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Determinación de la actividad antimicótica de los aceites esenciales de eucalipto, molle y romero sobre (= Fusarium sp; Pythium sp; R= hizoctonia sp y

Sclerotium sp.), agentes causales del mal de almacigo en condici= ones de laboratorio

Determination of the antifungal activity of the essential oils of Eucalyptus, Molle and Rosemary on (Fusarium sp; Pythium sp; <= u>Rhizoctonia sp and y

= Sclerotium sp.= ), causal agents of almacigo di= sease under laboratory conditions

1

Klever Xavier Valle Logroño                                   https://orcid.org/0009-0001-2353-5396

Escuela Superior Politécnica de Chimborazo, Riobamba Ecuador

kvalle1972@gmail.com

2

Rosa del Pilar Castro Gómez                                                   https://orcid.org/0000-0002-8956-697X  

Escuela Superior Politécnica de Chimborazo, Riobamba Ecuador

castroalex1711@hotmail.es

3

Celso Vladimir Benavides Enríquez                         https://orcid.org/0000-0001-5093-0140

Universidad Nacional de Chimborazo, Riobamba Ecuador

cbenavides@unach.edu.ec  

4

Carmen Viviana Basantes Vaca                                https://orcid.org/0000-0002-3447-3370

Universidad Nacional de Chimborazo, Riobamba Ecuador

carmen.basantes@unach.edu.ec

 

 

Artículo de Investigación Científica y Tecnológi= ca

Enviado: 24/11/2023

Revisado: 22/12/2023

Aceptado: 15/01/2024

Publicado:05/02/2024

DOI: https://doi.org/10.33262/concienciadigital.v7i1.= 1.2860        

<= span style=3D'font-size:12.0pt;line-height:115%;font-family:"Times New Roman",= serif; mso-fareast-font-family:"Times New Roman";color:blue;mso-fareast-language: ES'> <= /u>

 

 

Cítese:

 

&= nbsp;

Valle Logroño, K. X., Castro Gómez, R. P., Benavides Enríquez, C. V., & Basantes Vaca, C. V. (2024). Determinación de la actividad antimicótica de los aceites esenciales de eucalipto, molle y romero sobre (Fusarium sp; Pythium sp; Rhizoctonia sp y Sclerotium sp.), agentes causales del mal de almacigo en condiciones de laboratorio. ConcienciaDigital, 7(1.1), 6-27. = https://doi.org/10.33262/conci= enciadigital.v7i1.1.2860

 

 

&= nbsp;

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Palabr= as claves:

Agente patógeno, crecimiento radial, extracción de aceites, determinación                           antifúngica, capacidad de inhibición, dosis eficaz 50%.

&= nbsp;

Resumen

Introducción: La proliferación de un gran número de hongos, enfermedades y plagas, a ca= usa del desequilibrio de la micostasis del suelo, se debe principalmente al u= so irracional de pesticidas, fungicidas y al empleo de prácticas agronómicas ineficientes, como el monocultivo, siembras tradicionales y la deforestac= ión. Factores que han causado serios problemas en el equilibrio ambiental y la salud humana. Una de las posibles alternativas para regular este desequilibrio, es la aplicación los extractos de origen vegetal para el control de los hongos, plagas y enfermedades en los cultivos. Objetivos: “El objetivo de esta investigación fue determinar la actividad antimicótica y la capacidad de inhibición del proceso de extracción de los aceites esenciales de Eucalip= to, molle y romero, sobre los hongos (Fusarium sp. Pythium sp. Rhizoctonia sp= . y Sclerotium sp), agentes causales del mal de almacigo Damping off.  Aplicando la Metodología:  de aislamiento, análisis de varianza, Diseño Completamente al Azar (DCA)”, separación de medias y prueba de Tukey al 5%, Determinación de dosis efic= az 50, Capacidad de inhibición, Análisis de regresión lineal; obteniendo los siguientes. Resultados: “Los hongos en estudio son de lento crecimiento, ningún patógeno pudo poblar la superficie de la caja Petri desde las 24 a las 120 horas, presentándose el ritmo de crecimiento radial en el siguiente orden: Pythium sp.  con 32mm= , Rhizoctonia sp. con 30.82 mm, Fusarium sp. con 23.42mm y final= mente Sclerotium sp con 19 mm. Los mej= ores tratamientos fueron los destilados de Eucalipto, molle y romero y la frac= ción del agua residual de Romero que lograron inhibir el 91,46%; 93,48% y 94.2= 6% sobre Fusarium Sp., Phytium Sp., Rhizoctonia sp. y Sclerotium sp. respectivamente. Conclusiones: “La utilización de los aceites esenciales son eficientes para el control de plagas, por lo que haciendo una comparación con el fungicida Benomil medi= ante la determinación de la dosis eficaz 50% es recomendable utilizar los extractos y destilados para no causar problemas de salud, y afectaciones ambientales. Área de estudio general: Fitopatología. Área de estudio Específico: Actividad Antifúngica.

 

 

Keywords:Pathog= enic agent; Radial growth; Oil extraction; Antifungal determination; Inhibition capacity; Effective dose 50%.

 

 

Abstract

Introduction: The proliferation of a large number of fungi, diseases, and pests, due to= the imbalance of soil mycostasis, is due to the irrational use of pesticides, fungicides, and the use of inefficient agronomic practices, such as monoculture, traditional sowing, and deforestation. Factors that have cau= sed serious problems in environmental balance and human health. One of the possible alternatives to regulate this imbalance is the application of extracts of plant origin to control fungi, pests, and diseases in crops. Objectives: “The objective of= this research was to determine the antifungal activity and the inhibition capa= city of the extraction process of the essential oils of Eucalyptus, molle and rosemary, on fungi (Fusarium sp. Pythium sp. Rhizoctonia sp. and Scleroti= um sp.), causal agents of almacigo disease Damping off. Applying the Methodology: isolation, analysi= s of variance, Completely Randomized Design (DCA),” separation of means and 5% Tukey test, Determination of effective dose 50, Inhibition capacity, Line= ar regression analysis; obtaining the following. Results: “The fungi under study are slow growing, no pathogen= was able to populate the surface of the Petri dish from 24 to 120 hours, the radial growth rate being presented in the following order: Pythium sp. wi= th 32mm, Rhizoctonia sp. with 30.82 mm, Fusarium sp. with 23.42mm and finally Sclerotium sp with 19 mm. The best treatments were the distillates of Eucalyptus, Molle and Rosemary and the wastewater fraction of Rosemary, w= hich managed to inhibit 91.46%; 93.48% and 94.26% on Fusarium Sp., Phytium Sp., Rhizoctonia sp. and Sclerotium sp. respectively. Conclusions: “The use of essential oils is efficient for pest control, so making a comparison with the Benomyl fungicide by determining= the effective dose of 50%, it is advisable to use extracts and distillates to avoid causing health problems. and environmental effects. General study area: Phytopathol= ogy. Specific study area: Antifung= al Activity.<= /span>

