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Research Article

Antimicrobial activity of essential oils from Lippia sidoides, Ocimum gratissimum and Zingiber officinale against Aeromonas spp.

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Pages 152-161 | Received 08 May 2020, Accepted 06 Nov 2020, Published online: 23 Nov 2020

References

  • B. Austin and D.A. Austin, Bacterial Fish Pathogens, 4th edn. Springer-Science, Chichester (2007).
  • F.A. Sebastião, E.G. Macedo Lemos and F. Pilarski, Development of an absolute quantitative Real-Time PCR (qPCR) for the diagnosis of Aeromonas hydrophila infections in fish. Acta Scientific Microbiology, 1, 23–29 (2018). doi:10.31080/ASMI.2018.01.0034
  • F.A. Sebastião, L.R. Furlan, D.T. Hashimoto and F. Pilarski, Identification of bacterial fish pathogens in Brazil by direct colony PCR and 16S rRNA gene sequencing. Advances in Microbiology, 5, 409–424 (2015).
  • R.B. Ariede, M.V. Freitas, M.E. Hata, V.A. Mastrochirico-Filho, F.A. Pilarski, S.R. Batlouni, F. Porto-Foresti and D.T. Hashimoto, Microsatellites associated with growth performance and analysis of resistance to Aeromonas hydrophila in tambaqui Colossoma macropomum. Frontiers in Genetics, 9, 1–8 (2018). doi:10.3389/fgene.2018.00003
  • M. Tavares-Dias and M.L. Martins, An overall estimation of losses caused by diseases in the Brazilian fish farms. Journal of Parasitic Diseases, 41, 913–918 (2017). doi:10.1007/s12639-017-0938-y
  • L.J.S. Peixoto, M.C.A. Sá, L.A. Gordiano and M.M. Costa, Aeromonas spp.: fatores de virulência e perfis de resistência a antimicrobianos e metais pesados. Arquivo Do Instituto Biológico, 79, 453–461 (2012). doi:10.1590/S1808-16572012000300020
  • J.S. Swathy, P. Mishra, J. Thomas, A. Mukherjee and N. Chandrasekaran, Antimicrobial potency of high-energy emulsified black pepper oil nanoemulsion against aquaculture pathogen. Aquaculture, 491, 210–220 (2018). doi:10.1016/j.aquaculture.2018.03.045
  • F.C. Cabello, Heavy use of prophylactic antibiotics in aquaculture: a growing problem for human and animal health and for the environment. Environmental Microbiology, 8, 1137–1144 (2006). doi:10.1111/j.1462-2920.2006.01054.x
  • M.I. Suhet, R.P. Chocken-Iturrino and L.A. Amaral, Atividade hemolítica e resistência a antimicrobianos por espécies de Aeromonas isoladas de criação intensiva de tilápias do Nilo (Oreochromisniloticus). Ars Veterinaria, 27, 36–44 (2011).
  • P. Grenni, V. Ancona and A.B. Caracciolo, Ecological effects of antibiotics on natural ecosystems: A review. Microchemical Journal, 136, 25–39 (2018). doi:10.1016/j.microc.2017.02.006
  • M. Reverter, N. Bontemps, D. Lecchini, B. Banaigs and P. Sasal, Use of plant extracts in fish aquaculture as an alternative to chemotherapy: current status and future perspectives. Aquaculture, 433, 50–61 (2014).
  • J.A. Cunha, B.M. Heinzmann and B. Baldisserotto, The effects of essential oils and their major compounds on fish bacterial pathogens – a review. Journal of Applied Microbiology, 125, 328–344 (2018). doi:10.1111/jam.13911
  • R.C. Souza, M.M. Costa, B. Baldisserotto, B.M. Heinzmann, D. Schmidt, B.O. Caron and C.E. Copatti, Antimicrobial and synergistic activity of essential oils of Aloysia triphylla and Lippia alba against Aeromonas spp. Microbial Pathogenesis, 113, 29–33 (2017). doi:10.1016/j.micpath.2017.10.013
  • C. Majolo, S.I.B. Rocha, E.C. Chagas, F.C.M. Chaves and H.R. Bizzo, Chemical composition of Lippia spp. essential oil and antimicrobial activity against Aeromonas hydrophila. Aquaculture Research, 48, 2380–2387 (2017). doi:10.1111/are.13073
  • C. Majolo, F. Pilarski, F.C.M. Chaves, H.B. Bizzo and E.C. Chagas, Antimicrobial activity of some essential oils against Streptococcus agalactiae, an important pathogen for fish farming in Brazil. Journal of Essential Oil Research, 1, 1–10 (2018).
