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Quantifiable and Inexpensive Cell-Free Fluorescent Method to Confirm the Ability of Novel Compounds to Chelate Iron
Published on: February 23, 2024
Ferrous iron is a significant component of bioavailable iron in cystic fibrosis airways
Ryan C Hunter1, Fadi Asfour, Jozef Dingemans
1Division of Biology, California Institute of Technology, Pasadena, California, USA.
Unlabelled:
ABSTRACT Chronic, biofilm-like infections by the opportunistic pathogen Pseudomonas aeruginosa are a major cause of mortality in cystic fibrosis (CF) patients. While much is known about P. aeruginosa from laboratory studies, far less is understood about what it experiences in vivo. Iron is an important environmental parameter thought to play a central role in the development and maintenance of P. aeruginosa infections, for both anabolic and signaling purposes. Previous studies have focused on ferric iron [Fe(III)] as a target for antimicrobial therapies; however, here we show that ferrous iron [Fe(II)] is abundant in the CF lung (-39 µM on average for severely sick patients) and significantly correlates with disease severity (ρ = -0.56, P = 0.004), whereas ferric iron does not (ρ = -0.28, P = 0.179). Expression of the P. aeruginosa genes bqsRS, whose transcription is upregulated in response to Fe(II), was high in the majority of patients tested, suggesting that increased Fe(II) is bioavailable to the infectious bacterial population. Because limiting Fe(III) acquisition inhibits biofilm formation by P. aeruginosa in various oxic in vitro systems, we also tested whether interfering with Fe(II) acquisition would improve biofilm control under anoxic conditions; concurrent sequestration of both iron oxidation states resulted in a 58% reduction in biofilm accumulation and 28% increase in biofilm dissolution, a significant improvement over Fe(III) chelation treatment alone. This study demonstrates that the chemistry of infected host environments coevolves with the microbial community as infections progress, which should be considered in the design of effective treatment strategies at different stages of disease.
Importance:
Iron is an important environmental parameter that helps pathogens thrive in sites of infection, including those of cystic fibrosis (CF) patients. Ferric iron chelation therapy has been proposed as a novel therapeutic strategy for CF lung infections, yet until now, the iron oxidation state has not been measured in the host. In studying mucus from the infected lungs of multiple CF patients from Europe and the United States, we found that ferric and ferrous iron change in concentration and relative proportion as infections progress; over time, ferrous iron comes to dominate the iron pool. This information is relevant to the design of novel CF therapeutics and, more broadly, to developing accurate models of chronic CF infections.
Insights
Ferrous iron, not ferric iron, is abundant in cystic fibrosis lungs and correlates with disease severity. Targeting both iron forms significantly improves control of Pseudomonas aeruginosa biofilms.
Area of Science:
- Microbiology
- Environmental Health
- Medical Science
Background:
- Chronic Pseudomonas aeruginosa infections are a leading cause of mortality in cystic fibrosis (CF) patients.
- Iron availability is crucial for bacterial survival and virulence, but its role in CF infections is not fully understood.
- Previous research focused on ferric iron (Fe(III)) for antimicrobial therapies, neglecting other iron states.
Purpose of the Study:
- To investigate the role of different iron oxidation states in CF lung infections.
- To measure iron concentrations and speciation in CF patient mucus.
- To evaluate the impact of targeting both ferrous (Fe(II)) and ferric iron on Pseudomonas aeruginosa biofilm formation.
Main Methods:
- Analysis of mucus samples from CF patients to quantify Fe(II) and Fe(III) levels.
- Correlation analysis between iron concentrations and disease severity.
- In vitro experiments assessing the effect of iron chelation on P. aeruginosa biofilm accumulation and dissolution.
Main Results:
- Ferrous iron (Fe(II)) is abundant in CF lungs and significantly correlates with disease severity, unlike Fe(III).
- Expression of P. aeruginosa bqsRS genes, responsive to Fe(II), was high in patient samples, indicating Fe(II) bioavailability.
- Concurrent sequestration of Fe(II) and Fe(III) reduced biofilm accumulation by 58% and increased dissolution by 28%, outperforming Fe(III) chelation alone.
Conclusions:
- Host-pathogen interactions involve evolving environmental chemistry, particularly iron speciation, during chronic infections.
- Ferrous iron plays a significant role in P. aeruginosa infections in CF lungs.
- Dual-targeting of Fe(II) and Fe(III) offers a more effective strategy for controlling P. aeruginosa biofilms in CF.
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