Citation: Matthew Johnston, Michael McBride, Divakar Dahiya, Richard Owusu-Apenten, Poonam Singh Nigam. Antibacterial activity of Manuka honey and its components: An overview[J]. AIMS Microbiology, 2018, 4(4): 655-664. doi: 10.3934/microbiol.2018.4.655
[1] | Linder K, Nicolau D, Nailor M (2016) Predicting and preventing antimicrobial resistance utilizing pharmacodynamics: Part I Gram positive bacteria. Expert Opin Drug Met 12: 267–280. doi: 10.1517/17425255.2016.1141197 |
[2] | Walsh C (2000) Molecular mechanisms that confer antibacterial drug resistance. Nature 406: 775–781. doi: 10.1038/35021219 |
[3] | Pagès JM, Amaral L (2009) Mechanisms of drug efflux and strategies to combat them: challenging the efflux pump of Gram-negative bacteria. BBA-Proteins Proteom 1794: 826–833. doi: 10.1016/j.bbapap.2008.12.011 |
[4] | Coates R, Moran J, Horsburgh M (2014) Staphylococci: colonizers and pathogens of human skin. Future Microbiol 9: 75–91. doi: 10.2217/fmb.13.145 |
[5] | Tong S, Davis J, Eichenberger E, et al. (2015) Staphylococcus aureus infections: Epidemiology, pathophysiology, clinical manifestations, and management. Clin Microbiol Rev 28: 603–661. doi: 10.1128/CMR.00134-14 |
[6] | Miragaia M, Thomas J, Couto I, et al. (2007) Inferring a population structure for Staphylococcus epidermidis from multilocus sequence typing data. J Bacteriol 189: 2540–2552. doi: 10.1128/JB.01484-06 |
[7] | Uckay I, Pittet D, Vaudaux P, et al. (2009) Foreign body infections due to Staphylococcus epidermidis. Ann Med 41: 109–119. doi: 10.1080/07853890802337045 |
[8] | Otto M (2009) Staphylococcus epidermidis-the 'accidental' pathogen. Nat Rev Microbiol 7: 555–567. doi: 10.1038/nrmicro2182 |
[9] | Saeed S, Farkhondeh T, Fariborz S (2018) Honey and health: A review of recent clinical research. Pharmacogn Res 9: 121–127. |
[10] | Wijesinghe M, Weatherall M, Perrin K, et al. (2009) Honey in the treatment of burns: a systematic review and meta-analysis of its efficacy. NZ Med J 122: 47–60. |
[11] | Alvarez-Suarez J, Gasparrini M, Forbes-Hernández T, et al. (2014) The composition and biological activity of honey: a focus on Manuka honey. Foods 3: 420–432. doi: 10.3390/foods3030420 |
[12] | Mavric E, Wittmann S, Barth G, et al. (2008) Identification and quantification of methylglyoxal as the dominant antibacterial constituent of Manuka (Leptospermum scoparium) honeys from New Zealand. Mol Nutr Food Res 52: 483–489. doi: 10.1002/mnfr.200700282 |
[13] | Adams CJ, Manley-Harris M, Molan PC (2009) The origin of methylglyoxal in New Zealand Manuka (Leptospermum scoparium) honey. Carbohyd Res 344: 1050–1053. doi: 10.1016/j.carres.2009.03.020 |
[14] | Atrott J, Henle T (2009) Methylglyoxal in Manuka honey-correlation with antibacterial properties. Czech J Food Sci 27: S163–S165. doi: 10.17221/911-CJFS |
[15] | Kato Y, Fujinaka R, Ishisaka A, et al. (2014) Plausible authentication of Manuka honey and related products by measuring leptosperin with methyl syringate. J Agr Food Chem 62: 6400–6407. doi: 10.1021/jf501475h |
[16] | Molan PC (2008) An explanation of why the MGO level in Manuka honey does not show the antibacterial activity. New Zeal Beekeeper 16: 11–13. |
[17] | Tonks AJ, Dudley E, Porter N, et al. (2007) A 5.8-kDa component of Manuka honey stimulates immune cells via TLR4. J Leukocyte Biol 82: 1147–1155. |
[18] | Henderson K, Aldhirgham T, Nigam P, et al. (2016) Evaluation of Manuka honey estrogen activity using the MCF-7 cell proliferation assay. J Adv Biol Biotechnol 10: 1–11. |
[19] | Portokalakis I, Yusof H, Ghanotakis D, et al. (2016) Manuka honey-induced cytotoxicity against MCF7 breast cancer cells is correlated to total phenol content and antioxidant power. J Adv Biol Biotechnol 8: 1–10. |
[20] | Fernandez-Cabezudo M, El-Kharrag R, Torab F, et al. (2013) Intravenous administration of Manuka honey inhibits tumour growth and improves host survival when used in combination with chemotherapy in a melanoma mouse model. PLoS One 8: e55993. doi: 10.1371/journal.pone.0055993 |
