Biocontrol con levaduras de Penicillium expansum y Botrytis cinerea en manzana Golden Delicious
Biocontrol with yeasts of Penicillium expansum and Botrytis cinerea in Golden Delicious apples
DOI:
https://doi.org/10.54167/tch.v7i2.661Palabras clave:
Candida oleophila, Rhodotorula spp, Cryptococcus spp, poscosechaResumen
Los hongos Penicillium expansum y Botrytis cinerea son los principales patógenos causantes de las pérdidas poscosecha en manzanas producidas en Chihuahua, México. Para el control de estos patógenos generalmente se utilizan fungicidas sintéticos. Para evitar la acumulación de residuos químicos sobre los frutos y la generación de resistencia en el patógeno como consecuencia del uso intensivo de los fungicidas sintéticos, el control biológico es cada vez es más utilizado como estrategia alternativa para el control de diversos fitopatógenos. En este estudio se evaluó la eficiencia como agentes de biocontrol de las levaduras nativas de la región de Cuauhtémoc, Chihuahua, México: Rhodotorula glutinis, R. mucilaginosa, y dos cepas de Candida oleophila (L-06 y L07), sobre P. expansum y de B. cinerea inoculados en manzanas Golden Delicious. Se evaluaron también las levaduras Cryptococcus flavus, C. albidus y C. laurentii. Solamente las cepas nativas de C. oleophila, L- 06 y L-07 redujeron la severidad de las lesiones provocadas por P. expansum en un 77 y 69%, respectivamente; mientras que R. mucilaginosa redujo la severidad en un 21%. Las cepas L-07 y L-06 de C. oleophila, fueron las más eficientes para el control de B. cinerea con reducciones del daño en 73 y 57%, respectivamente. C. flavus, C. albidus y R. mucilaginosa, aunque en menor grado que C. oleophila, también redujeron la severidad de las lesiones causadas por B. cinerea. Las cepas nativas de C. oleophila tienen gran potencial para el biocontrol de P. expansum y B. cinerea en manzana en poscosecha.
Abstract
Penicillium expansum Link and Botrytis cinerea are among the most common pathogens causing postharvest losses in apples produced in Chihuahua, Mexico. Synthetic fungicides are still commonly used to control rots caused by these fungi on apples, although most Penicillium and Botrytis species have developed resistance to most of the fungicides that are used for their control. An alternative to the use of chemical control is the use of microorganisms that are capable of controlling phytopathogenic fungi and avoiding the chemical residues on the fruit. Efficiency as biocontrol agents of the following yeast native to the region of Cuauhtemoc, Mexico was evaluated: Rhodotorula glutinis, R. mucilaginosa, and two Candida oleophila strains (L-06 y L07), to biocontrol P. expansum and B. cinerea, on Golden Delicious apples. Cryptococcus flavus, C. albidus and C. laurentii were also evaluated. Only native strains Candida oleophila L-06 and L-07 reduced the severity of lesions caused by P. expansum by 77 and 69%, respectively; while R. mucilaginosa reduced lesion severity to 21%. L-07 and L-06 C. oleophila strains were the most efficient to control B. cinerea with damage reduction of 73 and 57%, respectively. Cryptococcus flavus, C. albidus and R. mucilaginosa, although less than C. oleophila, also reduced lesion severity caused by B. cinerea, C. oleophila native strains have a great potential for biocontrol P. expansum and B. cinerea on postharvest apples.
