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1Academic Journal
المؤلفون: Ramírez Orduña, Rafael, Armenta-Quintana, José Angel, Ramírez-Orduña, Juan Manuel, Avalos-Castro, Raúl
المصدر: Biotecnia; Vol. 26 (2024): January - December; 33-41 ; Biotecnia; Vol. 26 (2024): Enero - Diciembre; 33-41 ; 1665-1456
مصطلحات موضوعية: range goats, arid zones, synchrony index, preference index, forage intake, cabras de agostadero, zonas aridas, índice de sincronización, índice de preferencia, consumo de forraje
وصف الملف: application/pdf; text/html
Relation: https://biotecnia.unison.mx/index.php/biotecnia/article/view/2103/991; https://biotecnia.unison.mx/index.php/biotecnia/article/view/2103/992; https://biotecnia.unison.mx/index.php/biotecnia/article/view/2103
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2Academic Journal
المؤلفون: Obed Gabriel Gutiérrez Gutiérrez, Carlos Raúl Morales Nieto, José Carlos Villalobos González, Oscar Ruíz Barrera, Juan Ángel Ortega Gutiérrez, Jorge Palacio Nuñez
المصدر: Revista Mexicana de Ciencias Pecuarias, Vol 10, Iss 1, p 212-226 (2019)
مصطلحات موضوعية: índice de preferencia, consumo voluntario, melinis repens, Animal culture, SF1-1100, Veterinary medicine, SF600-1100
وصف الملف: electronic resource
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المساهمون: Biblioteca Digital do IPB
مصطلحات موضوعية: Turismo, Dormidas, Hóspedes, Índice de preferência, Ajustamento sazonal, Modelo de regressão linear
وصف الملف: application/pdf
Relation: Fernandes, Paula O.; Monte, Ana Paula; Cepeda, Francisco J.T. (2001). Índice de preferência pelos destinos turísticos - região Norte de Portugal. In Conferência Internacional CIMAF’2001
الاتاحة: http://hdl.handle.net/10198/1011
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4Report
المؤلفون: Ramírez Alarcón, Sandra Milena
المساهمون: Aragón Rodríguez, Sandra Milena, Sinuco León, Diana Cristina
مصطلحات موضوعية: 632 - Lesiones, enfermedades, plagas vegetales, 633 - Cultivos de campo y de plantación, 668 - Tecnología de otros productos orgánicos, 333 - Economía de la tierra y de la energía, bioprospección, marchitez vascular, índice de preferencia de oviposición, control biológico, inhibición de crecimiento radial, Radial growth inhibition, bioprospecting, vascular wilt, oviposition preference index, biological control
وصف الملف: application/pdf
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Control Biológico de Fitopatógenos, Insectos y Ácaros, October 2018, 854–873.; Aregbesola, O. Z., Legg, J. P., Sigsgaard, L., Lund, O. S., & Rapisarda, C. (2019). Potential impact of climate change on whiteflies and implications for the spread of vectored viruses. Journal of Pest Science, 92(2), 381-392.; Bernal, L., Pesca, L., Rodríguez, D., Cantor, F., & Cure, J. (2008). Plan de muestreo directo para Trialeurodes vaporariorum (Westwood)(Hemiptera: Aleyrodidae) en cultivos comerciales de tomate. Agronomía colombiana, 26(2), 266-276.; Betancur Pérez, J. F. (2012). Identificación y caracterización molecular de virus transmitidos por mosca blanca Bemisia tabaci que infectan tomate en la región andina de Colombia (para optar título de Doctoral, Universidad Nacional de Colombia-Sede Palmira).; Blancard, D. (2011). Enfermedades del tomate: Mundi-Prensa Libros.; Bolton, M. D. (2009). Primary metabolism and plant defense—fuel for the fire. Molecular plant-microbe Interactions, 22(5), 487-497.; Bruce, A., Wheatley, R. E., Humphris, S. N., Hackett, C. A., & Florence, M. E. (2000). Production of volatile organic compounds by Trichoderma in media containing different amino acids and their effect on selected wood decay fungi. Holzforschung, 54(5), 481-486.; Chen, J.-L., Sun, S.-Z., Miao, C.-P., Wu, K., Chen, Y.