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Articles

Chemical analysis, antifungal and antimycotoxigenic activity of tetradenia riparia essential oil and crude extract

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Pages 1296-1310 | Received 07 Feb 2022, Accepted 15 May 2022, Published online: 02 Jun 2022

References

  • Abrunhosa L, Serra R, Venâncio A. 2002. Biodegradation of ochratoxin A by fungi isolated from grapes. J Agric Food Chem. 50(25):7493–7496. doi:https://doi.org/10.1021/jf025747i
  • Adams RP. 2017. Identification of essential oil components by gas chromatography/mass spectrometry. New York: Allured Publishing Corporation.
  • Atumo S. 2020. A review of ochratoxin a occurrence, condition for the formation and analytical methods. Int J Agric Sci Food Technol. 6(2):180–185.
  • Bauer JI, Gross M, Gottschalk C, Usleber E. 2016. Investigations on the occurrence of mycotoxins in beer. Food Control. 63(1):135–139. doi:https://doi.org/10.1016/j.foodcont.2015.11.040
  • Bennet JW, Klich M. 2003. Mycotoxins. Clin Microbiol Rev. 16(3):497–516. doi:https://doi.org/10.1128/CMR.16.3.497-516.2003
  • Boukhebti H, Chaker AN, Belhadj H, Sahli F, Ramdhani M, Laouer H, Harzallah D. 2011. Chemical composition and antibacterial activity of Mentha pulegium L. and Mentha spicata L. essential oils. Der Pharmacia Lettre. 3(4):267–275.
  • Bozin B, Mimica-Dukic N, Samojlik I, Jovin E. 2007. Antimicrobial and antioxidant properties of rosemary and sage (Rosmarinus officinalis L. and Salvia officinalis L., Lamiaceae) Essential Oils. J Agric Food Chem. 55(19):7879–7885. doi:https://doi.org/10.1021/jf0715323
  • Camacho J, Picó J, Ferrer A. 2010. Data understanding with PCA: structural and variance information plots. Chemometr Intell Lab Syst. 100(1):48–56. doi:https://doi.org/10.1016/j.chemolab.2009.10.005
  • Campbell WE, Gammon DW, Smith P, Abrahams M, Purves TD. 1997. Composition and antimalarial activity in vitro of the essential oil of Tetradenia riparia. Planta Med. 63(3):270–272. doi:https://doi.org/10.1055/s-2006-957672
  • Channaiah LH. 2019. An overview of mycotoxicosis and human’s health concerns: a mini-review. Health Perspect. 107(3):469–472.
  • Croteau R, Kutchan TM, Lewis NG. 2000. Natural products (Secondary Metabolites). In: Buchanan B., Gruissem W., Jones R. editors. Biochemistry & molecular biology of plants. Rockville: American Society of Plant Physiologists; p. 1250–1318.
  • da Cruz CL, Pinto VF, Patriarca A. 2013. Application of plant-derived compounds to control fungal spoilage and mycotoxin production in foods. Int J Food Microb. 166 (1):1–14. doi:https://doi.org/10.1016/j.ijfoodmicro.2013.05.026
  • de Oliveira K, Batista EA, Kraljic PS, Matta RA, Batista RM, Lucas VAS, Fernandes SH. 2020. Development of a natural fungicide from piperina. BJD. 6(7):46433–46447. doi:https://doi.org/10.34117/bjdv6n7-321
  • Egbuta MA, Mwanza M, Phoku JZ, Chilaka CA, Dutton MF. 2016. Comparative analysis of mycotoxigenic fungi and mycotoxins contaminating soya bean seeds and processed soya bean from Nigerian markets. AiM. 06 (14):1130–1139. doi:https://doi.org/10.4236/aim.2016.614102
  • Fernandez ACAM, Rosa MF, Fernandez CMM, Bortolucci WC, Melo UZ, Siqueira VLD, Cortez DAG, Gonçalves JE, Linde GA, Gazim ZC. 2017. Antimicrobial and Antioxidant activities of the extract and fractions of Tetradenia riparia (Hochst.) Codd (Lamiaceae) leaves from Brazil. Curr Microbiol. 74(12):1453–1460.