Keywords: Candida oleophila, Rhodotorula spp., Cryptococcus spp., postharvest
Descargas
Citas
Arras, G. 1996. Mode of action of an isolate of Candida famata in biological control of penicillium digitatum in orange fruits. Postharvest Biology and Technology 8(3):191-198. https://doi.org/10.1016/0925-5214(95)00071-2
Bencheqroun, S.K., M. Bajji, S. Massart, M. Labhilili, S.E. Jaafari & M.H. Jijakli. 2007. In vitro and in situ study of postharvest apple blue mold biocontrol by Aureobasidiumpullulans: Evidence for the involvement of competition for nutrients. Postharvest Biology and Technology 46(2):128-135. https://doi.org/10.1016/j.postharvbio.2007.05.005
Benítez-Ahrendts, M.R. & L. Carrillo. 2004. Levaduras inhibidoras de Penicillium. Revista Argentina de Microbiología 36(4):182-186. http://www.scielo.org.ar/scielo.php?script=sci_abstract&pid=S0325-75412004000400007
Calvo, J., V. Calvente, M.E. De Orellano, D. Benutzzi & M.I. Sanz de Tosetti. 2007. Biological control of postharvest spoilage caused by Penicillium expansum and Botrytis cinerea in apple by using the bacterium Rahnella aquatilis. International Journal of Food Microbiology 113(3):251-257. https://doi.org/10.1016/j.ijfoodmicro.2006.07.003
Castoria, R., L. Caputo, F. De Curtis & V. De Cicco. 2003. Resistance of postharvest biocontrol yeasts to oxidative stress: a possible new mechanism of action. Phytopathology 93 (5):564-572. https://doi.org/10.1094/phyto.2003.93.5.564
Conway, W.S., W.J. Janisiewicz, B. Leverentz, R.A. Saftner & M.J. Camp. 2007. Control of blue mold of apple by combining controlled atmosphere, an antagonist mixture, and sodium bicarbonate. Postharvest Biology and Technology 45(3):326-332. https://doi.org/10.1016/j.postharvbio.2007.03.005
Conway, W.S., B. Leverentz, W.J. Janisiewicz, R.A. Saftner & M.J. Camp. 2005. Improving biocontrol using antagonist mixtures with heat and/or sodium bicarbonate to control postharvest decay of apple fruit. Postharvest Biology and Technology 36(3):235-244. https://doi.org/10.1016/j.postharvbio.2005.01.006
Droby, S., V. Vinokur, B. Weiss, L. Cohen, A. Daus, E. E. Goldschmidt & R. Porat. 2002. Induction of resistance to Penicillium digitatum in grapefruit by the yeast biocontrol agent Candida oleophila. Phytopathology 92(4):393-399. https://doi.org/10.1094/phyto.2002.92.4.393
Droby, S., M. Wisniewski, D. Macarisin & C. Wilson. 2009. Twenty years of postharvest biocontrol research: Is it time for a new paradigm? Postharvest Biology and Technology 52(2):137-145. https://doi.org/10.1016/j.postharvbio.2008.11.009
Eckert, J.W. & J.M. Ogawa. 1985. The chemical control of postharvest diseases: subtropical and tropical fruits. Annu. Rev. Phytopathology 23:421-4.54 https://doi.org/10.1146/annurev.py.23.090185.002225
El-Ghaouth, A.E., C.L. Wilson & M. Wisniewski. 1998. Ultrastructural and cytochemical aspects of the biological control of Botrytis cinerea by Candida saitoana in apple fruit. Phytopathology 88 (4):282-291. https://doi.org/10.1094/phyto.1998.88.4.282
El-Ghaouth, A.E., C.L. Wilson & M. Wisniewski. 2003. Control of postharvest decay of apple fruit with Candida saitoana and induction of defense responses. Phytopathology 93 (3):344-348. https://doi.org/10.1094/phyto.2003.93.3.344
Förster, H., G.F. Driever, D.C. Thompson & J.E. Adaskaveg. 2007. Postharvest decay management for stone fruit crops in California using the “reduced risk” fungicides fludioxonil and fenhexamid. Plant Dis. 91(2):209-215. https://doi.org/10.1094/pdis-91-2-0209
Gholamnejad, J., H.R. Etebarian & N. Sahebani. 2010. Biological control of apple blue mold with Candida membranifaciens and Rhodotorula mucilaginosa. African Journal of Food Science 4(1):001-007. https://www.cabdirect.org/cabdirect/abstract/20103360140
Guerrero-Prieto, V.M., M.G. Trevizo-Enríquez, A.A. Gardea-Béjar, C. Figueroa-Valenzuela, A. Romo-Chacón, A.C. Blanco-Pérez & E. Curry. 2004. Identificación de levaduras epifitas obtenidas de manzana [Malussylvestris(L.) Mill. var. domestica (Borkh.) Mansf.] para control biológico poscosecha. Revista Mexicana de Fitopatología 22(2):223-230. https://www.redalyc.org/articulo.oa?id=61222209