-W., Xu, L.-H., Zhao, L.-X. (2016). Endophytic Trichoderma gamsii YIM PH30019: a promising biocontrol agent with hyperosmolar, mycoparasitism, and antagonistic activities of induced volatile organic compounds on root-rot pathogenic fungi of Panax notoginseng. Journal of Ginseng Research, 40(4), 315-324.; Carmona, S. L. (2018). Sandra Lorena Carmona Gutiérrez. Universidad Nacional de Colombia.; Carmona, S. L., Burbano-David, D., Gómez, M. R., Lopez, W., Ceballos, N., Castaño-Zapata, J., Simbaqueba, J., & Soto-Suárez, M. (2020). Characterization of pathogenic and nonpathogenic Fusarium oxysporum isolates associated with commercial tomato crops in the Andean Region of Colombia. Pathogens, 9(1). https://doi.org/10.3390/pathogens9010070; Cordovez, V., Mommer, L., Moisan, K., Lucas-Barbosa, D., Pierik, R., Mumm, R., Carrion, V. J., & Raaijmakers, J. M. (2017). Plant Phenotypic and Transcriptional Changes Induced by Volatiles from the Fungal Root Pathogen Rhizoctonia solani. Frontiers in Plant Science, 8, 1262. https://doi.org/10.3389/fpls.2017.01262; Contreras-Cornejo, H. A., Macías-Rodríguez, L., del-Val, E., & Larsen, J. (2016). Ecological functions of Trichoderma spp. and their secondary metabolites in the rhizosphere: interactions with plants. FEMS microbiology ecology, 92(4), fiw036.; Contreras-Cornejo HA, Macías-Rodríguez L, del-Val E, Larsen J (2018) The root endophytic fungus Trichoderma atroviride induces foliar herbivory resistance in maize plants. Appl Soil Ecol 124:45–53. https://doi.org/10.1016/j.apsoil.2017.10.004; Contarino, R., Brighina, S., Fallico, B., Cirvilleri, G., Parafati, L., & Restuccia, C. (2019). Volatile organic compounds (VOCs) produced by biocontrol yeasts. Food microbiology, 82, 70-74.; Contreras-Cornejo, H. A., Macías-Rodríguez, L., del-Val, E., & Larsen, J. (2020). Interactions of Trichoderma with plants, insects, and plant pathogen microorganisms: chemical and molecular bases. Co-Evolution of Secondary Metabolites, 263-290.; Darshanee, H. L., Ren, H., Ahmed, N., Zhang, Z. F., Liu, Y. H., & Liu, T. X. (2017). Volatile-mediated attraction of greenhouse whitefly Trialeurodes vaporariorum to tomato and eggplant. Frontiers in plant science, 8, 1285.; Davis, T. S., Crippen, T. L., Hofstetter, R. W., & Tomberlin, J. K. (2013). Microbial Volatile Emissions as Insect Semiochemicals. Journal of Chemical Ecology, 39(7), 840–859. https://doi.org/10.1007/s10886-013-0306-z; De Granada, E. G., De Amezquita, M. C. O., Mendoza, G. R. B., & Zapata, H. A. V. (2001). Fusarium oxysporum el hongo que nos falta conocer. Acta Biológica Colombiana, 6(1), 7-25.; De Vos, M., Van Oosten, V. R., Van Poecke, R. M., Van Pelt, J. A., Pozo, M. J., Mueller, M. J., & Pieterse, C. M. (2005). Signal signature and transcriptome changes of Arabidopsis during pathogen and insect attack. Molecular plant-microbe interactions, 18(9), 923-937; Dos Reis Almeida, F. B., Cerqueira, F. M., do Nascimento Silva, R., Ulhoa, C. J., & Lima, A. L. (2007). Mycoparasitism studies of Trichoderma harzianum strains against Rhizoctonia solani: evaluation of coiling and hydrolytic enzyme production. Biotechnology letters, 29(8), 1189-1193.; Ebrahimifar, J., Jamshidnia, A., & Allahyari, H. (2017). Functional response of Eretmocerus delhiensis (Hymenoptera: Aphelinidae) on Trialeurodes vaporariorum (Hemiptera: Aleyrodidae) by parasitism and host feeding. 