Genetic synergy between Acinetobacter baumannii undecaprenyl phosphate biosynthesis and the Mla system impacts cell
Hannah R Noel1, Sowmya Keerthi2, Xiaomei Ren1
1Department of Microbiology and Immunology, University of Illinois Chicago, Chicago, Illinois, USA.
Abstract:
Acinetobacter baumannii is a Gram-negative bacterial pathogen that poses a major health concern due to increasing multidrug resistance. The Gram-negative cell envelope is a key barrier to antimicrobial entry and includes an inner and outer membrane. The maintenance of lipid asymmetry (Mla) system is the main homeostatic mechanism by which Gram-negative bacteria maintain outer membrane asymmetry. Loss of the Mla system in A. baumannii results in attenuated virulence and increased susceptibility to membrane stressors and some antibiotics. We recently reported two strain variants of the A. baumannii type strain ATCC 17978: 17978VU and 17978UN. Here, ∆mlaF mutants in the two ATCC 17978 strains display different phenotypes for membrane stress resistance, antibiotic resistance, and pathogenicity in a murine pneumonia model. Although allele differences in obgE were previously reported to synergize with ∆mlaF to affect growth and stringent response, obgE alleles do not affect membrane stress resistance. Instead, a single-nucleotide polymorphism (SNP) in the essential gene encoding undecaprenyl pyrophosphate (Und-PP) synthase, uppS, results in decreased enzymatic rate and decrease in total Und-P levels in 17978UN compared to 17978VU. The UppSUN variant synergizes with ∆mlaF to reduce capsule and lipooligosaccharide (LOS) levels, increase susceptibility to membrane stress and antibiotics, and reduce persistence in a mouse lung infection. Und-P is a lipid glycan carrier required for the biosynthesis of A. baumannii capsule, cell wall, and glycoproteins. These findings uncover synergy between Und-P and the Mla system in maintaining the A. baumannii cell envelope and antibiotic resistance.IMPORTANCEAcinetobacter baumannii is a critical threat to global public health due to its multidrug resistance and persistence in hospital settings. Therefore, novel therapeutic approaches are urgently needed. We report that a defective undecaprenyl pyrophosphate synthase (UppS) paired with a perturbed Mla system leads to synthetically sick cells that are more susceptible to clinically relevant antibiotics and show reduced virulence in a lung infection model. These results suggest that targeting UppS or undecaprenyl species and the Mla system may resensitize A. baumannii to antibiotics in combination therapies. This work uncovers a previously unknown synergistic relationship in cellular envelope homeostasis that could be leveraged for use in combination therapy against A. baumannii.
Insights
A defective undecaprenyl pyrophosphate synthase (UppS) and the Mla system in Acinetobacter baumannii synergize to increase antibiotic susceptibility and reduce virulence. Targeting these pathways may resensitize bacteria to antibiotics.
Area of Science:
- Microbiology
- Molecular Biology
- Drug Discovery
Background:
- Acinetobacter baumannii is a multidrug-resistant pathogen causing significant health concerns.
- The Gram-negative cell envelope, including the Mla system, is crucial for bacterial integrity and antibiotic resistance.
- Understanding cell envelope homeostasis is vital for developing new therapeutic strategies.
Purpose of the Study:
- To investigate the synergistic effects of the Mla system and undecaprenyl pyrophosphate (Und-PP) synthase variants on A. baumannii.
- To identify genetic factors contributing to differential phenotypes in A. baumannii strain variants.
- To explore potential therapeutic targets for combating multidrug-resistant A. baumannii.
Main Methods:
- Comparative analysis of A. baumannii strain variants (17978VU and 17978UN) with mutations in MlaF and UppS.
- Assessment of membrane stress resistance, antibiotic susceptibility, and virulence in a murine pneumonia model.
- Investigation of Und-P levels and their impact on cell envelope biosynthesis.
Main Results:
- A single-nucleotide polymorphism in uppS (UppS(UN)) synergizes with a ∆mlaF mutation.
- This synergy reduces capsule and lipooligosaccharide (LOS) levels, increasing susceptibility to membrane stressors and antibiotics.
- The UppS(UN) and ∆mlaF combination significantly reduces bacterial persistence in a mouse lung infection model.
Conclusions:
- A previously unrecognized synergy exists between Und-P metabolism and the Mla system in A. baumannii cell envelope homeostasis.
- Targeting UppS or the Mla system, potentially in combination, could resensitize A. baumannii to existing antibiotics.
- This discovery offers a promising avenue for developing novel combination therapies against critical A. baumannii infections.
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