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Published on: April 25, 2025
Unique Mānuka Factor (UMF)-dependent antimicrobial activity of Mānuka honey against respiratory pathogens cannot be
Gemma J Allcott1,2, Jackie Evans3, Troy L Merry3,4
1School of Biosciences, Aston University, Birmingham, UK.
Abstract:
Respiratory bacterial infections remain a major cause of morbidity and mortality worldwide, and their treatment is increasingly complicated by antimicrobial resistance. Mānuka honey has attracted interest as a potential alternative antimicrobial agent, although the extent to which antibacterial activity varies with Unique Mānuka Factor (UMF™) grade and the relative contribution of methylglyoxal (MGO) remain unclear. In this study, the antimicrobial activity of five UMF™ grades of Mānuka honey (5+, 10+, 12+, 15+ and 20+) was evaluated against clinically relevant respiratory pathogens: methicillin-susceptible Staphylococcus aureus (MSSA), methicillin-resistant S. aureus (MRSA), Klebsiella pneumoniae and Pseudomonas aeruginosa. MICs were determined using broth microdilution assays. To assess the contribution of osmotic stress, bacterial growth responses were compared with a sugar solution matched to the carbohydrate composition of honey. In addition, MGO-matched control solutions were prepared to examine the contribution of MGO to antimicrobial activity. All Mānuka honey samples inhibited bacterial growth, and MIC values decreased with increasing UMF™ grade. MSSA and MRSA were the most susceptible organisms, whereas higher concentrations were required to inhibit the Gram-negative species. Mānuka honey consistently inhibited bacterial growth more strongly than the matched sugar control, indicating that osmotic effects alone do not explain its antimicrobial activity. Although MGO-matched solutions exhibited antibacterial activity, they were generally less potent than the corresponding whole honey samples. These findings demonstrate that Mānuka honey exhibits UMF-dependent antimicrobial activity against respiratory pathogens and suggest that its antibacterial effects arise from the combined action of MGO and additional components within the honey matrix.
Insights
Mānuka honey shows increasing antibacterial activity against respiratory pathogens with higher Unique Mānuka Factor™ (UMF™) grades. Its effectiveness stems from methylglyoxal (MGO) and other honey components, not just osmotic effects.
Area of Science:
- Microbiology
- Natural Products Chemistry
- Infectious Diseases
Background:
- Antimicrobial resistance complicates treatment of respiratory bacterial infections.
- Mānuka honey is explored as an alternative antimicrobial agent.
- The role of Unique Mānuka Factor™ (UMF™) grade and methylglyoxal (MGO) in Mānuka honey's activity needs clarification.
Purpose of the Study:
- To evaluate the antimicrobial activity of different UMF™ grades of Mānuka honey against key respiratory pathogens.
- To determine the contribution of MGO and osmotic stress to Mānuka honey's antibacterial effects.
Main Methods:
- Broth microdilution assays were used to determine Minimum Inhibitory Concentrations (MICs).
- Mānuka honey (UMF™ 5+, 10+, 12+, 15+, 20+) was tested against *Staphylococcus aureus* (MSSA, MRSA), *Klebsiella pneumoniae*, and *Pseudomonas aeruginosa*.
- Control solutions matched for carbohydrate composition (osmotic stress) and MGO content were used for comparison.
Main Results:
- All Mānuka honey samples inhibited bacterial growth, with lower MICs observed for higher UMF™ grades.
- MSSA and MRSA were more susceptible than Gram-negative bacteria (*K. pneumoniae*, *P. aeruginosa*).
- Mānuka honey's activity exceeded that of matched sugar solutions, indicating non-osmotic effects. MGO-matched solutions were less potent than whole honey.
Conclusions:
- Mānuka honey possesses UMF™-dependent antimicrobial activity against respiratory pathogens.
- Antibacterial effects are attributed to a combination of MGO and other honey matrix components.
- Mānuka honey offers a promising natural alternative for combating resistant respiratory infections.
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