  • Ferré L. 1995. Selection of components in principal component analysis: a comparison of methods. Comput Stat. Data Anal. 19(6):669–682. doi:https://doi.org/10.1016/0167-9473(94)00020-J
  • Ferreira FD, Kemmelmeier C, Arrotéia CC, da Costa CL, Mallmann CA, Janeiro V, Ferreira FMD, Mossini SAG, Silva EL, Machinski M. 2013. Inhibitory effect of the essential oil of Curcuma longa L. and curcumin on aflatoxin production by Aspergillus flavus Link. Food Chem. 136 (2):789–793.
  • Fumagali E, Gonçalves RAC, Machado MFPS, Vidoti GJ, de Oliveira AJB. 2008. Production of plant secondary metabolites in plant cell and tissue culture: The example of Tabernaemontana and Aspidosperma genera. Rev Bras Farmacogn. 18(4):627–641. doi:https://doi.org/10.1590/S0102-695X2008000400022
  • Gairola S, Naidoo Y, Bhatt A, Nicholas A. 2009. An investigation of the foliar trichomes of Tetradenia riparia (Hochst.) Codd [Lamiaceae]: an important medicinal plant of Southern Africa. Flora. 204(4):325–330. doi:https://doi.org/10.1016/j.flora.2008.04.002
  • Gazim ZC, Amorim AC, Hovell AM, Rezende CM, Nascimento IA, Ferreira GA, Cortez DA. 2010. Seasonal variation, chemical composition, and analgesic and antimicrobial activities of the essential oil from leaves of Tetradenia riparia (Hochst.) Codd in Southern Brazil. Molecules. 15(8):5509–5524. doi:https://doi.org/10.3390/molecules15085509
  • Gazim ZC, Demarchi IZ, Lonardoni MVC, Amorim ACL, Hovell AMC, Rezende CM, Ferreira GA, de Lima EL, de Cosmo FA, Cortez DAG. 2011. Acaricidal activity of the essential oil from Tetradenia riparia (Lamiaceae) on the cattle tick Rhipicephalus (Boophilus) microplus (Acari; Ixodidae). Exp Parasitol. 129 (2):175–178.
  • Gazim ZC, Rodrigues F, Amorin ACL, Rezende CM, Sokovic M, Tešević V, Vučković I, Krstić G, Cortez LER, Colauto NB, et al. 2014. New natural diterpene-type abietane from Tetradenia riparia essential oil with cytotoxic and antioxidant activities. Molecules. 19(1):514–524. doi:https://doi.org/10.3390/molecules19010514
  • Hair JF, Anderson RE, Tatham RL, Black W, Hair J. 2005. Análise Multivariada de Dados. Porto Alegre: Bookman.
  • Heidtmann-Bemvenuti R, Tralamazza SM, Ferreira CFJ, Corrêa B, Badiale-Furlong E. 2016. Effect of natural compounds on Fusarium graminearum complex. J Sci Food Agric. 96(12):3998–4008. doi:https://doi.org/10.1002/jsfa.7591
  • Hintz T, Matthews KK, Rong D. 2015. The use of plant antimicrobial compounds for food preservation. Biomed Res Int. 2015:246212–246264. doi:https://doi.org/10.1155/2015/246264
  • Iamanaka BT, Oliveira IS, Taniwaki MH. 2010. Mycotoxins in foods. An Acad Pernamb Ciênc Agron. 7(1):138–161.
  • [IARC] International Agency for Research on Cancer 1993. Monographs on the evaluation of carcinogenic risks to humans: some naturally occurring substances: food items and constituents, heterocyclic aromatic amines and mycotoxins, Vol. 56, p. 489–599.
