Antibiofilm Activity of Cajeput (Melaleuca Leucadendron) Eessential Oil against Stenotrophomonas maltophilia
Keywords:
Stenotrophomonas maltophilia, antibiofilm activity, essential oils, MALDI-TOF MS BiotyperAbstract
Stenotrophomonas maltophilia is the causative agent of nosocomial infections and is characterized by biofilm formation. Primary cell adhesion is crucial in biofilm formation and the type of contact surface has a significant effect. The aim of this work was to assess the antibiofilm activity of Melaleuca leucadendron essential oil. The changes in the biofilm profile of Stenotrophomonas maltophilia were studied using MALDI-TOF MS Biotyper on glass and wooden surfaces. The molecular differences of biofilms in different days were observed as well. The analysis of the mass spectra of S. maltophilia experimental group with Melaleuca leucadendron essential oil showed similarity of the experimental spectra and the control planktonic spectrum on the third day. The results of work proved as such MALDI-TOF MS profiling could be a useful technology for the analysis of biofilm properties.
References
Donlan, R. M., Costerton, J. W., Biofilms: survival mechanisms of clinically relevant microorganisms. Clinical Microbiology Revision, 2002, 15, 167-193.
Elvers, K. T., Leeming, K., Lappin-Scott, H. M., Binary culture biofilm formation by Stenotrophomonas maltophilia and Fusarium oxysporum, 2001, Journal of Industrial Microbiology and Biotechnology, 26, 178–183.
Brooke, J. S., Stenotrophomonas maltophilia: an Emerging Global Opportunistic Pathogen, Clinical Microbiological Review, 2012, 25 (1), 2–41.
Pujiarti, R., Ohtani, Y., Ichiura, H., Physicochemical properties and chemical compositions of Melaleuca leucadendron leaf oils taken from the plantations in Java, Indonesia, Journal of Wood Science, 2011, 57(1), 446-451.
Cleber, J. S., Luiz, C. A. B., Celia, R. A. M., Antonio, L. P., Fraz, M. D. I., Comparative study of the essential oils of seven Melaleuca (Myrtaceae) species grown in Brazil, Flavour and Fragrance Journal, 2007, 22, 474–478.
Pereira, F.D.E.S., Bonatto, C.C., Lopes, C.A.P., Pereira, A.L., Silva, L.P., Use of MALDI-TOF mass spectrometry to analyze the molecular profile of Pseudomonas aeruginosa biofilms grown on glass and plastic surfaces, Microbial Pathogenesis, 2015, 86, 32-37.
Kačániová, M., Galovičová, L., Ivanišová, E., Kántor, A., Kunová, S., Terentjeva, M., Anti-biofilm and Antiradical Activity of Different Essential Oils Scientific Papers: Animal Science and Biotechnologies, 2019, 52(1), 82-88.
Kačániová, M., Galovičová, L, Ivanišová, E., Vukovic, N.L., Štefániková, J., Valková, V., Borotová, P., Žiarovská, J., Terentjeva, M., Felšöciová, S., Tvrdá, E., Antioxidant, Antimicrobial and Antibiofilm Activity of Coriander (Coriandrum sativum L.) Essential Oil for Its Application in Foods, Foods, 2020, 9, 282.
Cassagne, C., Normand, A. C., Bonzon, L., L'ollivier, C., Gautier, M., Costerton, J. W., Cheng, K. J., Geesey, G. G., Ladd, T. I., Nickel, J. C., Dasgupta, M., Marrie, T. J., Bacterial biofilms in nature and disease, Annual Review of Microbiology, 1987, 41(1), 435-464.
Mielich‐Süss, B., Lopez, D., Molecular mechanisms involved in Bacillus subtilis biofilm formation, Environmental Microbiology, 2015, 17(3), 555–565.
Cairns, L. S., Marlow, V. L., Bissett, E., Ostrowski, A., Stanley‐Wall, N. R. A mechanical signal transmitted by the flagellum controls signalling in Bacillus subtilis, Molecular Microbiology, 2013, 90(1), 6–21.
Angelini, T. E., Roper, M., Kolter, R., Weitz, D. A., Brenner, M. P., Bacillus subtilis spreads by surfing on waves of surfactant, Proceedings of the National Academy of Sciences of the USA, 2009, 106(4)3, 18109–18113.
Kolodkin‐Gal, I., Elsholz, A. K., Muth, C., Girguis, P. R., Kolter, R., Losick, R., Respiration control of multicellularity in Bacillus subtilis by a complex of the cytochrome chain with a membrane‐embedded histidine kinase, Genes and development, 2013, 27(8), 887–899
Branda, S. S., Chu, F., Kearns, D. B., Losick, R., Kolter, R., A major protein component of the Bacillus subtilis biofilm matrix, Molecular Microbiology, 2006, 59(4), 1229–1238.
Romero, D., Vlamakis, H., Losick, R., Kolter, R., An accessory protein required for anchoring and assembly of amyloid fibres in B. subtilis biofilms, Molecular Microbiology, 2011, 80(5), 1155–1168.
Mirani, Z. A., Aziz, M., Khan, M. N., Lal, I., Hassan, N. U., Khan, S. I., Biofilm formation and dispersal of Staphylococcus aureus under the influence of oxacillin, Microbial Pathogenesis, 2013, 61(6), 66–72.
Hobley, L., Kim, S. H., Maezato, Y., Wyllie, S., Fairlamb, A. H., Stanley‐Wall, N. R., Michael, A. J., Norspermidine Is Not a Self-Produced Trigger for Biofilm Disassembly, Cell, 2014, 156(4), 844–854.