  • J.J.S. Aguiar, C.P.B. Sousa, M.K.A. Araruna, M.K.N. Silva, A.C. Portelo, J.C. Lopes, V.R.A. Carvalho, F.G. Figueredo, V.C.N. Bitu, H.D.M. Coutinho, T.A.S. Miranda and E.F.F. Matias, Antibacterial and modifying-antibiotic activities of the essential oils of Ocimum gratissimum L. and Plectranthus amboinicus L. European Journal of Integrative Medicine, 7, 151–156 (2015). doi:10.1016/j.eujim.2014.10.005
  • C.L. Boijink, C.A. Queiroz, E.C. Chagas, F.C.M. Chaves and L.A.K.A. Inoue, Anesthetic and anthelminthic effects of clove basil (Ocimum gratissimum) essential oil for tambaqui (Colossoma macropomum). Aquaculture, 457, 24–28 (2016). doi:10.1016/j.aquaculture.2016.02.010
  • G.M. El-Sherbiny, Antimicrobial susceptibility of bacteria detected from the root canal infection (before and after) root-filled teeth: an in vitro study. International Journal of Dental Science and Research, 3, 4–9 (2015). doi:10.12691/ijdsr-3-1-2
  • C. Majolo, V.P. Nascimento, E.C. Chagas and F.C.M. Chaves, Atividade antimicrobiana do óleo essencial de rizomas de açafrão (Curcuma longa L.) e gengibre (Zingiber officinale Roscoe) frente a salmonelas entéricas isoladas de frango resfriado. Revista Brasileira De Plantas Medicinais, 16, 505–512 (2014). doi:10.1590/1983-084X/13_109
  • M. Golebiowski, B. Ostrowski, M. Paszkiewicz, M. Czerwicka, J. Kumirska, L. Halinki, E. Malinski and P. Stepnowski, Chemical composition of commercially available essential oils from blackcurrant, ginger and peppermint. Chemistry of Natural Compounds, 44, 794–796 (2008). doi:10.1007/s10600-009-9171-y
  • C.R. Kiran, A.K. Chakka, K.P. Padmakumari Amma, A. Nirmala Menon, M.M. Sree Kumar and V.V. Venugopalan, Essential oil composition of fresh ginger cultivars from North-East India. Journal of Essential Oil Research, 25, 380–387 (2013). doi:10.1080/10412905.2013.796496
  • R.P. Adams, Identification of Essential Oils Components by Gas Chromatography/mass Spectrometry, 4th edn. Allured Publishing Corp, Carol Stream, Illinois (2007).
  • H. Van den Dool and P.D.J.A. Kratz, A generalization of the retention index system including linear temperature programmed gas—liquid partition chromatography. Journal of Chromatography, 11, 463–471 (1963). doi:10.1016/S0021-9673(01)80947-X
  • National Committee for Clinical Laboratory Standards, Methods for dilution antimicrobial susceptibility tests for bacteria that grow aerobically. Approved standard M7-A6. Wayne, PA (2003).
  • R.W. Bussmann, G. Malca-García, A. Glenn, D. Sharon, G. Chait, D. Díaz, K. Pourmand, B. Jonat, S. Somogy, G. Guardado, C. Aguirre, R. Chan, K. Meyer, A. Kuhlman, A. Townesmith, J. Effio-Carbajal, F. Frías-Fernandez and M. Benito, Minimum inhibitory concentrations of medicinal plants used in Northern Peru as antibacterial remedies. Journal of Ethnopharmacology, 132, 101–108 (2010). doi:10.1016/j.jep.2010.07.048
  • A.A. Santos, B.M.S. Oliveira, C.R. Melo, A.P.S. Lima, E.D.R. Santana, A.F. Blank, M.C. Picanço, A.P.A. Araújo, P.F. Cristaldo and L. Bacci, Sub-lethal effects of essential oil of Lippia sidoides on drywood termite Cryptotermes brevis (Blattodea: termitoidea). Ecotoxicology and Environmental Safety, 145, 436–441 (2017). doi:10.1016/j.ecoenv.2017.07.057
  • R.O.S. Fontenelle, S.M. Morais, E.H.S. Brito, M.R. Kerntopf, R.S.N. Brilhante, R.A. Cordeiro, A.R. Tomé, M.G.R. Queiroz, N.R.F. Nascimento, J.J.C. Sidrim and M.F.G. Rocha, Chemical composition, toxicological aspects and antifungal activity of essential oil from Lippia sidoides Cham. Journal of Antimicrobial Chemotherapy, 59, 934–940 (2007). doi:10.1093/jac/dkm066