Guerrero-Prieto, V. M., A. C. Blanco-Pérez, C. Guigón-Lόpez, C. J. Tamayo-Urbina, F. J. Molina-Corral, D. I. Berlanga-Reyes, E. Carvajal-Millán & G. D. Ávila-Quezada. 2011. Competencia por Nutrientes; Modo de Acción de Candida oleophila contra Penicillium expansumy Botrytiscinerea. Revista Mexicana de Fitopatología 29(2):90-97. https://www.redalyc.org/articulo.oa?id=61222864001
Harman, G.E., M.A. Obregón, G.J. Samuels & M. Lorito. 2010. Changing models for commercialization and implementation of biocontrol in the developing and the developed world. Plant Disease 94(8):928-939. https://doi.org/10.1094/pdis-94-8-0928
Hernández-Lauzardo, A.N., S. Bautista-Baños, M.G. Velásquez-Del Valle & A. Hernández-Rodríguez. 2007. Uso de microrganismos antagonistas en el control de enfermedades postcosecha en frutos. Revista Mexicana de Fitopatología 25(1):66-74. https://tinyurl.com/y9yjxnzm
Janisiewics, W.J. & L. Korsten. 2002. Biological control of postharvest diseases of fruits. Annual Review of Phytopathology 40:411-441. https://doi.org/10.1146/annurev.phyto.40.120401.130158
Janisiewicz, W.J., R.A. Saftner, W.S. Conway & K.S. Yoder. 2008. Control of blue mold decay of apple during commercial controlled atmosphere storage with yeast antagonists and sodium bicarbonate. Postharvest Biology and Technology 49(3):374-378. https://doi.org/10.1016/j.postharvbio.2008.03.011
Janisiewicz, W.J., T.J. Tworkoski & C. Sharer. 2000. Characterizing the mechanism of biological control of postharvest diseases on fruits with a simple method to study competition for nutrients. Phytopathology 90(11):1196-1200. https://doi.org/10.1094/phyto.2000.90.11.1196
Leibinger, W., B. Breuker, M. Hahn & K. Mendgen. 1997. Control of postharvest pathogens and colonization of the apple surface by antagonistic microorganisms in the field. Phytopathology 87(11):1103-1110. https://doi.org/10.1094/phyto.1997.87.11.1103
Mari, M., P. Bertolini & G.C. Pratella. 2003. Non-conventional methods for the control of post-harvest pear diseases. Journal of Applied Microbiology 94(5):761-766. https://doi.org/10.1046/j.1365-2672.2003.01920.x
Myresiotis, C.K., G.S. Karaoglanidis & K. Tzavella-Klonari. 2007. Resistance of Botrytis cinerea isolates from vegetable crops to anilinopyrimidine, phenylpyrrole, hydroxyanilide, benzimidazole, and dicarboximide fungicides. Plant Disease 91:407-413. https://doi.org/10.1094/PDIS-91-4-0407
Roberts, R.G. 1990. Postharvest biological control of gray mold of apple by Cryptococcus laurentii. Phytopathology 80:526-530. https://www.apsnet.org/publications/phytopathology/backissues/Documents/1990Abstracts/Phyto80_526.htm
Sánchez-Ventura, S.E., R.A. Martínez-Peniche, J. Castillo-Tovar & E. Fernández-Escartín. 2008. Antagonismo de levaduras nativas contra la pudrición azul (Penicilliumexpansum Link) en frutos de manzana. Revista Fitotecnia Mexicana 31(4):359-366. https://revfitotecnia.mx/index.php/RFM/article/view/705
Scherm, B., G. Ortu, M. Muzzu, M. Budroni, G. Arras & Q. Migheli. 2003. Biocontrol activity of antagonistic yeasts against Penicilliumexpansum on apple. Journal of Plant Pathology 85(3):205-213. https://www.sipav.org/main/jpp/index.php/jpp/article/view/1032
Sharma, R. R., D. Singh & R. Singh. 2009. Biological control of postharvest diseases of fruits and vegetables by microbial antagonists: A review. Biological Control 50(3):205-221. https://doi.org/10.1016/j.biocontrol.2009.05.001
Servicio de Información Agroalimentaria y Pesquera. 2010. Anuario Estadístico de la Producción Agrícola. Secretaría de Agricultura, Ganadería, Desarrollo Rural, Pesca y Alimentación (SAGARPA).
Tamayo-Urbina, C.J. 2011. Purificación y caracterización de ß 1, 3 glucanasa producida por Candida oleophila para el biocontrol de Penicillium expansum (Tesis, Centro de Investigación en Alimentación y Desarrollo, A. C.)
Xu, X.M., N. Salama, P. Jeffries & M.J. Jeger. 2010. Numerical studies of biocontrol efficacies of foliar plant pathogens in relation to the characteristics of a biocontrol agent. Phytopathology 100(8):814-821. https://doi.org/10.1094/phyto-100-8-0814
Publicado
Cómo citar
-
Resumen547
-
PDF255
-
HTML48