Wilting by Fusarium oxysporum Schlthl in masaguaro (Pseudosamanea guachapele) (Kunth)
DOI:
https://doi.org/10.17981/ingecuc.19.1.2023.02Keywords:
forest tree, Bacillus subtilis, benomyl, fungus, wiltingAbstract
Introduction— The masaguaro (Pseudomanea Guachapele) was used in reforestation by the” Fundación Orinoquia Biodiversa” in Arauca, and it presented an unknown wilting.
Objective— Characterize the disease and its causal agent, and evaluate the possibilities of chemical and biological control of the disease.
Methodology— The research was carried out in Campo Alegre Arauquita neighborhood (Arauca, Colombia). The samples were analyzed in the microbiology laboratory of the University of Pamplona. The disease and its causal agent were characterized, the incidence and severity of the disease were determined and the monetary losses considering the dead plants, were estimated. A wilting control experiment using benomyl and Bacillus subtilis was carried out, comparing them to a control without treatment. Fusarium oxysposum was determined as the causal agent.
Results— Fusarium oxysporum was identified as causal agent of the disease. Wilting reached between 13% and 54% of incidence. The economic losses were estimated at more than 19 million pesos/ha.
Conclusion— The preventive and eradicative action of benomyl and only preventive action of B. subtilis were verified.
Downloads
References
UNAL. Pseudosamanea guachapele (Kunth) Harms -Fabaceae. 2012 http://www.biovirtual.unal.edu.co/es/colecciones/detail/603071/
L. Pancel. Species files in Tropical Forestry. Tropical Forestry Handbook, M. Köhl (eds.), Springer-Verlag Berlin Heidelberg. 2016. https://doi.org/10.1007/978-3-642-54601-3_112
F.D.C. Balieiro, A.A. Franco, M.G. Pereira, E.F.C. Campello, L.E. Dias, S.M. de Faria, B.J.R. Alves. Dinâmica da serapilheira e transferência de nitrogênio ao solo, em plantios de Pseudosamanea guachapele e Eucalyptus grandis. Pesq. agropec. bras., Brasília, vol. 39, no. 6, pp. 597-601. 2004.
D.I. Forrester, J. Bauhus, A.L. Cowie. Nutrient cycling in a mixed-species plantation of Eucalyptus globulus and Acacia mearnsii. Canadian Journal of Forest Research, vol. 35, no. 12, pp. 2942-2950. 2005.
J. Cordero, D.H. Boshier. Arboles de Centroamérica: un manual para extensionistas. 1080 pp. Oxford Forestry Institute (OFI)- Centro Agronómico Tropical de Investigación y Enseñanza (CATIE). Oxford, UK. Costa Rica. 2003.
A.J. Barrance, J.J. Hellin. Factores claves para el éxito de programas de reforestación y regeneración natural. En: Árboles de Centroamérica – un Manual para Extensionistas. Capítulo 3. OFI/CATIE/FRP. 2003.
J.F. Leslie, B.A. Summerell. The Fusarium laboratory manual. Oxford: Blackwell Publishing. 2006.
Angulo, A., Siles, M., Ríos, R., Gabriel, J., 2008: Caracterización de 118 accesiones de arveja (Pisum sativum L.) del banco de germoplasma del Centro de Investigaciones Fitoecogenéticas de Pairumani (Bolivia) para resistencia a sequía. Revista de Agricultura, vol. 42 no. 60, pp. 25 – 31.
Statistix 10. 2018. https://softisnepal.weebly.com/statistix-10-free-download.html
D. Piotto, D. Craven, F. Montagnini, A. Federico. Silvicultural and economic aspects of pure and mixed native tree species plantations on degraded pasturelands in humid. Costa Rica. New Forests, vol. 39 pp. 369–385. 2010. DOI 10.1007/s11056-009-9177
R.B. Nesbitt, T.E. Tidwell, R.J. Stipes, G.J. Griffin, First report of mimosa wilting disease of silk tree Albizia julibrissin in California caused by Fusarium oxysporum f. sp. perniciosum. Plant Disease. vol. 83 pp. 487. 1999.
M. Berbegal, M. Marín-Terrazas, A. Ramón, A. Albalat, M. León, J. Armengol, First report of Fusarium wilting of Albizia julibrissin caused by Fusarium oxysporum f. sp. perniciosum in Spain. Journal of Plant Pathology, vol. 98, no. 3 pp. 677-697. 2016.