[21] | Kwok T, Kirkpatrick G, Yusof H, et al. (2016) Rapid colorimetric determination of methylglyoxal equivalents for Manuka honey. J Adv Biol Biotechnol 7: 1–6. |
[22] | Henderson T, Nigam PS, Owusu-Apenten RK, et al. (2015) A universally calibrated microplate ferric reducing antioxidant power (FRAP) assay for foods and applications to Manuka honey. Food Chem 174: 119–123. doi: 10.1016/j.foodchem.2014.11.009 |
[23] | Al-Waili N, Ghamdi AA, Ansari MJ, et al. (2013) Differences in composition of honey samples and their impact on the antimicrobial activities against drug multi-resistant bacteria and pathogenic fungi. Arch Med Res 44: 307–316. doi: 10.1016/j.arcmed.2013.04.009 |
[24] | Tonks A (2003) Honey stimulates inflammatory cytokine production from monocytes. Cytokine 21: 242–247. doi: 10.1016/S1043-4666(03)00092-9 |
[25] | Lu J, Carter D, Turnball L, et al. (2013) The effect of New Zealand Kanuka, Manuka and clover honeys on bacterial growth dynamics and cellular morphology varies according to the species. PLoS One 8: e55898. doi: 10.1371/journal.pone.0055898 |
[26] | Henriquez A, Jenkins R, Burton N, et al. (2010) The intracellular effects of Manuka honey on Staphylococcus aureus. Eur J Clin Microbiol 29: 45–50. doi: 10.1007/s10096-009-0817-2 |
[27] | Lu J, Turnball L, Burke CM, et al. (2014) Manuka-type honeys can eradicate biofilms produced by Staphylococcus aureus strains with different biofilm-forming abilities. Peer J 2: e326. |
[28] | Cooper R, Jenkins L, Henriquez A, et al. (2010) Absence of bacterial resistance to medical-grade Manuka honey. Eur J Clin Microbiol 29: 1237–1241. doi: 10.1007/s10096-010-0992-1 |
[29] | Bonifacio M, Cometa S, Cochis A, et al. (2018) Antibacterial effectiveness meets improved mechanical properties: Manuka honey/gellan gum composite hydrogels for cartilage repair. Carbohyd Polym 198: 462–472. doi: 10.1016/j.carbpol.2018.06.115 |
[30] | Almasaudi SB, Al-Nahari AAM, EI Sayd M, et al. (2017) Antimicrobial effect of different types of honey on Staphylococcus aureus. Saudi J Biol Sci 24: 1255–1261. doi: 10.1016/j.sjbs.2016.08.007 |
[31] | Alsarra I (2009) Chitosan topical gel formulation in the management of burn wounds. Int J Biol Macromol 45: 16–21. doi: 10.1016/j.ijbiomac.2009.03.010 |
[32] | Chau T, Owusu-Apenten R, Nigam P (2017) Total phenols, antioxidant capacity and antibacterial activity of Manuka honey extract. J Adv Biol Biotech 15: 1–6. |
[33] | Kirkpatrick G, Nigam P, Owusu-Apenten R (2017) Total phenols, antioxidant capacity and antibacterial activity of Manuka honey chemical constituents. J Adv Biol Biotech 15: 1–7. |
[34] | Irish J, Blair S, Carter D (2011) The antibacterial activity of honey derived from Australian flora. PLoS One 6: e18229. doi: 10.1371/journal.pone.0018229 |
[35] | Kumar N (2014) Comparison of the antibacterial efficacy of Manuka honey against E. faecalis and E. coli-An in vitro study. JCDR 8: ZC29–ZC31. |
[36] | Paramasivan S, Drilling A, Jardeleza C, et al. (2014) Methylglyoxal-augmented Manuka honey as a topical anti-Staphylococcus aureus biofilm agent: safety and efficacy in an in vivo model. Int Forum Allergy Rh 4: 187–195. doi: 10.1002/alr.21264 |
[37] | Schneider M, Coyle S, Warnock M, et al. (2012) Anti-microbial activity and composition of Manuka and Portobello honey. Phytother Res 27: 1162–1168. |
[38] | Jenkins R, Cooper R (2012) Synergy between oxacillin and Manuka honey sensitizes methicillin-resistant Staphylococcus aureus to oxacillin. J Antimicrob Chemoth 67: 1405–1407. doi: 10.1093/jac/dks071 |
[39] | Müller P, Alber D, Turnbull L, et al. (2013) Synergism between Medihoney and Rifampicin against Methicillin-Resistant Staphylococcus aureus (MRSA). PLoS One 8: e57679. doi: 10.1371/journal.pone.0057679 |
[40] | Liu M, Cokcetin N, Lu J, et al. (2017) Rifampicin-Manuka honey combinations are superior to other Antibiotic-Manuka honey combinations in eradicating Staphylococcus aureus biofilms. Front Microbiol 8: 1–12. |