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Evaluación de sustancias bioactivas como alternativa para el manejo de la marchitez vascular causada por Fusarium oxysporum f. sp. lycopersici [Universidad Nacional de Colombia]. http://www.bdigital.unal.edu.co/71749/1/1069723022.2019.pdf; González, I., Yailén, A., & Peteira, B. (2012). Aspectos generales de la interacción Fusarium oxysporum f. sp. lycopersici-tomate. Revista de Protección Vegetal, 27(1), 1-7; Gordon, T. R. (2017). Fusarium oxysporum and the Fusarium wilt syndrome. Annual review of phytopathology, 55, 23-39.; Guo, Y., Ghirardo, A., Weber, B., Schnitzler, J. P., Benz, J. P., & Rosenkranz, M. (2019). Trichoderma Species Differ in Their Volatile Profiles and in Antagonism Toward Ectomycorrhiza Laccaria bicolor. Frontiers in microbiology, 10, 891.; Gupta, V. G., Schmoll, M., Herrera-Estrella, A., Upadhyay, R. S., Druzhinina, I., & Tuohy, M. (Eds.). (2014). Biotechnology and biology of Trichoderma. Newnes; Harman, G. E. (2000). Myths and dogmas of biocontrol changes in perceptions derived from research on Trichoderma harzinum T-22. Plant disease, 84(4), 377-393.; Harman, G. E., Howell, C. R., Viterbo, A., Chet, I., & Lorito, M. (2004). Trichoderma species—opportunistic, avirulent plant symbionts. Nature reviews microbiology, 2(1), 43.; Hassanpour, M., Bagheri, M., Golizadeh, A., & Farrokhi, S. (2016). Functional response of Nesidiocoris tenuis (Hemiptera: Miridae) to Trialeurodes vaporariorum (Hemiptera: Aleyrodidae): effect of different host plants. Biocontrol Science and Technology, 26(11), 1489-1503.; Hung, R., Lee, S., & Bennett, J. W. (2013). Arabidopsis thaliana as a model system for testing the effect of Trichoderma volatile organic compounds. Fungal ecology, 6(1), 19-26.; Hung, R., Lee, S., & Bennett, J. W. (2015). Fungal volatile organic compounds and their role in ecosystems. Applied microbiology and biotechnology, 99(8), 3395-3405.; Inbar, M., & Gerling, D. (2008). Plant-mediated interactions between whiteflies, herbivores, and natural enemies. Annu. Rev. Entomol., 53, 431-448.; Jaber, L. R., & Ownley, B. H. (2018). Can we use entomopathogenic fungi as endophytes for dual biological control of insect pests and plant pathogens? Biological control, 116, 36-45.; Jaramillo, J., Rodriguez, V., Gil, L., Garcia, M., Climaco, J., Quevedo, D., Sanchez, G., Aguilar, P., Pinzon, L., Zapata, M., Restrepo, J., & Guzman, M. (2013). Tecnología para el cultivo de tomate bajo condiciones protegidas. In Tecnología para el cultivo de tomate bajo condiciones protegidas. https://doi.org/10.21930/978-958-740-120-2; Kant, P.; Reinprecht, Y.; Martin, C.J.; Islam, R.; Pauls, K.P.( 2011). Integration of biotechnologies: disease resistance pathology Fusarium. In: Moo-Young M. (ed.). Comprehensive Biotechnology, second edition, Elsevier, Amsterdam. p.729-743.; Kessler, A., & Baldwin, I. T. (2002). Plant responses to insect herbivory: the emerging molecular analysis. Annual review of plant biology, 53(1), 299-328.; Lee, S., Yap, M., Behringer, G., Hung, R., & Bennett, J. W. (2016). Volatile organic compounds emitted by Trichoderma species mediate plant growth. Fungal biology and biotechnology, 3(1), 7.; Lee, S., Behringer, G., Hung, R., & Bennett, J. (2019). Effects of fungal volatile organic compounds on Arabidopsis thaliana growth and gene expression. Fungal ecology, 37, 1-9.; Leonetti, P., Zonno, M. C., Molinari, S., & Altomare, C. (2017). Induction of SA-signaling pathway and ethylene biosynthesis in Trichoderma harzianum-treated tomato plants after infection of the root-knot nematode Meloidogyne incognita. Plant cell reports, 36(4), 621-631.; Macías-Rodríguez, L., Guzmán-Gómez, A., García-Juárez, P., & Contreras-Cornejo, H. A. (2018). Trichoderma atroviride promotes tomato development and alters the root exudation of carbohydrates, which stimulates fungal growth and the biocontrol of the phytopathogen Phytophthora cinnamomi in a tripartite interaction system. FEMS Microbiology Ecology, 