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Updated: Jan 29, 2026

Rapid and Specific Detection of Acinetobacter baumannii Infections Using a Recombinase Polymerase Amplification/Cas12a-based System
Published on: April 25, 2025
2-Hydroxylation of Acinetobacter baumannii Lipid A Contributes to Virulence
Toby L Bartholomew1, Timothy J Kidd1,2,3, Joana Sá Pessoa1
1Wellcome-Wolfson Institute for Experimental Medicine, Queen's University Belfast, Belfast, United Kingdom.
Abstract:
Acinetobacter baumannii causes a wide range of nosocomial infections. This pathogen is considered a threat to human health due to the increasingly frequent isolation of multidrug-resistant strains. There is a major gap in knowledge on the infection biology of A. baumannii, and only a few virulence factors have been characterized, including lipopolysaccharide. The lipid A expressed by A. baumannii is hepta-acylated and contains 2-hydroxylaurate. The late acyltransferases controlling the acylation of lipid A have been already characterized. Here, we report the characterization of A. baumannii LpxO, which encodes the enzyme responsible for the 2-hydroxylation of lipid A. By genetic methods and mass spectrometry, we demonstrate that LpxO catalyzes the 2-hydroxylation of the laurate transferred by A. baumannii LpxL. LpxO-dependent lipid A 2-hydroxylation protects A. baumannii from polymyxin B, colistin, and human β-defensin 3. LpxO contributes to the survival of A. baumannii in human whole blood and is required for pathogen survival in the waxmoth Galleria mellonella LpxO also protects Acinetobacter from G. mellonella antimicrobial peptides and limits their expression. Further demonstrating the importance of LpxO-dependent modification in immune evasion, 2-hydroxylation of lipid A limits the activation of the mitogen-activated protein kinase Jun N-terminal protein kinase to attenuate inflammatory responses. In addition, LpxO-controlled lipid A modification mediates the production of the anti-inflammatory cytokine interleukin-10 (IL-10) via the activation of the transcriptional factor CREB. IL-10 in turn limits the production of inflammatory cytokines following A. baumannii infection. Altogether, our studies suggest that LpxO is a candidate for the development of anti-A. baumannii drugs.
Insights
Acinetobacter baumannii LpxO enzyme modifies lipid A, protecting the bacteria from host defenses and contributing to infections. This finding offers a potential target for new anti-Acinetobacter drugs.
Area of Science:
- Microbiology
- Molecular Biology
- Immunology
Background:
- Acinetobacter baumannii is a major cause of hospital-acquired infections.
- Multidrug-resistant strains pose a significant threat to human health.
- Understanding A. baumannii virulence factors is crucial for developing effective treatments.
Purpose of the Study:
- To characterize the role of LpxO in A. baumannii lipid A modification.
- To investigate how LpxO-mediated lipid A hydroxylation impacts bacterial survival and host immune response.
- To assess LpxO as a potential drug target.
Main Methods:
- Genetic manipulation of A. baumannii to create lpxO mutants.
- Mass spectrometry to analyze lipid A structure.
- In vitro assays using human whole blood and antimicrobial peptides.
- In vivo studies in Galleria mellonella models.
- Analysis of host immune signaling pathways (MAPK, CREB).
Main Results:
- LpxO catalyzes the 2-hydroxylation of A. baumannii lipid A.
- LpxO-dependent lipid A modification confers resistance to polymyxin B, colistin, and human defensins.
- LpxO enhances bacterial survival in human blood and in G. mellonella.
- 2-hydroxylation of lipid A attenuates inflammatory responses by limiting MAPK activation and promoting IL-10 production.
- LpxO contributes to immune evasion and virulence.
Conclusions:
- LpxO is a key enzyme in A. baumannii virulence, essential for immune evasion.
- LpxO-mediated lipid A modification is critical for bacterial survival against host antimicrobial defenses.
- Targeting LpxO represents a promising strategy for developing novel anti-A. baumannii therapeutics.
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