976 resultados para Trichoderma spp
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El quequisque (Xanthosoma sagittifolium (L.) Schott.) pertenece a la familia Aráceas, es una de las raíces y tubérculos más importantes a nivel mundial. El principal problema que afecta el rendimiento es el mal seco ( Pythium myriotylum). Con el objetivo de evaluar el efecto de enmiendas orgánicas, Trichoderma y la siembra tardía en el manejo de mal seco ( Pythium myriotylum) en quequisque cv Blanco ( Xanthosoma sagittifolium (L.) Schott) en Nueva Guinea, se establecieron dos ensayos arreglados en diseño de bloques completos al azar. Ensayo I: Efecto de enmiendas orgánicas y Trichoderma spp. para el manejo de mal seco en vitroplantas establecidas en bancos con riego y control de arvenses, con tres bloques, seis tratamientos cada uno, ocho plantas por tratamiento por bloque. Ensayo II: Efecto de enmiendas orgánicas y trichoderma para el manejo de mal seco en vitroplantas establecidas en surcos sin riego y sin control de arvenses, con tres bloques, siete tratamientos, 15 plantas por tratamiento por bloque. Se evaluaron variables morfológicas y de rendimiento. Se realizó un análisis de varianza y prueba de separación de medias (Tukey, α = 0.05) a las variables morfológicas y de rendimiento. La siembra tardía de los ensayos I y II redujo el efecto de Pythium myriotylum sobre las plantas independientemente de los tratamientos evaluados. Las plantas tratadas con Trichoderma registraron mejor comportamiento morfológico y de rendimiento. La sobrevivencia de las plantas del Ensayo I fue de 70 % y en el Ensayo II fue de 83%, las plantas tratadas con Trichoderma registraron un porcentaje de sobrevivencia de 83% en el Ensayo I y 94 % en el Ensayo II. El testigo (sin aplicación) en el Ensayo I registró un 63% de sobrevivencia y el Ensayo II un 67%. Dry + humega y Trichoderma spp. registraron mejor comportamiento morfológico y de rendimiento.
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El objetivo de la presente investigación fue seleccionar aislamientos endofíticos de Trichoderma spp., para el biocontrol de Fusarium oxysporum f. sp. cubense raza 1. Se evaluaron los tres aislamientos más patogénicos FOC2, FOC4, FOC8 obtenidos del criobanco del Laboratorio de Fitopatología del CATIE, en una prueba de antibiosis y posteriormente se procedió a realizar la prueba de biocontrol con veinte aislamientos endofíticos de Trichoderma spp. y dos aislamientos FOC2 y FOC4 en vitroplantas de Gros Michel (AAA)en condiciones de invernadero. Por medio de la técnica de cocultivo veinte aislados de Trichoderma spp., inhibieron el crecimiento radial de FOC hasta en un 53,46%. En el bioensayo de biocontrol,los aislamientos endofíticos de Trichoderma spp., presentaron un mínimo porcentaje de incidencia con 37,5% del tratamiento TJ5, en comparación al testigo absoluto que no presentó incidencia. Así mismo los tratamientos TC9, TP3 y TCL1 redujeron desde un 92% hasta 90% los síntomas externos en comparación a los testigos referenciales. Los síntomas internos del cormo se redujeron hasta un 74% por el tratamiento TC9. Adicionalmente se detectó que plantas protegidas con los aislamientos endofíticos de Trichoderma spp., promovieron el crecimiento vegetativo de la planta en peso de la raiz y follaje.