  • A.P. Oliveira, A.S. Santana, E.D.R. Santana, A.P.S. Lima, R.R.N. Faro, R.S. Nunes, A.D. Lima, A.F. Blank, A.P.A. Araújo, P.F. Cristaldo and L. Bacci, Nanoformulation prototype of the essential oil of Lippia sidoides and thymol to population management of Sitophilus zeamais (Coleoptera: curculionidae). Industrial Crops and Products, 107, 198–205 (2017). doi:10.1016/j.indcrop.2017.05.046
  • H.N.H. Veras, F.F.G. Rodrigues, M.A. Botelho, I.R.A. Menezes, H.D.M. Coutinho and J.G.M. Costa, Enhancement of aminoglycosides and β–lactams antibiotic activity by essential oil of Lippia sidoides Cham. and the thymol. Arabian Journal of Chemistry, 10, 2790–2795 (2017). doi:10.1016/j.arabjc.2013.10.030
  • L.L. Silva, T.V. Parodi, P. Reckziegel, V.O. Garcia, M.E. Burger, B. Baldisserotto, C.A. Malmann, A.M.S. Pereira and B.M. Heinzmann, Essential oil of Ocimum gratissimum L.: anesthetic effects, mechanism of action and tolerance in silver catfish, Rhamdia quelen. Aquaculture, 350-353, 91–97 (2012). doi:10.1016/j.aquaculture.2012.04.012
  • G. Bandeira Jr, T.S. Pês, E.M.H. Saccol, F.J. Sutili, W. Rossi Jr, A.L. Murari, B.M. Heinzmann, M.A. Pavanato, A.C. Vargas, L.L. Silva and B. Baldisserotto, Potential uses of Ocimum gratissimum and Hesperozygis ringens essential oils in aquaculture. Industrial Crops and Products, 97, 484–491 (2017). doi:10.1016/j.indcrop.2016.12.040
  • M.A. Andrade, M.G. Cardoso, L.R. Batista, A.C.T. Mallet and S.M.F. Machado, Essential oils of Cinnamomum zeylanicum, Cymbopogon nardus and Zingiber officinale: composition, antioxidant and antibacterial activities. Revista Ciência Agronômica, 43, 399–408 (2012). doi:10.1590/S1806-66902012000200025
  • S. Noori, F. Zeynali and H. Almasi, Antimicrobial and antioxidant efficiency of nanoemulsion-based edible coating containing ginger (Zingiber officinale) essential oil and its effect on safety and quality attributes of chicken breast fillets. Food Control, 84, 312–320 (2018). doi:10.1016/j.foodcont.2017.08.015
  • G. Marcial, M.P. Lampasona, M.I. Veja, E. Lizarraga, C.I. Viturro, A. Slanis, M.A. Juarez, M.A. Elechosa and C.A.N. Catalan, Intraspecific variation in essential oil composition of the medicinal plant Lippia integrifolia (verbenaceae) evidence for five chemotypes. Phytochemistry, 122, 203–212 (2016). doi:10.1016/j.phytochem.2015.11.004
  • A.C. Figueiredo, J.G. Barroso, L.G. Pedro and J.J.C. Scheffer, Factors affecting secondary metabolite production inplants: volatile components and essential oils. Flavour and Fragrance Journal, 23, 213–226 (2008). doi:10.1002/ffj.1875
  • R.R. Silva, C.A.G. Camara, A.V. Almeida and C.S. Ramos, Biotic and abiotic stress-induced phenylpropanoids in leaves of the Mango (Mangifera indica L., Anacardiaceae). Journal of the Brazilian Chemical Society, 23, 206–211 (2012).
  • H. Behn, A. Albert, F. Marx, G. Noga and A. Ulbrich, Ultraviolet-B and photosynthetically active radiation interactively affect yield and pattern of monoterpenes in leaves of Peppermint (Mentha x piperita L.). Journal of Agricultural and Food Chemistry, 58, 7361–7367 (2010). doi:10.1021/jf9046072
  • J. Wei, L. Wang, J. Zhu, S. Zhang, O.I. Nandi and L. Kang, Plants attract parasitic wasps to defend themselves against insect pests by releasing hexenol. PLoS One, 2, e852 (2007). doi:10.1371/journal.pone.0000852
  • R.F. Silva, N.A.B. Tinoco, A. Tsukui, C. Koschnitzke, I.C. Silva-Batista, C.M. Rezende and H.R. Bizzo, Floral scent and nectar sugar composition of Temnadenia odorifera (Apocynoideae, Apocynaceae). Journal of the Brazilian Chemical Society, 30, 388–397 (2019).