 

 

 

 

Introducción

“Los aceites esenciales o esencias son substancias odoríferas que se encuentran almacenados en cantidades pequeñas en las cortezas, raíces, hojas, semillas= de las plantas silvestres, arbustos y árboles forestales” (Gonzales, 2022, p. = 19). “Cada aceite tiene una composición y propiedad aromática diferente, además presentan una variación en la intensidad de su tonalidad, presentando una g= ama de diferentes colores; poseen en mayor y menor grado propiedades antibiótic= as, antisépticas, antinflamatorias, antivíricas y antifúngicas” (Valle et al., 2023, p. 82).  “Las limitaciones en= el uso de antibióticos en salud pública, están promoviendo la búsqueda de nuev= os compuestos antimicrobianos. Los aceites esenciales, son una fuente natural = de compuestos activos y representan una alternativa eficaz como antibióticos p= ara tratar infecciones bacterianas(García & Latorre, 2018, p. 15).

En el Ecuador no se ha realizado un estudio para el uso industrial de los acei= tes esenciales, no se los ha explotado ni se los ha probado contra diversos tip= os de poblaciones fungosas o bacterianas, “como potenciales insecticidas y como alternativas ecológicas en los procesos de control de plagas” (Montenegro, 2022, p. 3). “El método más utilizado para el control = de plagas y enfermedades de los diferentes cultivos, es el control químico, cu= ya principal desventaja es producir alta toxicidad residual en los productos de consumo y además el deterioro del suelo por la disminución de los microorganismos benéficos. La presente investigación describe la actividad antimicótica que poseen los aceites esenciales de las especies forestales: Eucalipto (Eucaliptus Glóbulos); Molle (Schinus molle) y la espe= cie arbustiva:  Romero (Rosmarinus Oficinalis), sobre los patógenos que producen el mal= de almacigo o Damping off. “Aplicando la técnica de aislamiento, reproducción,= desarrollo micelial y esporulación de hongos de genero Fusarium moniliforme, sobre el cual se determinará la actividad antifúngica de l= os componentes activos de los aceites esenciales (El eugenol, aldehído cinámico, timol, linalol y cineol), mezclados con el PDA se  comprobará  si existe o no i= nhibición, tanto el micelio como la esporulación “ (Barrera & García, 2008), se determinará si es o no, una alternativa para el combate antifúngico contra = los patógenos que producen el mal de almacigo o Damping off, para lo cual se plantearon los siguientes objetivos:

Objetivos=

Determinar la actividad antimicótica de los aceites esenciales de Eucalipto, molle y romero sobre los agentes causales del mal de almacigo en condiciones de laboratorio, considerando los siguientes objetivos específicos:<= /span>

= 1.      Medir el ritmo de crecimiento radial de las cuatro cepas de los patógenos: Fusarium sp., Rhizoctonia    sp., Pythium sp. Y Sclerotium sp.=

= 2.      Determinar la actividad antimicótica y la capacidad de inhibición de los aceites esenciales de Eucalipto, molle y romero sobre:  = Fusarium sp., Rhizoctonia sp., Pythium sp. Y Sclerotium sp.

Metodología

Aislamiento de los agentes patógenos<= /span>

·         Recolección de ejemplares de vegetales enfermos (papas, lechuga, babaco, etc.)

·      =    selección las partes del vegetal afect= ado.

·      =    Limpieza con agua corriente de grifo durante 10 minutos

·      =    Desinfección con hipoclorito de sodio = al 5% durante 3 minutos, limpieza tres veces con agua destilada estéril.<= /o:p>

·      =    Corte de secciones de tejido más peque= ños, e ingreso a la cámara de aislamiento.  

·      =    Siembra de secciones de tejido en cajas Petri con 15 ml de PDA hasta la aparición de colonias, incubándolas a 25 + 1oC.

·      =    Resiembra una porción de micelio joven= de cada patógeno (Fusarium sp., Rhizoc= tonia sp., Pythium sp. Y Sclerotium sp.), en cajas Petri con PDA incubándolas= a 25 + 1oC.

 Ritmo de crecimiento radial

·      =    Inoculación de cepas de patógenos reactivados patógeno (Fusarium sp., Rhizoctonia sp., Pythium sp. Y Sclerotium sp.) en cajas Petri que conti= enen de 15 ml de PDA de pH 5.

·      =     Evaluaciones de las medidas de crecimiento en intervalos cada 12Horas durante 120 Horas; registrándose cada prueba valorada por tres repeticiones.

·      =    Se midió el crecimiento radial de las diferentes concentraciones y el testigo.

·      =    Se calculó la capacidad de inhibición = de los hongos; utilizando la fórmula expuesta a continuación:

CAP. INHIB=3D mm de crecimiento de = la dosis de solución    X 100  (1)

mm de crecimiento normal

Determinación de la actividad antimicótica de los aceites de (Eucalipto, Molle, Romero)

·         Obtener aceites esenciales de Eucalipt= o, Molle, Romero a través de la técnica de arrastre al vapor, utilizando 600 g= r de hoja fresca de y 3000 ml de agua, por cada extracción respectivamente.=

·      =    Obtener 5 fracciones de destilado de 4= 00ml; las fracciones 1,3,5, y el agua residual, con las que se preparó las soluci= ones designadas como D1, D3, D5, AR = y el testigo con ninguna fracción de destilado.

·      =    “Se procedió a inocular cada una de las cajas Petri con las cepas de patógenos reactivados (Fusarium sp., Rhizoctonia sp., Pythium sp. Y Sclerotium sp.) so= bre el medio PDA   con las correspondie= ntes fracciones D1, D3, D5, AR de los destilados de Eucalipto, molle y romero respectivamente” (Valle, 2003, p. 2= 3).

Determinación de la dosis eficaz 50 de un fungic= ida

·      =    Para esta determinación se aplicó el fungicida Benomyl, en concentraciones de 125, 250, 500, 750,1000 ppm correspondientes a las soluciones A, B, C, D, E, F. Cada mezcla se distribu= yó en 12 cajas Petri sobre el cual se inoculo anillos de cepas de 4mm de diáme= tro de (Fusarium sp., Rhizoctonia sp., Pyt= hium sp. Y Sclerotium sp); teniendo como testigo absoluto a una caja Petri s= in ningún fungicida por cada patógeno en estudio.