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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O uso de microrganismos é uma alternativa para o controle de doenças em plantas. Todavia, é prudente verificar a interação desse com os demais métodos de controle empregados em determinada cultura. Dessa forma, objetivou-se avaliar a fungitoxicidade dos herbicidas sobre o crescimento e desenvolvimento dos isolados de Trichoderma spp. Utilizou-se o delineamento inteiramente casualizado, em esquema fatorial 6 x 6 x 4, com quatro repetições. O fator A correspondeu aos herbicidas pendimethalin, clomazone, carfentrazone-ethyl, oxadiazon, thiobencarb + propanil e byspiribac-sodium; o fator B, às doses dos herbicidas - 0, 25, 50, 75, 100 e 200% da dose recomendada; e o fator C, aos isolados de Trichoderma spp. AJAM 18, CE 66, TRI 01 e TRI 02. O ensaio foi realizado em condições in vitro; avaliaram-se o crescimento micelial radial (CMR) e a esporulação dos isolados após aplicação dos herbicidas. Observaram-se diferenças de sensibilidade dos isolados para o mesmo produto testado. O oxadiazon reduziu o CMR dos isolados AJAM 18 e TRI 01 em 66 e 35%, respectivamente. No entanto, reduziu apenas 16% do CMR do isolado TRI 02 e não alterou o CMR do isolado CE 66 mesmo em 200% da dose recomendada. Verificaram-se diferentes efeitos dos produtos em cada isolado. A mistura comercial de thiobencarb+propanil foi altamente tóxica aos isolados de Trichoderma spp., com reduções em torno de 85% no CMR e no número de esporos. Por outro lado, o byspiribac-sodium pouco afetou os isolados, apresentando reduções inferiores a 10% no CMR e na esporulação. O carfentrazone-ethyl e byspiribac-sodium demonstraram ser compatíveis com os isolados de Trichoderma spp. estudados.
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Gummosis is among the main fungal diseases of the citrus. It is caused by Phytophthora sp. and usually shows up in the lap of the plant, provoking rottenness and gum exudation, and expands causing the plant death for constrictions in the cambium or phloem which interrupts the descending flow of sap. The objective of this work was to evaluate the antagonistic in vitro activity of Trichoderma spp. to the fungi Phytophthora citrophthora. Phytophthora citrophthora was exposed to five environments of antagonism (without antagonist and with four strains of Trichoderma viride, T. virens, T. harzianu and T stromaticum), The in vitro essay was accomplished through the method of paired cultures. A completely randomized desing was used with five treatments and three replications, and each plot was represented by three petri dishes. The isolates of Trichoderma demonstrated significant effect in the inhibition of the mycelial growth of the fungi Phytophthora citrophthora, and the fungi Trichoderma stromaticum presented larger antagonism to the fungi P. citrophthora while the T harzianum presented antagonism smaller.
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Pós-graduação em Ciências Biológicas (Microbiologia Aplicada) - IBRC
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Fundação de Amparo à Pesquisa do Estado de São Paulo (FAPESP)
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Pós-graduação em Microbiologia Agropecuária - FCAV
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Los objetivos de este trabajo fueron: determinar la factibilidad de la utilización combinada de dos métodos de control biológico: la aplicación del hongo antagonista Trichoderma spp. y la biofumigación con la parte aérea de Brassica juncea en el estadio de fin de fructificación; evaluar su efecto sobre el crecimiento del patógeno Fusarium graminearum. Se trituraron plantas de B. juncea y se colocaron en recipientes de plástico en dosis de 5 y 10 g. Sobre el material triturado se apoyó una caja de Petri con agar papa glucosado al 2%, que contenía un disco con micelio de F. graminearum o Trichoderma spp. o ambos hongos. Los recipientes de plástico se cerraron e incubaron a 25±2°C en oscuridad durante 7 días. Finalizado este período, se midió el diámetro de las colonias. Se obtuvieron los siguientes resultados: i) cuando se biofumigaron por separado, no se observó efecto fungistático de B. juncea sobre Trichoderma spp. ni sobre F. graminearum; ii) en ausencia del biofumigante, Trichoderma spp. inhibió significativamente el crecimiento de las colonias de F. graminearum, iii) la combinación de Trichoderma spp. y la biofumigación con B. juncea mostró un efecto sinérgico sobre el control del crecimiento miceliar de F. graminearum. Los resultados in vitro sugieren que el crecimiento de Trichoderma spp. y su potencial efecto de biocontrol sobre F. graminearum, no son afectados por la biofumigación con B. juncea. La utilización combinada de Trichoderma spp. y la biofumigación con B. juncea, tendría un efecto sinérgico sobre el control del crecimiento de F. graminearum.