  • Ketzer F, Bemvenuti A, Veiverberg S, Dörr MG, Schmidt ME. 2020. Use of Tabernaemontana catharinensis extract as an alternative fungicide for natural agriculture. BJD. 6(7):45050–45059. doi:https://doi.org/10.34117/bjdv6n7-213
  • Kirinčič S, Škrjanc B, Kos N, Kozolc B, Pirnat N, Tavčar-Kalcher G. 2015. Mycotoxins in cereals and cereal products in Slovenia – Official control of foods in the years 2008–2012. Food Control. 50(1):157–165. doi:https://doi.org/10.1016/j.foodcont.2014.08.034
  • Kupski L, Queiroz MI, Badiale-Furlong E. 2018. Application of carboxypeptidase A to a baking process to mitigate contamination of wheat flour by ochratoxin A. Process Biochem. 64:248–254. doi:https://doi.org/10.1016/j.procbio.2017.09.006
  • Lehman AD, Dunkel FV, Klein RA, Ouattara S, Diallo D, Gamby KT, N'diaye M. 2007. Insect management products from Malian traditional medicine-establishing systematic criteria for their identification. J Ethnopharmacol. 110(2):235–249. doi:https://doi.org/10.1016/j.jep.2006.06.016
  • Magan N, Aldred D. 2007. Post-harvest control strategies: minimizing mycotoxins in the food chain. Int J Food Microbiol. 119 (1-2):131– 139. doi:https://doi.org/10.1016/j.ijfoodmicro.2007.07.034
  • Majeed S, Boevre M, Saeger S, Rauf W, Tawab A, Habib F, Rahman M, Iqbal M. 2018. Multiple mycotoxins in rice: occurrence and health risk assessment in children and adults of Punjab, Pakistan. Toxins. 10(1):1–30. doi:https://doi.org/10.3390/toxins10020077
  • Martins MBG, Martins RGM, Cavalheiro JA. 2008. Chemical and antibacterial study of Tetradenia riparia leaves. Revista Biociências. 14(2):127–140.
  • Moita Neto JM, Moita GC. 1998. An introduction analysis exploratory multivariate date. Quím Nova. 21(4):467–469. doi:https://doi.org/10.1590/S0100-40421998000400016
  • [NCCLS] National Committee For Clinical Laboratory Standards 2003. Performance Standards for antimicrobial disk susceptibility tests. Approved standard. 8.ed. NCCLS document M2-A8. Wayne, PA.
  • Nogueira S, Oliveira MBBP. 2006. Prevalência de ocratoxina A em alimentos e consequentes problemas de segurança alimentar. Revista da Sociedade Portuguesa de Ciências da Nutrição e Alimentação. 12(2):69–75.
  • Omolo MO, Okinyo D, Ndiege IO, Lwande W, Hassanali A. 2004. Repellency of essential oils of some Kenyan plants against Anopheles gambiae. Phytochemistry. 65(20):2797–2802. doi:https://doi.org/10.1016/j.phytochem.2004.08.035
  • Pavela R. 2015. Essential oils for the development of eco-friendly mosquito larvicides: A review. Ind Crops Prod. 76(1):174–187. doi:https://doi.org/10.1016/j.indcrop.2015.06.050
  • Piacentini KC, Rocha LO, Fontes LC, Carnielli L, Reis TA, Corrêa B. 2017. Mycotoxin analysis of industrial beers from Brazil: The influence of fumonisin B1 and deoxynivalenol in beer quality. Food Chem. 218(1):64–69. doi:https://doi.org/10.1016/j.foodchem.2016.09.062
  • Rodrigues MP. 2019. Effects of neem oil Azadirachta indica on in vitro growth and production of ochratoxin A by strains of Aspergillus carbonarius (Thesis). Belo Horizonte (BH): Universidade Federal Minas Gerais.
  • Sabulal B, Dan M, J AJ, Kurup R, Pradeep NS, Valsamma RK, George V. 2006. Caryophyllene-rich rhizome oil of Zingiber nimmonii from South India: Chemical characterization and antimicrobial activity. Phytochemistry. 67(22):2469–2473. doi:https://doi.org/10.1016/j.phytochem.2006.08.003
  • Sartoratto A, Machado ALM, Delarmelina C, Figueira GM, Duarte MCT, Rehder VLG. 2004. Composition and antimicrobial activity of essential oils from aromatic plants used in Brazil. Braz J Microbiol. 35(4):275–280. doi:https://doi.org/10.1590/S1517-83822004000300001
  • Scanavacca J, Bortolucci WC, Tešević V, Glamoćlija J, Soković M, Jacomassi E, Baretta IP, Faria MGI, Fernandez CMM, Colauto NB, et al. 2022. Antimicrobial activity of Tetradenia riparia leaf essential oil. El Boletín Latinoamericano y del Caribe de Plantas Medicinales y aromáticas (Blacpma).