·      =    Posteriormente se evaluó el crecimiento radial del micelio en las diferentes concentraciones, así como el caso del testigo, cada tres días; durante un periodo de nueve días.

·      =    Se calculó la dosis eficaz 50, que ind= ica l el nivel y la capacidad de inhibición de los hongos patógenos en un 50%. =

Tratamientos en estudio

Tabla 1

Cuadro de tratamientos y= dosis

ACEITE ESENCIAL=

Eucalipto

Molle

Romero

Tratamientos

T1

T2

T3

T0

T1

T2

T3

T0

T1

T2

T3

T0

Dosis

D1

D2

D3

AR

D1

D2

D3

AR

D1

D2

D3

AR

Patógeno

Fusarium sp.

Fusarium sp.

Fusarium sp.

Tratamientos

T1

T2

T3

T0

T1

T2

T3

T0

T1

T2

T3

T0

Dosis

D1

D2

D3

AR

D1

D2

D3

AR

D1

D2

D3

AR

Patógeno

Phytium.  Sp.

Phytium.  Sp.

Phytium.  Sp.

Tratamientos

T1

T2

T3

T0

T1

T2

T3

T0

T1

T2

T3

T0

Dosis

D1

D2

D3

AR

D1

D2

D3

AR

D1

D2

D3

AR

Patógeno

Rhizoctonia.  Sp.

Rhizoctonia.  Sp.

Rhizoctonia.  Sp.

Tratamientos

T1

T2

T3

T0

T1

T2

T3

T0

T1

T2

T3

T0

Dosis

D1

D2

D3

AR

D1

D2

D3

AR

D1

D2

D3

AR

Patógeno

Sclerotium.  Sp.

Sclerotium.  Sp.

Sclerotium.  Sp.

Fuente: Valle (2003)

Factores de estudio

Para esta investigación se consideró los siguientes factores de estudio

·         Fracciones 1,3,5 y una fracción de AR (agua residual) de los destilados de la extracción de los aceites esenciale= s de Eucalipto (Eucaliptus Glóbulos); Molle (Schinus Molle) y Romero (Rosmarinus Oficinalis).

·      =    Los 4 agentes patógenos: Fusarium sp; Phytium sp; Rhizoctonia s= p; Sclerotium sp.

·      =    Fungicida químico Benomyl, dosis en pp= m.

Diseño experimental

Crecimiento Radial

“Para determinar el crecimiento radial “In Vitro” de los agentes patógenos se uti= lizó el método experimental Diseño Completamente al Azar (DCA). Con cuatro tratamientos y tres repeticiones “(Valle, 2003, p. 20).  

Pruebas de actividad Antimicótica

·         “Se determino mediante un diseño completamente al azar (DCA) con sesenta tratamientos y tres repeticiones de acuerdo con la tabla 1, cuadro de tratamientos y dosis, considerando tratamientos a las fracciones D1, D3, D5 y= una fracción de Agua residual de la extracción de aceites esenciales de Eucalip= to Molle y Romero, frente a los agentes patógenos (Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.) y un testigo absoluto.

·      =    Para la prueba de dosis eficaz 50 se u= tilizó seis dosis (1125,250,500,600,750,1000 ppm) con tres repeticiones y un testi= go absoluto sin substancia” (Valle, 2003, p. 24).

Análisis funcional

·         Se emplearon análisis de varianza (ADE= VA o ANOVA), con un diseño completamente al azar para todos los tratamientos aplicados, para la variable actividad antifúngica. Si existieran diferencias altamente significativas.

Tabla 2

Esquema de análisis de varianza (ADEVA) para las pruebas crecimiento radial, y determinación antifúngica

ADEVA
Para el crecimiento Radial

ADVA
Para la determinación antifúngica (Eucalipto, Molle, Romero)

FUENTES DE VARIACIÓN

g.l.<= /o:p>

g.l.<= /o:p>

Tratamientos

3

59

Repeticiones

2

2

Error

6

118

TOTAL

11

179

Fuente: Valle (2003)

Análisis de regresión

 “Se realizó un análisis de regresión lin= eal para la determinación del crecimiento in vitro de los hongos fitopatógenos frente a las concentraciones de Benomyl” (Pesántez, 2000).

Separación de medias 

“Se realizó una prueba de separación de medias mediante Tukey al 5% para determ= inar los rangos y las diferencias entre medias de los tratamientos aplicados” (Pesántez, 2000).

Resultados

Ritmo de crecimiento radial

“El análisis de varianza del crecimiento radial presento diferencias altamente significativas tanto como a las 24HOO como a las 120H00, obteniendo los siguientes resultados promedios: 3,58 y 23,42mm para fusarium sp; 4.83 y 32= mm para Phytium sp; 4.50 y 30.82mm para Rhizoctonia sp; 5,75 y 19 mm para Sclerotium sp.; los coeficientes de variación para los agentes patógenos fueron: 11.88% y 3.93% respectivamente” (Valle, 2003, p. 38).

Tabla 3

Análisis de varianza par= a el crecimiento radial de: Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium = sp. a las 24 y 120 horas

Fuentes De Variación

G.L.

Suma De
Cuadrados

Suma De
Cuadrados Medios

F. Calculado

24H00

120H00

24H00

120H00

24H00

120H00

Tratamientos

3

7,208

488,432

2,403

162,811

7,819**

141,446**

Error

8

2,450

9,208

0,307

1,151

 

 

TOTAL

11

9,666

497,641

 

 

 

 

Fuente: Valle (2003)

Tabla 4

Prueba Tukey al 5% para crecimiento radial de: Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium = sp. a las 24 y 120 horas

Ritmo
de crecimiento radial

24H00

 

120H00

Patógeno

Medias

Niveles

Patógeno

Medias

Niveles

Sclerotium sp.

5,75

A

Phytium sp.

32,00

A

Phytium sp.

4,833

   AB

Rhizoctonia sp.

30,82

    B

Rhizoctonia sp.

4,5

    AB

Fusarium sp.

23,42

       C=

Fusarium sp.

3,583

        B

Sclerotium sp.