94(9). https://doi.org/10.1093/femsec/fiy137; Lemfack, M. C., Nickel, J., Dunkel, M., Preissner, R., & Piechulla, B. (2013). mVOC: a database of microbial volatiles. Nucleic acids research, 42(D1), D744-D748.; Mahecha, L. M. H., & del Rosario Manzano, M. (2016). Efecto del viento en la dispersión a corta distancia del parasitoide Amitus fuscipennis MacGown y Nebeker (Hymenoptera: Platygasteridae) en cultivos de fríjol y habichuela. Acta Agronómica, 65(1), 80-86.; Mathys, J., De Cremer, K., Timmermans, P., Van Kerkhove, S., Lievens, B., Vanhaecke, M., & De Coninck, B. (2012). Genome-wide characterization of ISR induced in Arabidopsis thaliana by Trichoderma hamatum T382 against Botrytis cinerea infection. Frontiers in plant science, 3, 108.; Mayer, R. T., Inbar, M., McKenzie, C. L., Shatters, R., Borowicz, V., Albrecht, U. & Doostdar, H. (2002). Multitrophic interactions of the silverleaf whitefly, host plants, competing herbivores, and phytopathogens. Archives of Insect Biochemistry and Physiology: Published in Collaboration with the Entomological Society of America, 51(4), 151-169.; Mendoza-Mendoza, A., Zaid, R., Lawry, R., Hermosa, R., Monte, E., Horwitz, B. A., & Mukherjee, P. K. (2018). Molecular dialogues between Trichoderma and roots: role of the fungal secretome. Fungal Biology Reviews, 32(2), 62-85.; MC Govern, R. J., & MC Sorley, R. (2012). Management of bacterial and fungal plant pathogens by soil solarization. Soil Solarization: Theory and Practice. APS Press, Minneapolis, MN, 53-62.; MC Govern, R.J. 2015. Management of tomato diseases caused by Fusarium oxysporum. Crop Protection. 73:78-92.; McKee, G. J., & Zalom, F. G. (2009). A model of greenhouse whitefly Trialeurodes vaporariorum (Westwood) population development and management on Camarosa variety strawberry plants. Journal of Asia-Pacific Entomology, 12(3), 117-122.; McKenzie, C. L., Shatters Jr, R. G., Doostdar, H., Lee, S. D., Inbar, M., & Mayer, R. T. (2002). Effect of geminivirus infection and Bemisia infestation on accumulation of pathogenesis‐related proteins in tomato. Archives of Insect Biochemistry and Physiology: Published in Collaboration with the Entomological Society of America, 49(4), 203-214.; Moisan, K., Cordovez, V., van de Zande, E. M., Raaijmakers, J. M., Dicke, M., & Lucas-Barbosa, D. (2019). Volatiles of pathogenic and non-pathogenic soil-borne fungi affect plant development and resistance to insects. Oecologia, 190(3), 589–604. https://doi.org/10.1007/s00442-019-04433-w; Monteiro, V. N., do Nascimento Silva, R., Steindorff, A. S., Costa, F. T., Noronha, E. F., Ricart, C. A. O., . & Ulhoa, C. J. (2010). New insights in Trichoderma harzianum antagonism of fungal plant pathogens by secreted protein analysis. Current microbiology, 61(4), 298-305.; Moreno, I., Belando, A., Grávalos, C., & Bielza, P. (2018). Baseline susceptibility of Mediterranean strains of Trialeurodes vaporariorum (Westwood) to cyantraniliprole. Pest management science, 74(7), 1552-1557.; Moreno-Velandia, C. A., Izquierdo-García, L. F., Ongena, M., Kloepper, J. W., & Cotes, A. M. (2019). Soil sterilization, pathogen and antagonist concentration affect biological control of Fusarium wilt of cape gooseberry by Bacillus velezensis Bs006. Plant and Soil, 435(1-2), 39-55.; Morath, S. U., Hung, R., & Bennett, J. W. (2012). Fungal volatile organic compounds: a review with emphasis on their biotechnological potential. Fungal Biology Reviews, 26(2-3), 73-83.; Naher, L., Yusuf, U. K., Ismail, A., & Hossain, K. (2014). Trichoderma spp.: a biocontrol agent for sustainable management of plant diseases. Pak. J. Bot, 46(4), 1489-1493.; Nasruddin, A., & Mound, L. A. (2016). First record of Trialeurodes vaporariorum Westwood (Hemiptera: Aleyrodidae) severely