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Research Article

Essential oils of Lauraceae: antimicrobial activity and constituents of essential oil from two Machilus species from Vietnam

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Pages 177-187 | Received 07 Jun 2023, Accepted 27 Nov 2023, Published online: 06 Feb 2024

References

  • Kostermans, A.J.G.H. (1990). Additional transfers of Asiatic Machilus sensu Nees, Non Desrousseaux, to Persea Miller (Lauraceae). Annals Missouri Bot. Garden. 77: 545-548. doi: 10.2307/2399518
  • Hoang, S.V. (2008). Uses and conservation of plant species in a National Park-A case study of Ben En, Vietnam. Econ. Bot. 62: 574-593. doi: 10.1007/s12231-008-9056-1
  • Xu, H., Yide, L., Mingxian, L., Jianhui, W., Tushou, L., Zhang, Z., Dexiang, C., Huai, Y., Guangjian, L. and Shirong, L. (2015). Community characteristics of a 60 ha dynamics plot in the tropical montane rain forest in Jianfengling, Hainan Island. Biodiver. Sci. 23: 192-201. doi: 10.17520/biods.2014157
  • Yang, Z., Jin, W.-Y., Liu, B., Ferguson, D.K. and Yang, Y. (2021). Big fruits with tiny petals: an unusual new species of Lauraceae from southwest China. Phytokeys. 179: 129-143. doi: 10.3897/phytokeys.179.62050
  • Woo, S.Y., Hung, T.T. and Park, P.S. (2011). Stand structure and natural regeneration of degraded forestland in the northern mountainous region of Vietnam. Landscape Ecol. Eng. 7: 251-261. doi: 10.1007/s11355-010-0130-3
  • Adrian, M., Santacroce, L., Romeo, I., Mare, A. and Man, L. (2019). Antimicrobial activity of six essential oils against a group of human pathogens: a comparative study. Pathogens. 8: 15-32. doi: 10.3390/pathogens8010015
  • Huong, L.T., Linh, L.D., Dung, N.A., Chau, D.T.M., Dai, D.N. and Ogunwande, I.A. (2023). Lindera essential oils from Vietnam: Antimicrobial activity and constituents of the leaf of Lindera chunii Merr. (Lauraceae) essential oils and chemotaxonomy. J. Essent. Oil Bearing Plants. 26(2): 420-431. doi: 10.1080/0972060X.2023.2191791
  • Huong, L.T., Chau, D.T.M., Dai, D.N. and Ogunwande, I.A. (2022a). Essential oils of Lauraceae: Constituents and antimicrobial activity of Dehaasia cuneata (Blume) Blume and Caryodaphnopsis tonkinensis (Lecomte) Airy-Shaw (Lauraceae) from Vietnam. Rec. Nat. Prod. 16: 477-482.
  • Huong, L.T., Chau, D.T.M., An, N.T.H., Dai, D.N. and Ogunwande, I.A. (2022b). Antimicrobial activity and constituents of Phoebe macrocarpa C. Y. Wu leaf essential oil from Vietnam. J. Essent. Oil Bearing Plants. 25(2): 297-304. doi: 10.1080/0972060X.2022.2072694
  • Chau, D.T.M., Chung, N.T., Huong, L.T., Hung, N.H., Ogunwande, I.A., Dai, D.N. and Setzer, W.N. (2020). Chemical compositions, mosquito larvicidal and antimicrobial activities of leaf essential oils of eleven species of Lauraceae from Vietnam. Plants. 9: 606-621. doi: 10.3390/plants9050606
  • Dung, N.A., Huong, L.T., Dai, D.N. and Ogunwande, I.A. (2021). The leaf essential oil of Acorus macrospadiceus (Yam.) FN Wei & YK Li from Vietnam: chemical composition and antimicrobial activity. J. Essent. Oil Bearing Plants. 24(4): 745-752. doi: 10.1080/0972060X.2021.1978871
  • National Institute of Science and Technology. (2018). NIST Chemistry Webbook. Data from NIST Standard Reference Database 69.