19,00

          D

Fuente: Valle (2003)

 

Figura 1

Cuadro de prueba de Ttukey al 5%

Crecimiento ra= dial fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.=

                                Fuente: Valle (2003)

“Considerando los resultados del crecimiento fúngico motivo de estudio, se puede observar= que cada patógeno tiene un crecimiento radial diferente; según lo expuesto en l= a tabla 4, el crecimiento de Phytium sp. a las 120 horas alcanzó un promedio de 32mm; similar al estudio de Benavides (2001), quien reporta que Phytium s= p; presenta un crecimiento in vitro promedio de 3.56 mm por día, y que a las 1= 20 horas cubrió el 31.06% de la caja Petri. El hongo de Fusarium sp. es de lento crecimiento, alcanzándose los 23.42mm = de la caja Petri, resultado que difiere con la investigación realizada por Gal= legos (2016), en cuyo estudio llegó a colonizar los 45mm en 36H00” (Arcos, 2017).=

“El Hongo de Rhizoctonia tuvo un crecimiento radial de 30.42mm a las 120 H00, s= iendo un hongo de lento crecimiento, resultado que concuerda con los resultados reportados por Arcos (2017), quien obtuvo 35,75mm a las 120 horas, y difier= en con el estudio realizado por RIVAS (1994) presento 74,44 mm a las 120 horas= y Benavides que indica que Rhizoctonia, tiene un crecimiento agresivo” (Arcos, 2017).

 “El patógeno Sclerotium sp. alcanzo un crecimiento radial de 19 mm a las 120h00, considerado también como un hongo= de lento crecimiento resultado que difiere con Gallegos (2016), quien reporta = un crecimiento agresivo colonizando la caja al 100% en 60 horas” (Arcos, 2017).=

 

 

 

Figura 2

 Ritmo de crecimiento radial de Fusarium sp; Phytium sp; Rhizocto= nia sp; Sclerotium sp.

Fuente: Valle (2003)

“Considerando los resultados de los hongos en estudio, se pudo observar que cada patógeno tiene un crecimiento radial diferente, existiendo marcadas diferencias; es = así como “en primer lugar es para el hongo = Phytium sp.  tuvo una velocidad de crecimiento rápido de 6,4 mm cada 24 horas, alcanzando un crecimiento radial de 32mm a las 120 horas” (Valle, 2003, p. 41).

“En segundo lugar, seguido de Fusarium sp. Con una velocidad de crecimiento de 6,16mm cada 24 horas, alcanzando un crecimiento radial de 30.83mm a las 120 horas” (Valle, 2003, p. 29). 

“En tercer lugar, seguido por Fusarium sp. Con una velocidad de crecimiento de 4,69mm cada 24 horas alcanzando un crecimiento radial de 23,47mm a las 120 horas” (Valle, 2003, p. 30).<= /p>

“Finalmente el hongo Sclerotium. Con una velocidad crecimiento lento de 3,8mm cada 24 horas que apenas alcanzo un ritmo de crecimiento de 19mm a las 120 horas” (Valle, 2003, p. 31).

Determinación antimicótica del proceso de extrac= ción de los aceites esenciales de Eucalipto, molle y romero sobre. Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

Los resultados del análisis de varianza de la actividad antimicótica del proces= o de extracción de los aceites esenciales de Eucalipto, molle y romero sobre Fusarium sp. Pythium sp. Rhizoctonia sp.  Sclerotium sp. fueron lo= s siguientes:

Tabla 5

Análisis de varianza determinación antimicótica. Del proceso de extracción de los aceites esenci= ales de Eucalipto, molle y romero sobre: Fusarium sp. Pythium sp. Rhizoctonia sp.  Sclerotium sp.

Nombre Del Hongo

Horas de Incubación

Análisis de Varianza

Fc.

Descripción

Coeficiente de Variación

Fusarium SP.

24

  12,893**

Altamente significativo

9,80%

72

107,563**

Altamente significativo

11,90%

120

 442,820**

Altamente significativo

6,38%

Pythium sp.

24

28,073**

Altamente significativo

12,31%

72

970,232**

Altamente significativo

4,68%

120

    2446,345**<= /span>

Altamente significativo

3,44%

Rhizoctonia sp

24

300,00**

Altamente significativo

3,16%

72

211,014**

Altamente significativo

15,86%

120

549,922**

Altamente significativo

10,82%

Sclerotium sp.

24

       77,071**=

Altamente significativo

6,10%

72

     538,623**<= /span>

Altamente significativo

7,07%

120

=       335,595**

Altamente significativo

7,94%

Fuente:= Valle (2003)

Los resultados obtenidos de la prueba de Tukey al 5% a las 120 horas de la actividad antimicótica del proceso de extracción de los aceites esenciales = de Eucalipto, molle y romero, sobre los agentes patógenos: Fusarium sp., Pythium sp., Rhizoctonia sp., Sclerotium sp.  presenta varios rango= s de significación. “Los tratamientos con  el nivel A son los de crecimiento radial alto, que corresponde a los  testigos del ensayo y los tratamientos = que se encuentran en los niveles B, C, D, E, F, H, I son los tratamientos de las fracciones de destillado de los aceites esenciales que presentaron una capacidad antifúngica media, mientras que los tratamientos  J, G, E, y F  se presentaron como los mejores tratamie= ntos para el control de crecimiento de los patógenos Fusarium sp., Pythium, Rhizoctonia y Sclerotium. teniendo como resultado una capacidad antifúngica alta con un crecimiento de 2mm” (Valle, 2003, p. 38).

 

 

 

Tabla 6

Prueba TUKEY al 5% para = la determinación antimicótica del proceso de extracción de los aceites esencia= les sobre los agentes patógenos: Fusarium sp., Pythium sp., Rhizoctonia sp. y Sclerotium sp.

Prueba tukey al 5%
para Fusarium sp 120Horas

 

 Prueba tukey al 5%
para Pythium sp. 120Horas

TRATAMI= ENTOS

Promedi= o

 <= o:p>

TRATAMI= ENTOS

Promedi= o

 <= o:p>

No=

CODIGOS=

(mm)

NIVELES=

 <= o:p>

No=

CODIGOS=

(mm)

NIVELES=

13

Testigo=

23,420

A

 

13

Testigo=

31,670

A

11

D3-Ro-F= us

15,750

B

 

11

D5-Ro-P= yth

18,670

B

4

Ar-Eu-F= us

14,580

C

 

8

Ar-Mo-P= yth

11,580

C

10

D2-Ro-F= us

8,917

D

 

4

Ar-EU-P= yth

10,500

D

8

Ar-Mo-F= us

8,500

E

 

7

D5-Mo-P= yth

10,250

D

3

D5-Eu-F= us

7,833

F

 

10

D3-Ro-P= yth

8,083

E

7

D3-Mo-F= us

8,500

G

 

3

D5-EU-P= yth

6,500

F

6

D2-Mo-F= us

7,583

H

 

