tn-Seq) to analyze large collections of S. aureus transposon insertion mutants.
- Assessed the relative fitness of mutants in the presence of six clinically important antibiotics.
- Employed machine learning to identify patterns in mutant fitness profiles.
Main Results:
- Confirmed known resistance pathways (e.g., graRS/vraFG, mprF) and identified several important across multiple antibiotic classes.
- Discovered two previously uncharacterized genes, SAOUHSC_01025 and SAOUHSC_01050, crucial for limiting antibiotic effectiveness.
- Linked graXRS/vraFG, SAOUHSC_01025, and SAOUHSC_01050 to the modulation of essential cell envelope properties.
Conclusions:
- Identified novel genetic factors contributing to multi-drug resistance in S. aureus.
- These findings provide new targets for therapeutic strategies to combat antibiotic resistance.
- Combining existing antibiotics with compounds targeting these factors may enhance treatment efficacy against resistant strains.
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