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Research Article

Chemical composition, phytotoxic and antibiofilm activity of Pinus canariensis, P. jeffreyi and P. taeda essential oils

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Pages 482-497 | Received 12 Dec 2023, Accepted 02 Feb 2024, Published online: 10 Mar 2024

References

  • Falleh, H., Ben Jemaa, M., Saada, M. and Ksouri, R. (2020). Essential oils: A promising eco-friendly food preservative. Food Chem. 330: 127268. doi: 10.1016/j.foodchem.2020.127268
  • Gonzalez Ronquillo, M. and Angeles Hernandez, J.C. (2017). Antibiotic and synthetic growth promoters in animal diets: Review of impact and analytical methods. Food Control 72: 255-267. doi: 10.1016/j.foodcont.2016.03.001
  • Chaudhari, A.K., Singh, V.K., Kedia, A., Das, S. and Dubey, N.K. (2021). Essential oils and their bioactive compounds as eco-friendly novel green pesticides for management of storage insect pests: prospects and retrospects. Environ. Sci. Pollut. Res. 28: 18918-18940. doi: 10.1007/s11356-021-12841-w
  • Chiocchio, I., Mandrone, M., Tomasi, P., Marincich, L. and Poli, F. (2021). Plant secondary metabolites: an opportunity for circular economy. Molecules. 26: 495. doi: 10.3390/molecules26020495
  • Falcon Lang, H., Mages V. and Collinson, M. (2016). The oldest Pinus and its preservation by fire. Geology. 44: G37526.1. doi: 10.1130/G37526.1
  • Aloui, F., Baraket, M., Jedidi, S., Hmaidi, B., Ben Salem, E., Jdaidi, N., Taghoudi, I., Nasr, Z. and Abbes, C. (2022). Assessment of biological activities of resin extracted from Tunisian pine forests. Pak. J. Bot. 54: 695-700. doi: 10.30848/PJB2022-2(45)
  • Kadri, N., Khettal, B., Aid, Y., Kherfellah, S., Sobhi, W. and Barragan-Montero, V. (2015). Some physicochemical characteristics of pinus (Pinus halepensis Mill., Pinus pinea L., Pinus pinaster and Pinus canariensis) seeds from North Algeria, their lipid profiles and volatile contents. Food Chem. 188: 184-192. doi: 10.1016/j.foodchem.2015.04.138
  • Ioannou, E., Koutsaviti, A., Tzakou, O. and Roussis, V. (2014). The genus Pinus: a comparative study on the needle essential oil composition of 46 pine species. Phytochem. Rev. 13: 741-768. doi: 10.1007/s11101-014-9338-4
  • Horváth, G. and Ács, K. (2015). Essential oils in the treatment of respiratory tract diseases highlighting their role in bacterial infections and their anti-inflammatory action: a review. Flav. Frag. J. 30: 331-341. doi: 10.1002/ffj.3252
  • Hickman, C. (2022). Pine fresh: the cultural and medical context of pine scent in relation to health - from the forest to the home. Med. Humanit. 48: 104-113. doi: 10.1136/medhum-2020-012126
  • Hmamouchi, M., Hamamouchi, J., Zouhdi, M. and Bessiere, J. M. (2001). Chemical and Antimicrobial Properties of Essential Oils of Five Moroccan Pinaceae. J. Essent. Oil Res. 13: 298-302. doi: 10.1080/10412905.2001.9699699
  • Moreira, M., Ponce, A., Del Valle, C., and Roura, S. (2005). Inhibitory parameters of essential oils to reduce a foodborne pathogen. LWT-Food Science and Technology. 38: 565-570. doi: 10.1016/j.lwt.2004.07.012
  • Liu, J., Yang, Z., Wu, F., Wang, L. and Ni, H. (2013). Antimicrobial effects of essential oil from Pinus koraiensis Sieb. et Zucc. needles in the biofilms. Afric. J. Microbiol. Res. 7: 3078-3084. doi: 10.5897/AJMR12.1582
  • Amri, I., Khammassi, M., Gargouri, S., Hanana, M., Iamoussi, B., Hamrouni, L., and Mabrouk, Y. (2013). Tunisian pine essential oils: chemical composition, herbicidal and antifungal properties. J. Essent. Oil Bear. Pl. 25: 430-443. doi: 10.1080/0972060X.2022.2084347
  • Ulukanli, Z., Karabörklü, S., Bozok, F., Burhan, A.T.E.S., Erdogan, S., Cenet, M. and Karaaslan, M.G. (2014). Chemical composition, antimicrobial, insecticidal, phytotoxic and antioxidant activities of Mediterranean Pinus brutia and Pinus pinea resin essential oils. Chinese Journal of Natural Medicines. 12: 901-910. doi: 10.1016/S1875-5364(14)60133-3