  • F. Bakkali, S. Averbeck, D. Averbeck and M. Idaomar, Biological effects of essential oils - a review. Food Chemistry Toxicology, 46, 446–475 (2008). doi:10.1016/j.fct.2007.09.106
  • A. Sartoratto, A.L.M. Machado, C. Delarmelina, G.M. Figueira, M.C.T. Duarte and V.L.G. Rehder, Composition and antimicrobial activity of essential oils from aromatic plants used in Brazil. Brazilian Journal of Microbiology, 35, 275–280 (2004). doi:10.1590/S1517-83822004000300001
  • F. Nazzaro, F. Fratianni, L. Martino, R. Coppola and V. Feo, Effect of essential oils on pathogenic bacteria. Pharmaceuticals, 6, 1451–1474 (2013). doi:10.3390/ph6121451
  • F. Sharififar, M.H. Moshafi, S.H. Mansouri, M. Khodashenas and M. Khoshnoodi, In vitro evaluation of antibacterial and antioxidant activities of the essential oil and methanol extract of endemic Zataria multiflora Boiss. Food Control, 18, 800–805 (2007). doi:10.1016/j.foodcont.2006.04.002
  • F.J. Sutili, L.C. Kreutz, M. Noro, L.T. Gressler, B.M. Heinzmann, A.C. Vargas and B. Baldisserotto, The use of eugenol against Aeromonas hydrophila and its effect on hematological and immunological parameters in silver catfish (Rhamdia quelen). Veterinary Immunology and Immunopathology, 157, 142–148 (2014). doi:10.1016/j.vetimm.2013.11.009
  • A.O. Gill and R.A. Holley, Mechanisms of bactericidal action of cinnamaldehyde against listeria monocytogenes and of eugenol against l. monocytogenes and Lactobacillus sakei. Applied Environmental Microbiology, 70, 5750–5755 (2004). doi:10.1128/AEM.70.10.5750-5755.2004
  • R. Scherer, R. Wagner, M.C.T. Duarte and H.T. Godoy, Composição e atividades antioxidante e antimicrobiana dos óleos essenciais de cravo-da-índia, citronela e palmarosa. Revista Brasileira De Plantas Medicinais, 11, 442–449 (2009). doi:10.1590/S1516-05722009000400013
  • S. Siddique, Z. Parveen, F. Bareen, M.N. Chaudhary, S. Mazhar and S. Nawaz, The essential oil of Melaleuca armillaris (Sol. ex Gaertn.) Sm. leaves from Pakistan: A potential source of eugenol methyl ether. Industrial Crops and Products, 109, 912–917 (2017). doi:10.1016/j.indcrop.2017.09.048
  • H.V. Nguyen, J.C. Meile, M. Lebrun, D. Caruso, S. Chu-Ky and S. Sarter, Litsea cubeba leaf essential oil from Vietnam: chemical diversity and its impacts on antibacterial activity. Journal of Applied Microbiology, 66, 207–214 (2018). doi:10.1111/lam.12837
  • Y. Sivasothy, W.K. Chong, A. Hamid, I.M. Eldeen, S.F. Sulaiman and K. Awang, Essential oils of Zingiber officinale var. rubrum Theilade and their antibacterial activities. Food Chemistry, 124, 514–517 (2011). doi:10.1016/j.foodchem.2010.06.062
  • J. Debbarma, P. Kishore, B.B. Nayak, N. Kannuchamy and V. Gudipati, Antibacterial activity of ginger, eucalyptus and sweet orange peel essential oil on fish-borne bacteria. Journal of Food Processing and Preservation, 37, 1022–1030 (2013). doi:10.1111/j.1745-4549.2012.00753.x
  • H.J.D. Dorman and S.D. Deans, Antimicrobial agents from plants: antibacterial activity of plant volatile oils. Journal of Applied Microbiology, 88, 308–316 (2000). doi:10.1046/j.1365-2672.2000.00969.x
  • R.K. Lima, M.G. Cardoso, M.A. Andrade, P.L. Guimarães, L.R. Batista and D.L. Nelson, Bactericidal and antioxidant activity of essential oils from Myristica fragrans Houtt and Salvia microphylla H.B.K. Journal of the American Oil Chemists Society, 89, 523–528 (2012). doi:10.1007/s11746-011-1938-1
  • J.A. Cunha, G. Bandeira-Júnior, E.G. Silva, C.A. Scheeren, V.P. Fausto, J. Salbego, R.A. Vaucher, A.C. Vargas and B. Baldisserotto, The survival and hepatic and muscle glucose and lactate levels of Rhamdia quelen inoculated with Aeromnas hydrophila and treated with terpinen-4-ol, carvacrol or thymol. Microbial Pathogenesis, 127, 220–224 (2019). doi:10.1016/j.micpath.2018.12.005
  • L. Salvagno, S. Sblano, G. Fracchiolla, F. Corbo, M.L. Clodoveo and A. Rosato, Antibiotics – mentha piperita essential oil synergism inhibits mature bacterial biofilm. Chimica Oggi – Chemistry Today, 38, 49–52 (2020).

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