6

D3-Mo-P= yth

5,917

F

5

D1-Mo-F= us

6,750

I

 

2

D3-EU-P= yth

2,000

G

9

D1-Ro-F= us

2,000

J

 

9

DI-Ro-P= yth

2,000

G

2

D3-Eu-F= us

2,000

J

 

5

DI-Mo-P= yth

2,000

G

1

D1-Eu-F= us

2,000

J

 

1

DI-EU-P= yth

2,000

G

12

Ar-Ro-F= us

2,000

J

 

12

Ar-Ro-P= yth

2,000

G

 Prueba tukey al 5%
para Rhizoctonia sp.  120H= oras

 

 Prueba tukey al 5%
para Sclerotium sp. 120Horas

TRATAMI= ENTOS

Promedi= o

 <= o:p>

TRATAMI= ENTOS

Promedi= o

 <= o:p>

No=

CODIGOS=

(mm)

NIVELES=

 <= o:p>

No=

CODIGOS=

(mm)

NIVELES=

13

Testigo=

34,83

A

 <= o:p>

13

Testigo=

13,00

A

8

Ar-Mo-R= hizo

17,330

B

 <= o:p>

8

Ar-Mo-S= cler

14,33

B

11

D5-Ro-R= hizo

10,920

C

 <= o:p>

11

D5-Ro-S= cler

13,00

BC

7

D5-Mo-R= hizo

4,833

D

 <= o:p>

4

Ar-EU-S= cler

11,50

C

1

DI-EU-R= hizo

2,000

E

 <= o:p>

3

D5-EU-S= cler

6,583

D

2

D3-EU-R= hizo

2,000

E

 <= o:p>

5

DI-Mo-S= cler

5,750

D

3

D5-EU-R= hizo

2,000

E

 <= o:p>

6

D3-Mo-S= cler

6,333

D

4

Ar-EU-R= hizo

2,000

E

 <= o:p>

7

D5-Mo-S= cler

7,167

D

5

DI-Mo-R= hizo

2,000

E

 <= o:p>

10

D3-Ro-S= cler

4,00

E

6

D3-Mo-R= hizo

2,000

E

 <= o:p>

1

DI-EU-S= cler

2,00

F

9

DI-Ro-R= hizo

2,000

E

 <= o:p>

2

D3-EU-S= cler

2,00

F

10

D3-Ro-R= hizo

2,000

E

 <= o:p>

9

DI-Ro-S= cler

2,00

F

12

Ar-Ro-R= hizo

2,000

E

 <= o:p>

12

Ar-Ro-S= cler

2,00

F

Fuente: Valle (2003)

Capacidad de inhibición

Para el cálculo de la capacidad de inhibición del hongo, se aplicó la siguiente formula:

CAP. INHIB=3D Crecimiento utilizando la dosis d= e la solución (mm) x 100  (2)=

                                      Cre= cimiento normal (mm)

Tabla 7

Capacidad de inhibición = del proceso de extracción de los aceites esenciales de Eucalipto, molle y romero sobre. Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

Prueba tukey al 5%
para Fusarium sp 120Horas

 

 Prueba tukey al 5%
para Pythium sp. 120Horas

Tratamientos

Crecimiento con solución

Crecimiento sin solución

Capacidad de

 

Tratamientos

Crecimiento con solución

Crecimiento sin solución

Capacidad de

No

Códigos

(mm)

(mm)

 Inhibición

 

No

Códigos

(mm)

(mm)

Inhibición

1

D1-Eu-Fus

2,000

23,42

91,46%

 

1

DI-EU-Pyth

2,000

31,67

93,68%

2

D3-Eu-Fus

2,000

23,42

91,46%

 

2

D3-EU-Pyth

2,000

31,67

93,68%

9

D1-Ro-Fus

2,000

23,42

91,46%

 

5

DI-Mo-Pyth

2,000

31,67

93,68%

12

Ar-Ro-Fus

2,000

23,42

91,46%

 

9

DI-Ro-Pyth

2,000

31,67

93,68%

5

D1-Mo-Fus

6,750

23,42

74,38%

 

12

Ar-Ro-Pyth

2,000

31,67

93,68%

6

D2-Mo-Fus

7,583

23,42

71,18%

 

6

D3-Mo-Pyth

5,917

31,67

81,31%

7

D3-Mo-Fus

8,500

23,42

67,63%

 

3

D5-EU-Pyth

6,500

31,67

79,48%

3

D5-Eu-Fus

7,833

23,42

66,57%

 

10

D3-Ro-Pyth

8,083

31,67

74,49%

8

Ar-Mo-Fus

8,500

23,42

63,71%

 

7

D5-Mo-Pyth

10,250

31,67

67,63%

10

D2-Ro-Fus

8,917

23,42

61,91%

 

4

Ar-EU-Pyth

10,500

31,67

66,85%

4

Ar-Eu-Fus

14,580

23,42

37,75%

 

8

Ar-Mo-Pyth

11,580

31,67

63,44%

11

D3-Ro-Fus

15,750

23,42

32,75%

 

11

D5-Ro-Pyth

18,670

31,67

41,05%

 Prueba tukey al 5%
para Rhizoctonia sp.  120H= oras

 

 Prueba tukey al 5%
para Sclerotium sp. 120Horas

TRATAMIENTOS

Crecimiento con solución

Crecimiento sin solución

CAPACIDAD DE

 

TRATAMIENTOS

Crecimiento con solución

Crecimiento sin solución

CAPACIDAD DE

No

CODIGOS

(mm)

(mm)

INHIBICIÓN

 

No

CODIGOS

(mm)

(mm)

INHIBICIÓN

1

DI-EU-Rhizo

2,000

34,830

94,26%

 

1

DI-EU-Scler

2,00

19

89,87%

2

D3-EU-Rhizo

2,000

34,830

94,26%

 

2

D3-EU-Scler

2,00

19

89,87%

 

 

Tabla 7

Capacidad de inhibición = del proceso de extracción de los aceites esenciales de Eucalipto, molle y romero sobre. Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp. (continuació= n)

Prueba tukey al 5%
para Rhizoctonia sp.  120H= oras

 

Prueba tukey al 5%
para Sclerotium sp. 120Horas

 

TRATAMIENTOS

Crecimiento con solución

Crecimiento sin solución

CAPACIDAD DE

 

TRATAMIENTOS

Crecimiento con solución

Crecimiento sin solución

CAPACIDAD DE

 

No

CODIGOS

(mm)

(mm)

INHIBICIÓN

 

No

CODIGOS

(mm)

(mm)

