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Polymyxins Bind to the Cell Surface of Unculturable Acinetobacter baumannii and Cause Unique Dependent Resistance
Yan Zhu1, Jing Lu1, Mei-Ling Han1
1Infection & Immunity Program Biomedicine Discovery Institute and Department of Microbiology Monash University Melbourne 3800 Australia.
Abstract:
Multidrug-resistant Acinetobacter baumannii is a top-priority pathogen globally and polymyxins are a last-line therapy. Polymyxin dependence in A. baumannii (i.e., nonculturable on agar without polymyxins) is a unique and highly-resistant phenotype with a significant potential to cause treatment failure in patients. The present study discovers that a polymyxin-dependent A. baumannii strain possesses mutations in both lpxC (lipopolysaccharide biosynthesis) and katG (reactive oxygen species scavenging) genes. Correlative multiomics analyses show a significantly remodeled cell envelope and remarkably abundant phosphatidylglycerol in the outer membrane (OM). Molecular dynamics simulations and quantitative membrane lipidomics reveal that polymyxin-dependent growth emerges only when the lipopolysaccharide-deficient OM distinctively remodels with ≥ 35% phosphatidylglycerol, and with "patch" binding on the OM by the rigid polymyxin molecules containing strong intramolecular hydrogen bonding. Rather than damaging the OM, polymyxins bind to the phosphatidylglycerol-rich OM and strengthen the membrane integrity, thereby protecting bacteria from external reactive oxygen species. Dependent growth is observed exclusively with polymyxin analogues, indicating a critical role of the specific amino acid sequence of polymyxins in forming unique structures for patch-binding to bacterial OM. Polymyxin dependence is a novel antibiotic resistance mechanism and the current findings highlight the risk of 'invisible' polymyxin-dependent isolates in the evolution of resistance.
Insights
Polymyxin dependence in Acinetobacter baumannii is a novel resistance mechanism where bacteria require polymyxins to grow. This unique phenotype strengthens the bacterial cell envelope against damage.
Area of Science:
- Microbiology
- Molecular Biology
- Drug Resistance
Background:
- Multidrug-resistant *Acinetobacter baumannii* is a critical global health threat.
- Polymyxins are last-resort antibiotics against resistant bacteria.
- Polymyxin dependence is a rare, highly resistant phenotype leading to treatment failure.
Purpose of the Study:
- To investigate the genetic and molecular basis of polymyxin dependence in *A. baumannii*.
- To elucidate the mechanism by which polymyxins promote growth in dependent strains.
- To understand the implications of polymyxin dependence for antibiotic resistance.
Main Methods:
- Genetic analysis of polymyxin-dependent *A. baumannii* strains.
- Multi-omics analyses (genomics, transcriptomics, lipidomics).
- Molecular dynamics simulations and membrane biophysics.
- Phenotypic characterization of bacterial growth and membrane integrity.
Main Results:
- Polymyxin dependence is associated with mutations in *lpxC* and *katG* genes.
- Dependent strains exhibit a remodeled outer membrane rich in phosphatidylglycerol (≥35%).
- Polymyxins bind to phosphatidylglycerol-rich membranes, enhancing integrity and protecting against oxidative stress.
Conclusions:
- Polymyxin dependence is a novel antibiotic resistance mechanism.
- Specific polymyxin structures are crucial for binding and promoting growth.
- The findings reveal a new challenge in treating infections caused by 'invisible' polymyxin-dependent bacteria.
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