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2007
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Trichoderma spp are effective competitors against other fungi because they are mycoparasitic and produce hydrolytic enzymes and secondary metabolites that inhibit the growth of their competitors. Inhibitory compounds produced by Trichoderma aggressivum, the causative agent of green mold disease, are more toxic to the hybrid off-white strains of Agaricus bisporus than the commercial brown strains, consistent with the commercial brown strain’s increased resistance to the disease. This project looked at the response of hybrid off-white and commercial brown strains of A. bisporus to the presence of T. aggressivum metabolites with regard to three A. bisporus genes: laccase 1, laccase 2, and manganese peroxidase. The addition of T. aggressivum toxic metabolites had no significant effect on MnP or lcc1 transcript abundance. Alternatively, laccase 2 appears to be involved in resistance to T. aggressivum because the presence of T. aggressivum metabolites results in higher lcc2 transcript abundance and laccase activity, especially in the commercial brown strain. The difference in laccase expression and activity between A. bisporus strains was not a result of regulatory or coding sequence differences. Alteration of laccase transcription by RNAi resulted in transformants with variable levels of laccase transcript abundance. Transformants with a low number of lcc transcripts were very sensitive to T. aggressivum toxins, while those with a high number of lcc transcripts had increased resistance. These results indicated that laccase activity, in particular that encoded by lcc2, serves as a defense response of A. bisporus to T. aggressivum toxins and contributes to green mold disease resistance in commercial brown strains.
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It has been observed in the present study that when spores of Trichoderma harzianum (Th-2) isolate were applied in the sandy clay loam soil and continuously incubated for 4 months at 25 degrees C and 35 degrees C and at three water potentials, -0.03 MPa, -0.3 MPa and <-50 MPa, it has resulted in significantly reduced (P<0.05), growth of Fusarium oxysporum ciceri (Foc) on branches of chickpea plant. The pathogen population was greatly reduced in the moist soil (43 MPa) when compared with the wet soil (-0.03 MPa) at both temperatures which was indicated by greater colonization and growth of T. harzanum-2 on the branch pieces of chickpea plants. The pathogen was completely eradicated from the chickpea branch pieces, after 6 months at 35 degrees C in the moist soil. In air-dry soil (<-50 MPa), Foc survived in 100% of the branch pieces even after 6 months at both temperatures. When chickpea plant branch pieces having pathogen was sprayed with Th-2 antagonistic isolates of Trichoderma spp., the Th-2 isolate killed the pathogen up to minimum level (10-12%) after 5 months at 35 degrees C in the sandy clay loam soil. It can be concluded that in chickpea growing rainfed areas of Pakistan having sandy clay loam soil, Foc can be controlled by using specific Trichoderma spp., especially in the summer season as after harvest of the crop the temperature increased up and there is rainfall during this period which makes the soil moist. This practice will be able to reduce the inoculum of Foc during this hot period as field remain fallow till next crop is sown in most of the chickpea growing rainfed areas of Pakistan.
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Trichoderma isolates were obtained from diseased leaves and fruit collected from plantations in the main banana production area in Northern Queensland. Phylogenetic analyses identified the Trichoderma isolates as T. harzianum and T. virens. The Trichoderma spp. were found to be antagonistic against the banana leaf pathogens Mycosphaerella musicola, Cordana musae, and Deight-oniella torulosa in vitro. Several products used by the banana industry to increase production, including molasses, Fishoil and Seasol, were tested as food source for the Trichoderma isolates. The optimal food substrate was found to be molasses at a concentration of 5 %, which when used in combination with a di-1-p-menthene spreader-sticker enhanced the survivability of Trichoderma populations under natural conditions. This formulation suppressed D. torulosa development under glasshouse conditions. Furthermore, high sensitivity was observed towards the protectant fungicide Mancozeb but Biopest oil (R), a paraffinic oil, only marginally suppressed the growth of Trichoderma isolates in vitro. Thus, this protocol represents a potential to manage banana leaf pathogens as a part of an integrated disease approach.