INHIBICIÓN

3

D5-EU-Rhizo

2,000

34,830

94,26%

 

9

DI-Ro-Scler

2,00

19

89,47%

4

Ar-EU-Rhizo

2,000

34,830

94,26%

 

12

Ar-Ro-Scler

2,00

19

89,47%

5

DI-Mo-Rhizo

2,000

34,830

94,26%

 

10

D3-Ro-Scler

4,00

19

78,94%

6

D3-Mo-Rhizo

2,000

34,830

94,26%

 

5

DI-Mo-Scler

5,750

19

69,74%

9

DI-Ro-Rhizo

2,000

34,830

94,26%

 

6

D3-Mo-Scler

6,333

19

66,68%

10

D3-Ro-Rhizo

2,000

34,830

94,26%

 

3

D5-EU-Scler

6,583

19

65,37%

12

Ar-Ro-Rhizo

2,000

34,830

94,26%

 

7

D5-Mo-Scler

7,167

19

62,32%

7

D5-Mo-Rhizo

4,833

34,830

86,13%

 

4

Ar-EU-Scler

11,50

19

39,47%

11

D5-Ro-Rhizo

10,920

34,830

68,68%

 

11

D5-Ro-Scler

13,00

19

31,58%

8

Ar-Mo-Rhizo

17,330

34,830

50,24%

 

8

Ar-Mo-Scler

14,33

19

24,58%

Fuente: Valle (2003)=

“Los datos obtenidos de la capacidad de inhibición del proceso de extracción de = los aceites esenciales de eucalipto, molle y romero sobre. Fusarium sp; Phytium= sp; Rhizoctonia sp; Sclerotium sp. los tratamientos que tienen mayor capacidad = de inhibición En función de la relación del crecimiento radial con la dosis de= la solución (DI, D3, D5) sobre el crecimiento radial sin utilizar la dosis del tratamiento (Testigo)” (Valle, 2003, p. 52). “Los mejores tratamientos para combatir los patógenos en estudio son los que presentaron un alto porcentaj= e igual a: 91,46%, 93.68%, 94,36%, 89,47%.  Es decir las fracciones de destilación de los aceites esenciales de Eucalipto, molle y romero; considerando también que los tratamientos que tienen una fu= erte capacidad de inhibición son los tratamientos que presentan un porcentaje intermedio igual o mayor al 60% es decir el agua residual (Ar) de los aceit= es esenciales de la extracción de los aceites esenciales de Eucalipto, molle y romero” (Valle, 2003, p. 54).

Figura 3

Capacidad de inhibición = de eucalipto molle y romero sobre:  fu= sarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

<= /o:p>

Fuente: Valle (2003)<= o:p>

“Los resultados obtenidos en esta investigación concuerdan con los estudios realizados con la inhibición de Fus= arium moniliforme, mediante la aplicación de polvos vegetales y alguno de sus componentes químicos (Cineol, Linalol, Eugeniol, Aldehído), existiendo inhibición tanto en el micelio como la esporulación con las siguientes especies: Eucalipto, Romero, Guayaba, Nogal. Los ingredientes activos como = el eugeniol, aldehído y timol causaron la inhibición total en el desarrollo del micelio”= (Bravo et al., 2000, p. 29).

 De acuerdo con los resultados obtenidos,= los tratamientos más eficaces y activos que tienen alta capacidad de inhibición son:  D1-Eu, D3-Eu, D1-Ro, Ar-Ro, D= 1-Mo. “Los aceites esenciales de las especies forestales de Eucalipto, molle y romero, están constituidas por un alto contenido de Cineol, Eugeniol, aldehídos, compuestos alcohólicos y cetónicos” (Bautista & Leiva, 2019) , que tien= en propiedades antifúngicas, antisépticas, antibacterianas, por esta razón es = que los aceites esenciales han logrado  inhibir  de manera eficaz el crecimiento de los patógenos  (Fusarium sp, Pythium sp, Rhizoctonia s= p. Sclerotium sp.) que causan el mal de almacigo o  Damping off “ (Valle, 2003, p. 50).

“Los tratamientos de molle y de romero demuestra que existen una marcada diferen= cia en la capacidad de inhibición entre las fracciones D1, D3 y D5, “lo que se comprueba que los aceites en su composición química tienen componentes altamente volátiles” (Véliz-Jaime et al, 2019, p. 208), y se destilan fácilmente en las primeras fracciones, esto se deba posiblemente a la estructura de las hojas y de las semillas (Valle, 2003).<= /p>

 “Sin embargo podemos observar que el Agua residual de los tratamientos:  Ar-M= o y Ar-Ro, existe capacidad inhibitoria, existiendo la presencia de compuestos = de naturaleza polar, tales como flavonoides, taninos, compuestos fenólicos y glicosídicos. La capacidad inhibitoria del destilado de Romero se debe a la presencia de diterpenos, tricíclicos, Rosmari, difenol rosmarol, acido rosmarino y de igual manera en el agua residual existe la presencia del αPineno, 12-25% alcanfor, 15-30% borneol” (Valle, 2003, p. 54).

Determinación eficaz del fungicida Benomyl sobre:  Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

Para la determinación de la capacidad de inhibir a los agentes patógenos causant= es del mal de almacigo (Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp= .), se utilizó el análisis de regresión lineal, relacionando la aplicación de l= as dosis de Benomyl 125, 250, 375, 500, 625, 750, 875, 1000 ppm sobre el crecimiento radial de Fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

Tabla 8

Cuadro de capacidad de inhibición dosis eficaz 50 de Benomyl sobre fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

Patógeno

Crecimiento Rad= ial
 Normal (Mm)

Crecimiento 50%=
 (Mm)

Dosis Eficaz 50 (Ppm)

Fusarium sp.

24,75

12,38

558,57

Pythium sp.

43,11

21,55

531,41

Rhizoctonia sp.=

36,75

18,38

543,08

Sclerotium sp.<= o:p>

27,41

13,71

548,92

Fuente: Valle (2003)=

Benomyl sobre Fusarium Sp.=

·      =    Los resultados de capacidad de inhibic= ión del fungicida Benomyl sobre Fusariu= m sp., demostraron que la relación que existió entre el crecimiento Vs la concentración fue inversamente proporcional cuya ecuación fue Y=3D 24.641-0= .2016X con un r=3D 0.99878. el resultado de la dosis eficaz 50 para el hongo Fusarium sp.  Fue de 558.50 ppm que corresponde a 12.= 37 mm, “enmarcándose en la recomendación comercial de 500 a 1000 ppm” (Vega & Granados, 2023, p. 485).  Los resul= tados obtenidos en la presente investigación difieren con los obtenidos por (Pesá= ntez, 2000, p. 47), en un 16.38%, siendo su recomendación la utilización de 668 p= pm en PDA, esto se debe a que esta investigación se probó otros patógenos en o= tros medios de cultivo.

