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Updated: Mar 28, 2026

Isolation and Chemical Characterization of Lipid A from Gram-negative Bacteria
Published on: September 16, 2013
Insights into the Mechanism of Action of Bactericidal Lipophosphonoxins
Natalya Panova1,2, Eva Zborníková1, Ondřej Šimák1
1Institute of Organic Chemistry and Biochemistry, Czech Academy of Sciences v.v.i., Flemingovo nám. 2, 166 10 Prague 6, Czech Republic.
Abstract:
The advantages offered by established antibiotics in the treatment of infectious diseases are endangered due to the increase in the number of antibiotic-resistant bacterial strains. This leads to a need for new antibacterial compounds. Recently, we discovered a series of compounds termed lipophosphonoxins (LPPOs) that exhibit selective cytotoxicity towards Gram-positive bacteria that include pathogens and resistant strains. For further development of these compounds, it was necessary to identify the mechanism of their action and characterize their interaction with eukaryotic cells/organisms in more detail. Here, we show that at their bactericidal concentrations LPPOs localize to the plasmatic membrane in bacteria but not in eukaryotes. In an in vitro system we demonstrate that LPPOs create pores in the membrane. This provides an explanation of their action in vivo where they cause serious damage of the cellular membrane, efflux of the cytosol, and cell disintegration. Further, we show that (i) LPPOs are not genotoxic as determined by the Ames test, (ii) do not cross a monolayer of Caco-2 cells, suggesting they are unable of transepithelial transport, (iii) are well tolerated by living mice when administered orally but not peritoneally, and (iv) are stable at low pH, indicating they could survive the acidic environment in the stomach. Finally, using one of the most potent LPPOs, we attempted and failed to select resistant strains against this compound while we were able to readily select resistant strains against a known antibiotic, rifampicin. In summary, LPPOs represent a new class of compounds with a potential for development as antibacterial agents for topical applications and perhaps also for treatment of gastrointestinal infections.
Insights
New lipophosphonoxins (LPPOs) show selective antibacterial activity by forming pores in bacterial membranes. These compounds are non-toxic, stable in the stomach, and do not readily develop resistance, offering potential for topical and gastrointestinal infections.
Area of Science:
- Microbiology
- Pharmacology
- Drug Discovery
Background:
- Antibiotic resistance is a growing threat to public health.
- Novel antibacterial agents are urgently needed to combat resistant bacterial strains.
- Lipophosphonoxins (LPPOs) are a newly discovered class of compounds with selective antibacterial properties.
Purpose of the Study:
- To elucidate the mechanism of action of LPPOs.
- To characterize the interaction of LPPOs with eukaryotic cells and organisms.
- To assess the safety and stability of LPPOs for potential therapeutic applications.
Main Methods:
- Bacterial and eukaryotic cell localization studies.
- In vitro membrane pore formation assays.
- Genotoxicity testing (Ames test).
- Transepithelial transport assays (Caco-2 cells).
- In vivo oral and peritoneal administration in mice.
- Stability testing at low pH.
- Antibiotic resistance selection experiments.
Main Results:
- LPPOs localize to bacterial plasmatic membranes, forming pores that lead to cell disintegration.
- LPPOs are not genotoxic and do not exhibit transepithelial transport.
- Oral administration in mice is well-tolerated, and LPPOs are stable at low pH.
- Resistance to LPPOs did not readily develop in vitro, unlike with rifampicin.
Conclusions:
- LPPOs represent a novel class of antibacterial agents with a unique membrane-disrupting mechanism.
- Their favorable safety profile, stability, and low resistance potential suggest promise for topical and gastrointestinal applications.
- Further development of LPPOs could provide a valuable new option against Gram-positive bacterial infections.
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