A influência dos óleos essenciais e taninos de Eucalyptus spp. na herbivoria

Autores

DOI:

https://doi.org/10.33448/rsd-v11i6.28903

Palavras-chave:

Adstringência de plantas; Compostos fenólicos; Proteção contra herbivoria.

Resumo

O Eucalyptus (família Myrtaceae) é uma planta nativa da Austrália, sendo um gênero cultivado devido ao seu óleo de goma, celulose e a madeira, utilizada mundialmente para diversas aplicações comerciais. É uma planta de grande relevância econômica e possivelmente seu cultivo, no Brasil, bem como em outros países, tem reduzido a exploração de árvores nativas. O metabolismo secundário do Eucalyptus, comumente encontrado nas plantas, produz óleos essenciais e taninos que podem interferir no consumo das plantas pelos animais silvestres. O objetivo do presente trabalho foi investigar a influência da concentração de óleo essencial e taninos na herbivoria de sete táxons de Eucalyptus. A composição dos óleos essenciais para todas as espécies investigadas foi caracterizada pela análise CG MS HS-Trap. As menores taxas de herbivoria foram associadas a Urocam, Grancam e Eucalyptus benthamii. Esses táxons foram associados à presença de compostos de óleos mistos, α/β-Pinene, Pinocarveol, α-Terpineol e Taninos. As concentrações de taninos e óleo essencial são um fator importante que contribui para a proteção das plantas contra a herbivoria

Referências

Amazonas, N. T., Forrester, D. I., Silva, C. C., Almeida, D. R. A., Rodrigues, R. R., & Brancalion, P. H. S. (2018). High diversity mixed plantations of Eucalyptus and native trees: An interface between production and restoration for the tropics. Forest Ecology and Management, 417(November 2017), 247–256. https://doi.org/10.1016/j.foreco.2018.03.015

Bailey, J. K., Wooley, S. C., Lindroth, R. L., & Whitham, T. G. (2006). Importance of species interactions to community heritability: A genetic basis to trophic-level interactions. Ecology Letters, 9(1), 78–85. https://doi.org/10.1111/j.1461-0248.2005.00844.x

Baldi, A., Bruschi, P., Campeggi, S., Egea, T., Rivera, D., Obón, C., & Lenzi, A. (2022). The Renaissance of Wild Food Plants: Insights from Tuscany (Italy). Foods, 11(3). https://doi.org/10.3390/foods11030300

Batish, D. R., Singh, H. P., Kohli, R. K., & Kaur, S. (2008). Eucalyptus essential oil as a natural pesticide. Forest Ecology and Management, 256(12), 2166–2174. https://doi.org/10.1016/j.foreco.2008.08.008

Batista, T. S., Estevão, C. D., De Lima, D. C., & Salvio, G. M. M. (2021). Mammals in atlantic forest remnants of barbacena, minas gerais mamíferos em remanescentes florestais de mata atlântica, barbacena, minas gerais. Ciencia Animal Brasileira, 22. https://doi.org/10.1590/1809-6891V22E-67449

Canale, G. R., Guidorizzi, C. E., Kierulff, M. C. M., & Gatto, C. A. F. R. (2009). First record of tool use by wild populations of the yellow-breasted capuchin monkey (Cebus xanthosternos) and new records for the bearded capuchin (cebus libidinosus). American Journal of Primatology, 71(5), 366–372. https://doi.org/10.1002/ajp.20648

Carrara, L. A., Faria, L. D. P., Do Amaral, F. Q., & Rodrigues, M. (2007). Dormit??rios do papagaio-verdadeiro Amazona aestiva e do papagaio-galego Salvatoria xanthops em plantio comercial de eucalipto. Revista Brasileira de Ornitologia, 15(1), 135–138.

Cheng, Y., Savits, J. R., & Watrelot, A. A. (2022). Effect of the Application Time of Accentuated Cut Edges (ACE) on Marquette Wine Phenolic Compounds. Molecules, 27(2). https://doi.org/10.3390/molecules27020542

Chouvelon, T., Gilbert, L., Caurant, F., Méndez‐Fernandez, P., Bustamante, P., Brault‐Favrou, M., & Spitz, J. (2022). Nutritional grouping of marine forage species reveals contrasted exposure of high trophic levels to essential micro‐nutrients. Oikos, February, 1–22. https://doi.org/10.1111/oik.08844

Domingues, R. M. A., Sousa, G. D. A., Silva, C. M., Freire, C. S. R., Silvestre, A. J. D., & Neto, C. P. (2011). High value triterpenic compounds from the outer barks of several Eucalyptus species cultivated in Brazil and in Portugal. Industrial Crops and Products, 33(1), 158–164. https://doi.org/10.1016/j.indcrop.2010.10.006

Dutt, D., & Tyagi, C. H. (2011). Comparison of various eucalyptus species for their morphological, chemical, pulp and paper making characteristics. Indian Journal of Chemical Technology, 18(2), 145–151.