Benomyl sobre Pythium sp.<= /p>

·      =    La capacidad de inhibición de Benomyl sobre Pythium sp. ha demostrado= que las dosis más concentradas inhiben en una forma eficaz el crecimiento del hongo, es decir la relación que existió entre el crecimiento y la concentra= ción fue inversamente proporcional, cuya ecuación fue Y=3D 42.135-0.039X con r= =3D 0.987. correspondiente al valor obtenido de 531.407 ppm, correspondiente a 321.55 = mm de crecimiento radial que constituye el 50% de crecimiento del hongo; “dosis q= ue se enmarca en lo recomendado por la casa comercial que es de 500 a 1000 ppm” (= Vega & Granados, 2023, p. 489).

Benomyl sobre Rhizoctonia sp.<= /i>

·      =    La capacidad de inhibición de Benomyl sobre el hongo de Rhizoctonia sp. <= /i> de acuerdo con la regresión lineal, las = dosis más concentradas, son las que tienen una eficiente inhibición sobre el hong= o de acuerdo con los datos obtenidos; La relación entre el crecimiento Vs la con= centración fue inversamente proporcional, mediante la ecuación Y=3D36,501-0,0335 X con= un r=3D 0,992, se demostró que la dosis eficaz 50 para la capacidad de inhibición d= el fungicida Benomyl sobre Rhizoctonia sp. Fue de 543.08 ppm. Lo cual correspo= nde a 18,37mm, que constituye el 50% de crecimiento del hongo, parámetro que se enmarca en la recomendación de la casa comercial que es de 500 a 1000 ppm. =

·         Benomyl sobre Sclerotium sp.

Los resultados obtenidos del análisis de la regres= ión de la capacidad de inhibición del fungicida Benomyl sobre el Hongo Scleroti= um sp. se demuestro que las dosis con altas concentraciones son las que mayor inhibición presenta.

“La relación que existió entre el crecimiento Vs la concentración fue inversamente proporcional cuya ecuación fue Y=3D19,498 - = 0.0188X con un r =3D 0,9641; la dosis eficaz 50 para Benomyl sobre Sclerotium sp. fue de 548,92 ppm, que correspondió a 13,70 m, constituyendo el 50% del crecimiento radial del Hongo, enmarcándose en los parámetros recomendados por la casa comercial que es de 500 a 1000 ppm” (Va= lle, 2003, p. 55).

 

 

 

 

Tabla 9

Dosis de la dosis eficaz 50 fungicida Benomyl so= bre sobre fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

                          Dosis (ppm)  crecimiento (mm)  
PATÓGENO

0

125

250

500

600

750

1000

Fusarium sp.

24,75

21,00

19,50

14,50

11,40

9,80

2,00

Phytium sp.

43,11

36,25

31,00

24,75

17,25

14,75

2,00

Rhizoctonia sp.

36,75

31,75

27,50

21,25

15,40

12,75

2,00

Sclerotium

21,58

16,25

14,45

8,75

7,15

5,75

2,00

          =  Fuente: Valle (2003)

Los valores obtenidos en el cálculo de la dosis eficaz 50 para cada uno de los hongos en estudio fluctúan entre 531,407 - 558,57 ppm, mismos que se enmarc= an en los parámetros recomendados por la casa comercial.

Figura 4

Análisis de regresión de= la dosis eficaz 50 del fungicida Benomyl sobre sobre fusarium sp; Phytium sp; Rhizoctonia sp; Sclerotium sp.

<= /o:p>

Fuente: Valle (2003)

 

Conclusiones

·      =    Los patógenos en estudio Fusarium sp. Phytium sp. Rhizoctonia sp y Sclerotium Sp. son hongos de lento crecimiento= ; ya que a las 120 horas de incubación ninguno de los agentes patógenos fue capa= z de poblar en su totalidad el medio cultivo. Teniendo como resultado el siguien= te orden: en primer lugar, Phytium sp con 32 mm de diámetro, segundo lugar Rhizoctonia sp. con 30.82, tercer lugar Fusarium con 23.42 mm y por último Sclerotium con 19mm de crecimiento radial.

·      =    Los mejores tratamientos obtenidos, de= l proceso la extracción de los aceites esenciales y del agua residual de Eucalipto, Molle, Romero, fueron las dosis de las fracciones D1, D3, Ar que demostraron tener capacidad de inhibición y actividad antifúngica, logrando los niveles= más altos de bloqueo del crecimiento de los patógenos sometidos en el laborator= io en el siguiente orden Rhizoctonia 94,26%; Phytium 93,48%; Fusarium 91.46% y Sclerotium 89.47% de inhibición.

·      =    De acuerdo con los resultados obtenido= s en la presente investigación, se demuestra que es positivo realizar el control= del crecimiento del mal de almacigo o Damping off, con las fracciones de los destilados y el Agua residual el proceso de extracción de los aceites esenciales de las especies forestales Eucalipto, molle y romero, ya que alc= anzaron un alto nivel y capacidad de inhibición sobre los agentes Patógenos Fusarium sp., Rhizoctonia Sp. Phytium = sp. y Sclerotium sp.  La actividad antifúngica es comparable con la eficacia del Fungicida Benomyl, en el rango que se presenta como dosis eficaz al 50% que fluctúa entre 500 y 600 ppm, <= span style=3D'mso-spacerun:yes'> ya que presentan la misma capacidad antimicótica, pero con la ventaja de que los extractos de los aceites esenciales de las especies forestales, son más económicos, son más degradab= les, poseen más ingredientes activos ya que son una mezcla compleja de component= es activos que   y no causan alteració= n ni desequilibrio en el ambiente y la salud humana.

·      =    Para complementar el estudio de las propiedades antifúngicas, antimicóticas, bactericidas de los extractos de l= os aceites esenciales de eucalipto, molle y romero, es necesario que se compru= eben los tratamientos a campo abierto es decir en viveros, almacigas, plantacion= es, donde que el problema principal se vea afectado por la enfermedad del mal de almacigo o Damping. Off.

Conflicto de intereses

Los autores declaran no tener conflictos de interés.