  • Khedhri, S., Khammassi, M., Amri, I., Mabrouk, Y., Fergeni, D., Gargouri, S., Hanana, M., Jamoussi, B. and Hamrouni, L. (2022). Phytochemical studies on essential oils of Pinus pinaster Aiton and evaluation of their biological activities. Arab. J. Med. Aromat. Plants 8:75-98.
  • Council of Europe. (2004). European Pharmacopoeia, (5th ed.). Council of Europe, Strasbourg Cedex, France.
  • Goodner, K.L. (2008). Practical retention index models of OV-101, DB-1, DB-5, and DB-Wax for flavor and fragrance compounds. LWT-Food Science and Technology, 41: 951-958. doi: 10.1016/j.lwt.2007.07.007
  • Jennings, W. and Shibamoto, T. (1980). Qualitative analysis of flavor and fragrance volatiles by glass capillary gas chromatography, Academic Press, New York, NY, USA.
  • Sarker, S. and Nahar, D.L. (2007). Microtitre plate-based antibacterial assay incorporating resazurin as an indicator of cell growth, and its application in the in vitro antibacterial screening of phytochemicals. Methods. 42: 321-324. doi: 10.1016/j.ymeth.2007.01.006
  • Fratianni, F., d’Acierno, A., Ombra, M.N., Amato, G., De Feo, V., Ayala-Zavala, J.F., Coppola, R. and Nazzaro, F. (2021). Fatty acid composition, antioxidant, and in vitro anti-inflammatory activity of five cold-pressed Prunus seed oils, and their anti-biofilm effect against pathogenic bacteria. Front. Nutr. 8: 775751. doi: 10.3389/fnut.2021.775751
  • Khedhri, S., Polito, F., Caputo, L., De Feo, V., Khamassi, M., Kochti, O., Hamrouni, L., Mabrouk, Y., Nazzaro, F., Fratianni, F. and Amri, I. (2023). Chemical composition, antibacterial properties, and anti-enzymatic effects of eucalyptus essential oils sourced from tunisia. Molecules. 28(20): 7211. doi: 10.3390/molecules28207211
  • Dob, T., Berramdane, T., Dahmane, D. and Chelghoum, C. (2005). Chemical composition of the needles oil of Pinus canariensis from Algeria. Chem. Nat. Compd. 41: 165-167. doi: 10.1007/s10600-005-0103-1
  • Ghazghazi, H., Essghaier, B., Charfi, I., Elaloui, M., Oueslati, M.A., Ben Salem, R., Rigane, G. and Rzigui, T. (2021). Screening for biological activities if essential oils profiles (GC-FIS) and ethanolic extracts from Pinus brutia (Ten.) and Pinus canariensis (C. Smith). Academia Romana. 66: 557-565.
  • Pagula, F.P. and Baeckström, P. (2006). Studies on essential oil-bearing plants from Mozambique: Part II. volatile leaf oil of needles of Pinus elliottii Engelm. and Pinus taeda L. J. Essent. Oil Res. 18: 32-34. doi: 10.1080/10412905.2006.9699378
  • Pfeifhofer, H. (2000). Composition of the essential oil of Pinus canariensis Sweet ex Sprengel. Flavour Fragr. J. 15: 266-270. doi: 10.1002/1099-1026(200007/08)15:4<266::AID-FFJ908>3.0.CO;2-E
  • Adams, R.P. and Wright, J.W. (2012). Alkanes and terpenes in wood and leaves of Pinus jeffreyi and P. sabiniana. J. Essent. Oil Res. 24: 435-440. doi: 10.1080/10412905.2012.703512
  • Sharma, S., Adams, J.P., Sakul, R., Martin, E.M., Ricke, S.C., Gibson, K.E. and Carrier, D.J. (2016). Loblolly pine (Pinus taeda L.) essential oil yields affected by environmental and physiological changes. J. Sustain. For. 35: 417-430. doi: 10.1080/10549811.2016.1192046
  • De Feo, V., De Simone, F. and Senatore, F. (2002). Potential allelochemicals from the essential oil of Ruta graveolens. Phytochem. 61: 573-578. doi: 10.1016/S0031-9422(02)00284-4
  • Rolim De Almeida, L.F., Frei, F., Mancini, E., De Martino, L. and De Feo, V. (2010). Phytotoxic activities of mediterranean essential oils. Molecules. 15: 4309-4323. doi: 10.3390/molecules15064309
  • Ibáñez, M.D. and Blázquez, M.A. (2019). Phytotoxic effects of commercial Eucalyptus citriodora, Lavandula angustifolia, and Pinus sylvestris essential oils on weeds, crops, and invasive species. Molecules. 24: 2847. doi: 10.3390/molecules24152847
  • Ishii-Iwamoto, E.L., Pergo Coelho, E.M., Reis, B., Moscheta, I.S. and Bonato, C.M. (2012). Effects of monoterpenes on physiological processes during seed germination and seedling growth. Curr. Bioact. Compd. 8: 50-64. doi: 10.2174/157340712799828223
