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Published on: April 25, 2025
Manuka honey chelates iron and impacts iron regulation in key bacterial pathogens
L M Ankley1, M P Monteiro1, K M Camp1
1Department of Biology, Eastern Washington University, Cheney, WA, USA.
Aim:
The aim of this study was to test the hypothesis that Manuka honey (MH) chelates iron and promotes an iron-limiting environment, which contributes to its antimicrobial activity.
Methods And Results:
Employing a ferrozine-based assay, we observed that MH is an iron chelator that depletes iron from solution. Siderophores are small molecules that bind ferric iron (III) with high affinity and their levels are upregulated by bacteria under iron-limiting conditions. We demonstrated by quantitating siderophore production that Escherichia coli and Pseudomonas aeruginosa treated with MH sub-minimum inhibitory concentrations (sub-MIC) experience an iron-limiting environment and increase siderophore production. In addition, supplementation with ferrous iron (II) significantly increased growth of E. coli, Staphylococcus aureus and P. aeruginosa cultured at their MH MIC above that observed in nonsupplemented controls. By contrast, supplementation with ferric iron (III) significantly increased growth for only E. coli and P. aeruginosa, above their nonsupplemented controls.
Conclusions:
Manuka honey chelates iron, thereby generating an iron-limiting environment for E. coli and P. aeruginosa, and to a lesser extent S. aureus, which contributes to its antimicrobial properties.
Significance And Impact Of The Study:
Our work demonstrates that MH-induced iron chelation is an antimicrobial mechanism that differentially impacts the bacterial species tested here. Iron chelation affects multiple diverse physiological processes in bacteria and would contribute to the lack of bacterial resistance to MH. Iron metabolism is tightly regulated; bacteria require this essential nutrient for survival, but in excess it is toxic. Additional exploration of MH's iron chelation mechanism will facilitate its future use in mainstream medicine.
Insights
Manuka honey (MH) acts as an iron chelator, creating an environment that limits iron availability for bacteria. This iron chelation mechanism contributes to MH's antimicrobial activity against various bacterial species.
Area of Science:
- Microbiology
- Biochemistry
Background:
- Manuka honey (MH) exhibits antimicrobial properties.
- The precise mechanisms underlying MH's antimicrobial activity require further elucidation.
- Iron is an essential nutrient for bacterial growth and survival.
Purpose of the Study:
- To investigate the hypothesis that Manuka honey chelates iron.
- To determine if iron chelation by MH creates an iron-limiting environment.
- To assess the contribution of iron chelation to MH's antimicrobial effects.
Main Methods:
- Utilized a ferrozine-based assay to measure iron chelation by MH.
- Quantitated siderophore production in bacteria exposed to sub-minimum inhibitory concentrations (sub-MIC) of MH.
- Assessed bacterial growth in the presence of MH and iron supplementation (ferrous II and ferric III).
Main Results:
- Manuka honey demonstrated significant iron-chelating activity, depleting iron from solutions.
- Escherichia coli and Pseudomonas aeruginosa exhibited increased siderophore production when treated with MH sub-MIC, indicating an iron-limiting environment.
- Supplementation with ferrous iron (II) enhanced the growth of E. coli, Staphylococcus aureus, and P. aeruginosa at their MH MIC, while ferric iron (III) primarily benefited E. coli and P. aeruginosa.
Conclusions:
- Manuka honey effectively chelates iron, establishing an iron-deficient environment.
- This iron chelation mechanism contributes to the antimicrobial properties of Manuka honey against E. coli, P. aeruginosa, and S. aureus.
- MH-induced iron chelation represents a novel antimicrobial strategy that may circumvent bacterial resistance development.
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