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Colistin Dependence in Extensively Drug-Resistant Acinetobacter baumannii Strain Is Associated with ISAjo2 and
Sherley Chamoun1, Jenny Welander2, Mihaela-Maria Martis-Thiele1,3
1Department of Biomedical and Clinical Sciences, Faculty of Medicine and Health Sciences, Linköping University, SE-58185 Linköping, Sweden.
Abstract:
The nosocomial opportunistic Gram-negative bacterial pathogen Acinetobacter baumannii is resistant to multiple antimicrobial agents and an emerging global health problem. The polymyxin antibiotic colistin, targeting the negatively charged lipid A component of the lipopolysaccharide on the bacterial cell surface, is often considered as the last-resort treatment, but resistance to colistin is unfortunately increasing worldwide. Notably, colistin-susceptible A. baumannii can also develop a colistin dependence after exposure to this drug in vitro. Colistin dependence might represent a stepping stone to resistance also in vivo. However, the mechanisms are far from clear. To address this issue, we combined proteogenomics, high-resolution microscopy, and lipid profiling to characterize and compare A. baumannii colistin-susceptible clinical isolate (Ab-S) of to its colistin-dependent subpopulation (Ab-D) obtained after subsequent passages in moderate colistin concentrations. Incidentally, in the colistin-dependent subpopulation the lpxA gene was disrupted by insertion of ISAjo2, the lipid A biosynthesis terminated, and Ab-D cells displayed a lipooligosaccharide (LOS)-deficient phenotype. Moreover, both mlaD and pldA genes were perturbed by insertions of ISAjo2 and ISAba13, and LOS-deficient bacteria displayed a capsule with decreased thickness as well as other surface imperfections. The major changes in relative protein abundance levels were detected in type 6 secretion system (T6SS) components, the resistance-nodulation-division (RND)-type efflux pumps, and in proteins involved in maintenance of outer membrane asymmetry. These findings suggest that colistin dependence in A. baumannii involves an ensemble of mechanisms seen in resistance development and accompanied by complex cellular events related to insertional sequences (ISs)-triggered LOS-deficiency. To our knowledge, this is the first study demonstrating the involvement of ISAjo2 and ISAba13 IS elements in the modulation of the lipid A biosynthesis and associated development of dependence on colistin.
Insights
Colistin dependence in Acinetobacter baumannii arises from insertional sequences disrupting lipid A biosynthesis, leading to lipooligosaccharide deficiency and altered surface structures. This dependence may precede colistin resistance.
Area of Science:
- Microbiology
- Bacterial Pathogenesis
- Genomics
Background:
- Acinetobacter baumannii is a multidrug-resistant pathogen posing a global health threat.
- Colistin is a last-resort antibiotic, but resistance is increasing.
- Colistin dependence in A. baumannii is poorly understood but may link to resistance.
Purpose of the Study:
- To investigate the mechanisms underlying colistin dependence in A. baumannii.
- To compare a colistin-susceptible isolate (Ab-S) with its colistin-dependent subpopulation (Ab-D).
Main Methods:
- Proteogenomics
- High-resolution microscopy
- Lipid profiling
- Analysis of insertional sequences (ISs)
Main Results:
- Colistin dependence involved IS disruption of lpxA, leading to lipooligosaccharide (LOS) deficiency.
- Insertions in mlaD and pldA genes were observed, alongside decreased capsule thickness.
- Changes in type 6 secretion system (T6SS) components and efflux pumps were detected.
Conclusions:
- Colistin dependence in A. baumannii involves IS-triggered LOS deficiency and mechanisms similar to resistance.
- IS elements IS_Ajo2 and IS_Aba13 play a role in modulating lipid A biosynthesis and colistin dependence.
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