  • Meullemiestre, A., Kamal, I., Maache-Rezzoug, Z., Chemat, F., and Rezzoug, S.A. (2014). Antioxidant activity and total phenolic content of oils extracted from Pinus pinaster sawdust waste. screening of different innovative isolation techniques. Waste Biomass Valori. 5: 283-292. doi: 10.1007/s12649-013-9237-8
  • Singh, H.P., Batish, D.R., Kaur, S., Arora, K. and Kohli, R.K. (2006). Pinene inhibits growth and induces oxidative stress in roots. Ann. Bot. 98: 1261-1269. doi: 10.1093/aob/mcl213
  • Chowhan, N., Singh, H.P., Batish, D.R. and Kohli, R.K. (2011). Phytotoxic effects of β-pinene on early growth and associated biochemical changes in rice. Acta Physiol. Plant. 33: 2369-2376. doi: 10.1007/s11738-011-0777-x
  • Kim, K.-H., Kabir, E. and Jahan, S.A. (2017). Exposure to pesticides and the associated human health effects. Sci. Total Environ. 575: 525-535. doi: 10.1016/j.scitotenv.2016.09.009
  • Ben Kaab, S., Rebey, I.B., Hanafi, M., Berhal, C., Fauconnier, M.L., De Clerck, C., Ksouri, R. and Jijakli, H. (2019). Rosmarinus officinalis essential oil as an effective antifungal and herbicidal agent. Spanish Journal Agricultural Research. 17: e1006. doi: 10.5424/sjar/2019172-14043
  • Scavo, A. and Mauromicale, G. (2020). Integrated weed management in herbaceous field crops. Agronomy. 10: 466. doi: 10.3390/agronomy10040466
  • Maes, C., Meersmans, J., Lins, L., Bouquillon, S. and Fauconnier, M. (2021). Essential oil-based bioherbicides: human health risks analysis. Int. J. Mol. Sci. 22: 9396. doi: 10.3390/ijms22179396
  • Werrie, P.Y., Durenne, B., Delaplace, P. and Fauconnier, M.L. (2020). Phytotoxicity of essential oils: Opportunities and constraints for the development of biopesticides. A review. Foods 9: 1291. doi: 10.3390/foods9091291
  • Nazzaro, F., Fratianni, F., De Martino, L., Coppola, R. and De Feo, V. (2013). Effect of essential oils on pathogenic bacteria. Pharmaceuticals. 6: 1451-1474. doi: 10.3390/ph6121451
  • Chohuan, S., Sharma, K. and Guleria, S. (2017). Antimicrobial properties of some essential oils - Present status and future perspectives. Medicines. 4: Article 58.
  • Werrie, P.Y., Durenne, B., Delaplace, P. and Fauconnier, M.L. (2020). Phytotoxicity of essential oils: Opportunities and constraints for the development of biopesticides. A review. Foods 9: 1291. doi: 10.3390/foods9091291
  • Adams, J., Gibson, K.E., Martin, E.M., Almeida, G., Ricke, S.G., Frederick, N. and Carrier, D.J. (2014). Characterization and variation of essential oil from Pinus taeda and antimicrobial effects against antibiotic-resistant and -susceptible Staphylococcus aureus. For. Prod. J. 64: 161-165.
  • Mohammadi, M., Masoumipour, F., Hassanshahian, M. and Jafarinasab, T. (2019). Study the antibacterial and antibiofilm activity of Carum copticum against antibiotic-resistant bacteria in planktonic and biofilm forms. Microb. Pathog 129: 99-105. doi: 10.1016/j.micpath.2019.02.002
  • Pejčić, M., Stojanović-Radić, Z., Genčić, M., Dimitrijević, M. and Radulović, N. (2020). Anti-virulence potential of basil and sage essential oils: Inhibition of biofilm formation, motility and pyocyanin production of Pseudomonas aeruginosa isolates. Food Chemical Toxicol. 141: 111431. doi: 10.1016/j.fct.2020.111431
  • Asbahani, A.E., Miladi, K., Badri, W., Hall, M., Addi, E.H.A., Casabianca, H., Mousadik, A.E., Hartmann, D., Jilale, A., Renaud, F.N.R. and Elaissari, A. (2015). Essential oils: From extraction to encapsulation. Int. J. Pharm. 483: 220-243. doi: 10.1016/j.ijpharm.2014.12.069
  • Gómez-Estaca, J., López de Lacey, A., López-Caballero, M., Gómez-Guillén, M. and Montero, P. (2010). Biodegradable gelatin-chitosan films incorporated with essential oils as antimicrobial agents for fish preservation. Food Microbio. 27: 889-896. doi: 10.1016/j.fm.2010.05.012

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