Referencia <= b>Bibliografía<= o:p>

Arcos, Logroño, J. (2017). Determinación de la ActividadAntifúngi= ca de las Saponinas de la quinua frente a los agentes cusales del Damping Off (Fusarium spp., Rhizoctonia sp., Pythium sp.), 2016 [Tesis de grado, Escuela Superior Politécnica de Chimborazo, Riobamba, Ecuador]. http://dspace.espoch.edu.ec/bitstream/123456789/6676/1/236T0266.pdf<= /o:p>

Barrera, Laura. & Garcia, Laura. (2008, octubre 07). Actividad antifúngica de aceites esenciales y sus compuestos sobre el crecimiento de Fusarium sp. Revista UDO Agrícola, 8(1), 33-41. http://www.bioline.org.br/pdf?cg08005

Bautista Toro, A. M., & Leiva Piedra, J. L. (2019). Obtención de aceite esencial de molle (Schinus Mollel.) y su evaluación antifungica sobre Colletotrichumspp. In Vitro. Zhoecoen, 11(4), 101–109. https://doi.org/10.26495/tzh.v11i4.1239

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Bravo, L. Bermudes, K. & Montes, R. (2000, septiemb= re). Inhibición de Fusarium moniliforme mediante polvos vegetales y algunos de= sus componentes químicos. Revista Biblat(57), 29-34. https://biblat.unam.mx/es/revista/manejo-integrado-de-plagas/articulo/inh= ibicion-de-fusarium-moniliforme-mediante-polvos-vegetales-y-algunos-de-sus-= componentes-quimicos

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García, Diego, & Latorre, Maria. (2018). Aceites esenciales, ¿una alternativa real a los antibióticos? (Unirioja, Edit= or). Dialnet, 146, 10-18. doi: ISSN 1699-7867. https://dialnet.unirioja.es/servlet/articulo?c= odigo=3D6364454

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Valle, K. (2003). Determinación de la actividad anti= micotica de los residuales del proceso de extracción de los aceites esenciales de Eucalipto, molle y romero sobre ( Fusarium sp; Phythium sp; Rhizoctonia s= p; Sclerotium sp) Agentes causales del mal de almacigo [Tesis de grado, Escuela Superior Politécnica de Chumborazo, Riobamba, Ecuador]. https://biblioteca.espoch.edu.ec/cgi-bin/koha/opac-detail.pl?biblionumber= =3D75950&query_desc=3Dkw%2Cwrdl%3A%20valle%20logro%C3%B1o

Vega, M. & Granados, M. ( 2023, junio 19). Eficacia= de benomil y folpet sobre Fusarium oxysporum patógeno de la fresa. Revista mexicana de ciencias agrícolas, 14(3), 58-89. https://doi.org/10.29312/remexca.v14i3.3253

Véliz-Jaime, Marlys Y., González-Diaz, Yudith, & Martínez-Despaigne, Yunier. (2019). Evaluación técnica y económica del proyecto de obtención de aceites esenciales y su impacto en el medio ambiente. Tecnología Química, 39(1), 207-220. http://scielo.sld.cu/scielo.php?script=3Dsci_arttext&pid=3DS2224-6185= 2019000100207&lng=3Des&tlng=3Des.

    

 

 

 

 

 

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El artíc= ulo queda en propiedad de la revista y, por tanto, su publicación parcial y/o t= otal en otro medio tiene que ser autorizado por el director de la Revista Conciencia Digital.<= /o:p>

 

 

 

 

 


 

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M., & Leiv= a Piedra, J. L.OBTENCIÓN DE A= CEITE ESENCIAL DE MOLLE (Schinus molleL.) Y SU EVALUACIÓN ANTIFUNGICA SOBR= E Colletotrichumspp. IN VITROZHOECOEN2019101–109.114https://revistas.uss.edu.pe/index.php/tzh/artic= le/view/1239https://doi.org/10.26495/tzh.v11i4.1239<= b:RefOrder>10Pes00Report{34AE7E28-FA42-4B27-B579-AFCE8FC9C185}Pesántez, Mpruebas in vitro de la eficacia de tres especies de T= richoderma y Benomyl en el control de fusrium agente causal de pudriciones= radiculares2000Tesis de gradoRiobambaFitopatologíaEscuela Superior Poliécnica de Chimborazo= 11Mon22Report{82151F72-52B6-42C2-AB5C-234967D06508}<= /b:Guid>Montenegro.Actividad insecticida de los aceites esenciales aisla= dos en especies de la familia Rutaceae2022Quito- EcuadorFacultad de Ciencias Químicas,Universidad Central del Ecuador2-90Tesis previo a la obtención del Título= de Química Farmaceuticahttp://www.dspace.uce.edu.ec= /bitstream/25000/27285/1/FCQ-CQF-MONTENEGRO%20MICHELLE.pdf12Val03Re= port{0981E4C0-1FDB-4A05-91EC-160D7DD508DA}<= b:Author>ValleDeterminación de la actividad antimicotica de los residuales del pr= oceso de extracción de los aceites esenciales de Eucalipto, Molle y Romero= sobre ( Fusarium sp; Phythium sp; Rhizoctonia sp; Sclerotium sp) Agentes c= ausales del mal de almacigo20034-82Riobamba- EcuadorEscuela >Superior= Politécnica de Chumborazo Facultad de Recursos Naturales Escuela de Ingen= ieria Forestaltesis de gradohttps://biblioteca.espoch.edu.ec/cgi-bin/koha/opac-detail.pl?biblionum= ber=3D75950&query_desc=3Dkw%2Cwrdl%3A%20valle%20logro%C3%B1o2Ben01Report{34440723-898E-4891-9505-C2C55AD61BB3}Evaluación de Solarización y Trichoderma harzianum Rifai par= a el control de Sclerotinia Sclerotium (lib) De Bary; y el complejo Dampin= g-off Fusarium spp. Pythium spp en lechuga (lactuca sativa L) in vitro y en= semillero, en el cantón Chambo Chimborazo2001<= b:Pages>12-125B= enavides.Escuela Superior Politëcnica de Chimborazohttps= ://biblioteca.espoch.edu.ec/cgi-bin/koha/opac-detail.pl?biblionumber=3D3951= 9&shelfbrowse_itemnumber=3D5818913Gal16Report{471AF347-C47A-4607-84E1-199230110982}Gallegos.Pruebas de = antagonismo in vitro de (Trichoderma spp.) aislados en la zona de Cajabamba= frente a (Fusarium spp. Pythium spp., Rhizoctonia spp., Sclerotinia Sclero= tiorum y Sclerotium cepivorum). [2016Escuela Superior Politécnica de Chimborazo. 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ISSN: 2600-5859

Vol. 7 No. 1.1, pp. 6 – 27, febrero 2024=

 

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