  • Schirone M, Visciano P, Tofalo R, Suzzi G. 2019. Editorial: foodborne pathogens: hygiene and safety. Front Microbiol. 10:1974–1974. doi:https://doi.org/10.3389/fmicb.2019.01974
  • Silveira RD, Veras FF, Bach E, Manfroi V, Brandelli A, Welke JE. 2022. Aspergillus carbonarius-derived ochratoxins are inhibited by Amazonian Bacillus spp. used as a biocontrol agent in grapes. Food Addit. Contam. 39(1):158–169. doi:https://doi.org/10.1080/19440049.2021.1982151
  • Singh B, Sharma RA. 2015. Plant terpenes: defense responses, phylogenetic analysis, regulation and clinical applications. 3 Biotech. 5(2):129–151. doi:https://doi.org/10.1007/s13205-014-0220-2
  • Soković M, Glamočlija J, Ćirić A. 2013. Natural products from plants and fungicides. In: Mizuho N, editor. Fungicides: showcases of integrated plant disease management from around the world. Blacksburg (USA): Scholar Research Library; p. 185–232.
  • Statsoft Inc 2018. Statistica for Windows (Computer Program Manual). http://www.statsoft.com/
  • Talbaoui A, Jamaly N, Aneb M, Idrissi A, Bouksaim M, Gmouh S, Amzazi S, Moussaouiti ME, Benjouad A, Bakri Y. 2012. Chemical composition and antibacterial activity of essential oils from six Moroccan plants. J Med Plant Res. 6(31):4593–4600.
  • Torquilho HS. 2001. Chemical composition, anti-inflammatory, trypanocidal and antineoplastic activity of Tetradenia riparia Hochstetter Codd essential oil.[Dissertation] Universidade Federal Rural do Rio de Janeiro.
  • Van Puyvelde L, Nyirankuliza S, Panebianco R, Boily Y, Geizer I, Sebikali B, De Kimpe N, Schamp N. 1986. Active principles of Tetradenia riparia. I. Antimicrobial activity of 8(14),15- sandaracopimaradiene-7a,18-diol. J Ethnopharm. 17(3):269–275. doi:https://doi.org/10.1016/0378-8741(86)90115-7
  • Van Puyvelde L, Kimpe N, Ayobangira FX, Costa J, Nshimyumukiza P, Boily Y, Hakizamungu E, Schamp N. 1988. Wheat rootlet growth inhibition test of Rwandese medicinal plants: active principles of Tetradenia riparia and Diplolophium africanum. J Ethnopharmacol. 24(2-3):233–246. doi:https://doi.org/10.1016/0378-8741(88)90156-0
  • Weaver DK, Dunkel FV, Puyvelde L, Richards DC, Fitzgerald GW. 1994. Toxicity and protectant potencial of the essential oil of Tetradenia riparia (Lamiales, Lamiaceae) against Zabrotes subfasciatus (Col., Bruchidae) infesting dried pinto beans (Fabales, Lefuminosae). J Appl Entomol. 118(1-5):179–196. doi:https://doi.org/10.1111/j.1439-0418.1994.tb00793.x
  • Weaver DK, Dunkel FV, Cusker JL, Van Puyvelde L. 1992. Oviposition patterns in two species of bruchids (coleopteran: bruchidae) as influenced by the dried leaves of Tetradenia riparia, a perennial mint (lamiales: lamiaceae) that suppresses population size. Environ. Entomol. 21(5):1123–1129.
  • Yang D, Michel L, Chaumont JP, Millet-Clerc J. 1999. Use of caryophyllene oxide as an antifungal agent in an in vitro experimental model of onychomycosis. Mycopathologia. 148(2):79–82. doi:https://doi.org/10.1023/A:1007178924408
  • Zelnik R, Rabenhorst E, Matida AK, Gottlieb HE, Lavie D, Panizza S. 1978. Ibozza riparia. Phytochem. 17 (10):1795–1797. doi:https://doi.org/10.1016/S0031-9422(00)88701-4
  • Zuzarte M, Vale-Silva L, Gonçalves MJ, Cavaleiro C, Vaz S, Canhoto J, Pinto E, Salgueiro L. 2012. Antifungal activity of phenolic-rich Lavandula multifida L. essential oil. Eur J Clin Microbiol Infect Dis. 31(7):1359–1366. doi:https://doi.org/10.1007/s10096-011-1450-4

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