C.Y. Wang, M. Abid, X. Yang, A.F. Zhang, H.Y. Zang, C.Y. Gu, T.C. Gao, Y. Chen. First report of silk tree (Albizia julibrissin) wilting caused by Fusarium proliferatum in Anhui Province of China. Plant Disease, vol. 103, no. 11 pp. 2947. 2019.
E. Bush. Fusarium Wilting of Mimosa (Albizia julibrissin). Virginia Polytechnic Institute and State University. 2019. https://www.pubs.ext.vt.edu/content/dam/pubs_ext_vt_edu/2811/2811-1020/2811-1020_pdf.pdf
Merck, Benomyl. Methyl 1-(butylcarbamoyl)-2-benzimidazolecarbamate. 2020. https://www.sigmaaldrich.com/catalog/product/sial/45339?lang=en®ion=CO&gclid=CjwKCAjw1cX0BRBmEiwAy9tKHrGow3lLdpbqQDUFFlNdavqdjfazkyL-0Doy2TAFMimFO1hqEHUaPRoCjzkQAvD_BwE
M.A.S. Mendes, P.M.M.P. Lima, J.N.L. Fonseca, M.F. Santos. Erradicação de Fusarium oxysporum em sementes de alfafa utilizando termo e quimioterapia. Fitopatologia Brasileira, vol. 26, pp. 48-152. 2001.
J. Pabón, J. Castaño. Manejo de la pudrición radical de la arveja (Pisum sativum L.) causada por Fusarium oxysporum Schlechtend. Agron., vol. 20, no. 2, pp. 37-44. 2012.
SAGARPA – SENASICA, Mal de Panamá. Fusarium oxysporum f. sp. cubense (E.F. Sm.) W. C. Snyder & H. N Hansen. Raza 4 Tropical (Foc R4T). Ficha Técnica No. 2., 30 pp. 2016.
L.M. Vásquez, J. Castaño. Manejo integrado de la marchitez vascular del tomate [Fusarium oxysporum f. sp. lycopersici (Sacc.) W.C. Snyder & H.N. Hansen : Una revisión. Rev. U.D.C.A Act. & Div. Cient. Vol. 20, no. 2, pp. 363-374. 2017.
B.A. Santos, L. Zambolim, J.Á. Ventura, F.X.R.Vale. Severidade de isolados de Fusarium subglutinans f. sp. ananas sensíveis e resistentes ao benomyl em abacaxizeiro. Fitopatologia Brasileira, vol. 27, pp. 101-103. 2002.
V.S. Meena. Role of rhizospheric microbes in soil. Volume 1: Stress management and agricultural sustainability. Springer. Meena Vijay Singh Editor ICAR-Vivekananda Institute of Hill Agriculture Almora, Uttarakhand, India. 2018.
Q. Zhao, W. Ran, H. Wang, X. Li, Q. Shen, S. Shen, Y. Xu. Biocontrol of Fusarium wilting disease in muskmelon with Bacillus subtilis Y-IVI. BioControl, vol. 58 pp. 283–292. 2013.
T. Kejela, V.R. Thakkar, P. Thakor. Bacillus species (BT42) isolated from Coffea arabica L. rhizosphere antagonizes Colletotrichum gloeosporioides and Fusarium oxysporum and also exhibits multiple plant growth promoting activity. BMC Microbiology, vol. 16, pp. 277. 2016. DOI 10.1186/s12866-016-0897-y
L. Wang, N. Wang, D. Mi, Y. Luo, J. Guo. Poly-γ-glutamic acid productivity of Bacillus subtilis BsE1 has positive function in motility and biocontrol against Fusarium graminearum. Journal of Microbiology, vol. 55 pp. 7, pp. 554–560. 2017. DOI 10.1007/s12275-017-6589-y
T. Santana, L. Castellanos. Efecto biocontrolador de Trichoderma harzianum Rifai sobre Fusarium spp. en Leucaena leucocephala (Lam.) de Wit.(leucaena), Cedrela odorata L. (cedro) y Phitecellobium saman (Jacq.) Merr. Agroecosistemas, vol. 1 no. 2 pp. 165-172. 2013.
T. Santana, L. Castellanos. Efecto bioestimulante de Trichoderma harzianum Rifai en posturas de Leucaena, Cedro y Samán. Colombia Forestal, vol. 21, no.1, pp. 81-90. 2018.

Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 INGE CUC

This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.
Published papers are the exclusive responsibility of their authors and do not necessary reflect the opinions of the editorial committee.
INGE CUC Journal respects the moral rights of its authors, whom must cede the editorial committee the patrimonial rights of the published material. In turn, the authors inform that the current work is unpublished and has not been previously published.
All articles are licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License.