  • Mondello, L. (2016). FFNSC 3; Shimadzu Scientific Instruments: Columbia, Maryland, USA.
  • Kavanaugh, L.N. and Ribbeck. K. (2012). Selected antimicrobial essential oils eradicate Pseudomonas spp. and Staphylococcus aureus biofilms. Appl. Environ. Microbiol. 78: 4057-4061. doi: 10.1128/AEM.07499-11
  • Balouiri, M., Sadiki, M. and Ibnsouda, S. K. (2016). Methods for in vitro evaluating antimicrobial activity: A review. J. Pharm. Anal. 6: 71-79. doi: 10.1016/j.jpha.2015.11.005
  • Hulankova, R. (2022). The influence of liquid medium choice in determination of minimum inhibitory concentration of essential oils against pathogenic bacteria. Antibiotics. 11: 150-159. doi: 10.3390/antibiotics11020150
  • Gutierrez, J., Barry-Ryan, C. and Bourke, P. (2008). The antimicrobial efficacy of plant essential oil combinations and interactions with food ingredients. Int. J. Food Microbiol. 124: 91-97. doi: 10.1016/j.ijfoodmicro.2008.02.028
  • Huong, L.T, Linh, L.D., Dai, D.N. and Ogunwande, I.A. (2022c). Study on essential oil composition and antimicrobial activity of the leaves of Machilus cochinchinensis Lecomte from Vietnam. Chem. Nat. Compd. 58: 1152-1155. doi: 10.1007/s10600-022-03891-8
  • Thang, T.D., Dai, D.N., Thai, T.H. and Ogunwande, I.A. (2013). Chemical composition of the essential oil of Phoebe angustifolia Meisn, Machilus velutina Champ. ex Benth. and Neolitsea polycarpa Liou (Lauraceae) from Vietnam. Rec. Nat. Prod. 7: 192-200.
  • Khien, P.V., Huy, D.Q. and Huong, T.V. (2009). Chemical composition of essential oil of Machilus japonica Siebold & Zucc. (Lauraceae). VNU J. Sci. Technol. 25: 81-83.
  • Ho, C.L. and Su, Y.C. (2012). Composition and antimicrobial activity of the leaf essential oils of Machilus japonica from Taiwan. Nat. Prod. Commun. 7: 1090112.
  • Nii, H., Furakawa, K. and Iwakiri, M. (1981). Constituents of essential oil from Machilus thunbergii Sieb. et Zucc. fruit Part III. Nippon Nogiekagaku Kaishi. 55: 1179-1186. doi: 10.1271/nogeikagaku1924.55.1179
  • Ho, C.L., Hsu, K.P., Wang, E.I.C., Lin, C.Y. and Su, Y.C. (2010a). Composition and anti-wood-decay fungal activities of the leaf essential oil of Machilus philippinensis from Taiwan. Nat. Prod. Commun. 5: 337-340.
  • Ho, C.L., Wang, E.I.C., Hsu, Y.W and Su, Y.C. (2009). Composition and antimicrobial activity of the leaf essential oil of Machilus obovatifolia from Taiwan. J. Essent. Oil Res. 21: 87-91.
  • Komae, H. and Hayashi, P. (1971). Terpenic constituents from Machillus japonica. Phytochem. 10: 607-610. doi: 10.1016/S0031-9422(00)94705-8
  • Ho, C.L., Liao, P.C., Hsu, K.P., Wang, E.I.C., Dong, W.C. and Su, Y.C. (2010b). Composition, antimicrobial and anti-wood-decay fungal activities of the leaf essential oils of Machilus pseudolongifolia from Taiwan. Nat. Prod. Commun. 5: 1143-1146.
  • Ho, C.L., Hsu, K.P., Tseng, Y.H., Wang, E.I.C., Liao, P.C., Chou, J.C., Lin, C.N. and Su, Y.C. (2011). Composition and antimicrobial activity of the leaf essential oils of Machilus kusanoi from Taiwan. Nat. Prod. Commun. 6: 267-270.
  • Ho, C.L. and Su, Y.C. (2013). Composition, in-vitro anticancer, and antimicrobial activities of the leaf essential oils of Machilus mushaensis from Taiwan. Nat. Prod. Commun. 8: 273-275.