Felton, A. M., Felton, A., Lindenmayer, D. B., & Foley, W. J. (2009). Nutritional goals of wild primates. In Functional Ecology. 23(1), 70–78). https://doi.org/10.1111/j.1365-2435.2008.01526.x

Freitas, C. H. de, Setz, E. Z. F., Araújo, A. R. B., & Gobbi, N. (2008). Agricultural crops in the diet of bearded capuchin monkeys, Cebus libidinosus Spix (Primates: Cebidae), in forest fragments in southeast Brazil. Revista Brasileira de Zoologia, 25(1), 32–39. https://doi.org/10.1590/S0101-81752008000100006

Galetti, M. (1993). Diet of the Scaly-Headed Parrot (Pionus maximiliani) in a Semideciuous Forest in Southeatern Brazil. Biotropica, 25(4), 419–425. https://doi.org/10.1002/jez.b.22

Harris, R. (2003). Eucalyptus. The genus Eucalyptus. International Journal of Aromatherapy, 13(2–3), 152–153. https://doi.org/10.1016/S0962-4562(03)00073-0

Hohenlohe, P. A., Funk, W. C., & Rajora, O. P. (2021). Population genomics for wildlife conservation and management. Molecular Ecology, 30(1), 62–82. https://doi.org/10.1111/mec.15720

Jacq, C., Da, R., Saad, G., Toghlobi, S. El, Arantes, R. A., Knudsen, B. G., Aurélio, M., Pereira, A., Carvalho, R. G. De, Ribeiro, R., Ferraz, N., Sandro, F., & Rodrigues, M. (2022). International Journal of Health Management Review, 8(1).

Kullan, A. R., van Dyk, M. M., Hefer, C. a, Jones, N., Kanzler, A., & Myburg, A. a. (2012). Genetic dissection of growth, wood basic density and gene expression in interspecific backcrosses of Eucalyptus grandis and E. urophylla. BMC Genetics, 13(1), 60. https://doi.org/10.1186/1471-2156-13-60

Guia do Eucalipto: oportunidades para um desenvolvimento sustentável, Council for Biotechnology information (2008).

Lesschaeve, I., & Noble, A. C. (2005). Polyphenols: factors influencing their sensory properties and their effects on food and beverage preferences. The American Journal of Clinical Nutrition, 81(1 Suppl), 330S-335S. https://doi.org/10.1093/ajcn/81.1.330S

Mehansho, H., Ann, D. K., Butler, L. G., Rogler, J., & Carlson, D. M. (1987). Induction of proline-rich proteins in hamster salivary glands by isoproterenol treatment and an unusual growth inhibition by tannins. Journal of Biological Chemistry, 262(25), 12344–12350.

Mikich, S. B., & Liebsch, D. (2014). Damage to forest plantations by tufted capuchins (Sapajus nigritus): Too many monkeys or not enough fruits? Forest Ecology and Management, 314, 9–16. https://doi.org/10.1016/j.foreco.2013.11.026

Mithöfer, A., & Boland, W. (2012). Plant Defense Against Herbivores: Chemical Aspects. Annual Review of Plant Biology, 63(1), 431–450. https://doi.org/10.1146/annurev-arplant-042110-103854

Mokrzycki, Ł., Sulikowski, B., & Olejniczak, Z. (2009). Properties of desilicated ZSM-5, ZSM-12, MCM-22 and ZSM-12/MCM-41 derivatives in isomerization of α-pinene. Catalysis Letters, 127(3–4), 296–303. https://doi.org/10.1007/s10562-008-9678-z

Mossi, a J., Mazutti, M., Paroul, N., Corazza, M. L., Dariva, C., Cansian, R. L., & Oliveira, J. V. (2009). Chemical variation of tannins and triterpenes in Brazilian populations of Maytenus ilicifolia Mart. Ex Reiss. Brazilian Journal of Biology = Revista Brasleira de Biologia, 69(2), 339–345. https://doi.org/10.1590/S1519-69842009000200015