  • Ho, C.L., Liao, P.C. and Su, Y.C. (2012b). Composition and antimicrobial activities of the leaf essential oils of Machilus zuihoensis from Taiwan. Braz. J. Pharmacog. 22: 277-283. doi: 10.1590/S0102-695X2011005000213
  • de Sousa, E.S.O., Cortez, A.C.A., de Souza, C.M.M., Frickmann, H. and de Souza, J.V.B. (2020). Factors influencing susceptibility testing of antifungal drugs: a critical review of document M27-A4 from the Clinical and Laboratory Standards Institute (CLSI). Braz. J. Microbiol. 51: 1791-1800. doi: 10.1007/s42770-020-00354-6
  • Smith, K.P. and Kirby, J.E. (2018). The inoculum effect in the era of multidrug resistance: minor differences in inoculum have dramatic effect on MIC determination. Antimicrob. Agents Chemother. 62: e00433-18.
  • An, N.T.G., Huong, L.T., Prabodh, S., Thieu, A.T., Dai, D.N., Hung, N.H., Ngoc, N.T.B. and Setzer, W.N. (2020). Mosquito larvicidal activity, antimicrobial activity and chemical compositions of essential oils from four species of Myrtaceae from Central Vietnam. Plants. 9: 544-562. doi: 10.3390/plants9040544
  • Asakawa, Y. (2021). Dietary Mono-terpenoids. In. Handbook of Dietray Phytochemicals. (Xiao, J., Sarker, S. D. and Asakawa, Y. eds.), Springer, Singapore, vol. 2, 607-639. doi: 10.1007/978-981-15-4148-3_17
  • Krist, S., Banovac, D., Tabanca, N., Wedge, D.E., Gochev, V.K., Wanner, J., Schmidt, E. and Jirovetz, L. (2015). Antimicrobial activity of nerolidol and its derivatives against airborne microbes and further biological activities. Nat. Prod. Commun. 10:143-148.
  • Chen, Y.Y., Liu, L., Wang, H., Ma, J.H., Peng, W.X., Li, X.M., Lai, Y., Zhang, B. and Zhangad, D. (2021). Environmentally friendly plant essential oil: Liquid gold for human health. Adv. Agron. 170: 289-337. doi: 10.1016/bs.agron.2021.06.005
  • Radaelli, R., da Silva, B.P., Weidlich, L., Hoehne, L., Flach, A., Alves da Costa, L.A.M. and Ethur, E.M. (2016). Antimicrobial activities of six essential oils commonly used as condiments in Brazil against Clostridium perfringens. Food Microbiol. 47: 424-430.
  • Leite, A.M., Lima, E.O., Souza, E.L., Diniz, M., Trajano, V.N. and Medeiros, I.A. (2007). Inhibitory effect of β-pinene, α-pinene and eugenol on the growth of potential infectious endocarditis causing gram-positivebacteria. Braz. J. Pharm. Sci. 43: 121-126.
  • Miladinović, D.L., Ilić, B.S. and Kocić, B. D. (2015). Chemoinformatics approach to antibacterial studies of essential oils. Nat. Prod. Commun. 10: 1063-1066.
  • Langeveld, W.T., Veldhuizen, E.J. and Burt, S.A. (2014). Synergy between essential oil components and antibiotics: a review. Crit. Rev. Microbiol. 40: 76-94. doi: 10.3109/1040841X.2013.763219
  • de Barros, D.B., de Oliveira e Lima, L., Silva, A.L., Fonseca, M.C., Diniz-Beto, H., da Silva, R.W.P, de Meteiros, B.G. V., Castellano, L.R.C., Guerra, F.Q.S. and da Silva, M.V. (2022). Antifungal effect of α-pinene alone and in association with antifungals against Candida albicans strains. Res. Soc. Develop. 11: 23-35.
  • Leite-Sampaio, N.F., Gondim, C.N.F. L., Martins, R.A.A., Siyadatpanah, A., Norouzi, R., Kim, B. Sobral-Souza, C.E., Gondim, G.E.C., Ribeiro-Filho, J. and Coutinho, H.D.M. (2022). Antibiotic resistance in multi-drug resistant pathogens. BioMed. Res. Int. 2022: 1-22. doi: 10.1155/2022/8217380

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