Mueller-Harvey, I. (2006). Unravelling the conundrum of tannins in animal nutrition and health. Journal of the Science of Food and Agriculture, 86(13), 2010–2037. https://doi.org/10.1002/jsfa.2577

Neiva, D., Fernandes, L., Araújo, S., Lourenço, A., Gominho, J., Simões, R., & Pereira, H. (2015). Chemical composition and kraft pulping potential of 12 eucalypt species. Industrial Crops and Products, 66, 30–30. https://doi.org/10.1016/j.indcrop.2014.12.016

Oliveira, N. De, Carolina, A., Figueiredo, F., Doril, G., Cordeiro, F. R., Cristina, G., Silva, C., Marques, R. D. O., Silva, M., Dalarme, L., Gouvea, I., & Cardoso, M. (2022). Land Use , Land Cover Change and Sustainable Intensification of Agriculture and Livestock in the Amazon and the Atlantic Forest in Brazil. Sustainability, 1–23. https://doi.org/10.3390/ su14052563

Padmanaban, P. B. S., Rosenkranz, M., Zhu, P., Kaling, M., Schmidt, A., Schmitt-Kopplin, P., Polle, A., & Schnitzler, J. P. (2022). Mycorrhiza-Tree-Herbivore Interactions: Alterations in Poplar Metabolome and Volatilome. Metabolites, 12(2). https://doi.org/10.3390/metabo12020093

Parys, W., Dołowy, M., & Pyka-Pająk, A. (2022). Significance of Chromatographic Techniques in Pharmaceutical Analysis. Processes, 10(1). https://doi.org/10.3390/pr10010172

Prache, S., Adamiec, C., Astruc, T., Baéza-Campone, E., Bouillot, P. E., Clinquart, A., Feidt, C., Fourat, E., Gautron, J., Girard, A., Guillier, L., Kesse-Guyot, E., Lebret, B., Lefèvre, F., Le Perchec, S., Martin, B., Mirade, P. S., Pierre, F., Raulet, M., & Santé-Lhoutellier, V. (2022). Review: Quality of animal-source foods. Animal, 16, 100376. https://doi.org/10.1016/j.animal.2021.100376

Rafferty, C., & Lamont, B. B. (2021). Plant tannins and essential oils have an additive deterrent effect on diet choice by kangaroos. Forests, 12(12). https://doi.org/10.3390/f12121639

Rider, C. V. (2016). TOX- 81_ α-Pinene Administered by Inhalation to F344_N Rats and B6C3F1_N Mice.pdf (pp. 1–58). National Report Series.

Sartoratto, A., Machado, A. L. M., Delarmelina, C., Figueira, G. M., Duarte, M. C. T., & Rehder, V. L. G. (2004). Composition and antimicrobial activity of essential oils from aromatic plants used in Brazil. Brazilian Journal of Microbiology, 35(4), 275–280. https://doi.org/10.1590/S1517-83822004000300001

Silva, A. C. R. da, Lopes, P. M., Azevedo, M. M. B. de, Costa, D. C. M., Alviano, C. S., & Alviano, D. S. (2012). Biological Activities of a-Pinene and β-Pinene Enantiomers. Molecules, 17(12), 6305–6316. https://doi.org/10.3390/molecules17066305

Trugillho, P. F., Caixeta, R. P., Lima, J. T., & Mendes, L. M. (1997). Avaliação Do Conteúdo Em Taninos Condensados De Algumas Espécies Típicas Do Cerrado Mineiro. Cerne, Lavras, 3(1), 1–13.

Turek, C., & Stintzing, F. C. (2013). Stability of essential oils: A review. In Comprehensive Reviews in Food Science and Food Safety (Vol. 12, Issue 1, pp. 40–53). https://doi.org/10.1111/1541-4337.12006

Downloads

Publicado

23/04/2022

Como Citar

MÜLLER, E. S.; HÖHN, C.; ALMEIDA, M. O. P. de .; PATUSSI, P. .; CALISTO, J. F. F. .; FLOSS, P.; OLIVEIRA, A. D. de .; ALBENY-SIMÕES, D.; SOUZA, R. R. de .; OLIVEIRA, J. V. .; MAGRO, J. D. . A influência dos óleos essenciais e taninos de Eucalyptus spp. na herbivoria. Research, Society and Development, [S. l.], v. 11, n. 6, p. e14611628903, 2022. DOI: 10.33448/rsd-v11i6.28903. Disponível em: https://rsdjournal.org/index.php/rsd/article/view/28903. Acesso em: 21 nov. 2024.

Edição

Seção

Ciências Agrárias e Biológicas