damaging field grown potato crops in South Sulawesi, Indonesia. Journal of plant protection research, 56(2), 199-202.; Nawrocka, J., & Małolepsza, U. (2013). Diversity in plant systemic resistance induced by Trichoderma. Biological control, 67(2), 149-156.; Naznin, H. A., Kiyohara, D., Kimura, M., Miyazawa, M., Shimizu, M., & Hyakumachi, M. (2014). Systemic resistance induced by volatile organic compounds emitted by plant growth-promoting fungi in Arabidopsis thaliana. PLoS One, 9(1), e86882.; Pagans, E., Font, X., & Sánchez, A. (2006). Emission of volatile organic compounds from composting of different solid wastes: abatement by biofiltration. Journal of hazardous materials, 131(1-3), 179-186.; Peralta, I. E., Spooner, D. M., & Knapp, S. (2008). Taxonomy of wild tomatoes and their relatives (Solanum sect. Lycopersicoides, sect. Juglandifolia, sect. Lycopersicon; Solanaceae). Systematic Botany Monographs, 84.; Pineda, A., Zheng, S.-J., Van Loon, J. J. A., Pieterse, C. M. J., & Dicke, M. (2010). Helping plants to deal with insects: the role of beneficial soil-borne microbes. Trends in Plant Science, 15, 507–514. https://doi.org/10.1016/j.tplants.2010.05.007; Pym, A., Singh, K. S., Nordgren, Å., Davies, T. E., Zimmer, C. T., Elias, J., . & Bass, C. (2019). Host plant adaptation in the polyphagous whitefly, Trialeurodes vaporariorum, is associated with transcriptional plasticity and altered sensitivity to insecticides. BMC genomics, 20(1), 1-19.; Ramyabharathi, S. A., Meena, B., & Raguchander, T. (2012). Induction of chitinase and β-1, 3-glucanase PR proteins in tomato through liquid formulated Bacillus subtilis EPCO 16 against Fusarium wilt. J Today’s Biol Sci Res Rev, 1, 50-60.; Rincon, D. F., Vasquez, D. F., Rivera-Trujillo, H. F., Beltrán, C., & Borrero-Echeverry, F. (2019). Economic injury levels for the potato yellow vein disease and its vector, Trialeurodes vaporariorum (Hemiptera: Aleyrodidae), affecting potato crops in the Andes. Crop Protection, 119(January), 52–58. https://doi.org/10.1016/j.cropro.2019.01.002; Roberto N. Silva, Valdirene Neves Monteiro, Andrei Stecca Steindorf, Eriston Viera Gomes, Eliane Ferreira Noronha, Cirano J. Ulhoa, (2019) Trichoderma/pathogen/plant interaction in pre-harvest food security, Fungal Biology.; Ryu, C. Farag, M.A., Hu, C., Reddy, M.S., Wei, H., Pare, P.W., & Kloepper, J.W. (2003). Bacterial volatiles promote growth in Arabidopsis. Proceedings of the National Academy of Sciences of the USA, 100(8), 4927-4932.; Schmidt, R., Cordovez, V., De Boer, W., Raaijmakers, J., & Garbeva, P. (2015). Volatile affairs in microbial interactions. The ISME journal, 9(11), 2329-2335.; Shoresh M, Harman GE, Mastouri F (2010) Induced systemic resistance and plant responses to fungal biocontrol agents. Annu Rev Phytopathol 48:21–43; Simsek, D., Pinar, H., & Mutlu, N. (2018). Development of Fusarium oxysporum f. sp. lycopersici (fol) and Fusarium oxysporum f. sp. radicis lycopersici (forl) resistant tomato lines with the aid of marker assisted selection. Current Trends in Natural Sciences Vol, 7(13), 281-285.; Singh, B. N., Singh, A., Singh, B. R., & Singh, H. B. (2014). Trichoderma harzianum elicits induced resistance in sunflower challenged by Rhizoctonia solani. Journal of applied microbiology, 116(3), 654-666.; Sinuco, D. C., Pérez, A. C., & Moreno-Sarmiento, N. (2017). Evaluación de la actividad fungicida e identificación de compuestos orgánicos volátiles liberados por Trichoderma viride. Revista Colombiana de Biotecnología, 19(1), 63-70.; Sinuco León, D., Coconubo Guio, L.C., & Castellanos, L. (2020). Fungicidal activity of volatile organic compounds from Paenibacillus bacteria against Colletotrichum gloeosporioides. Revista Colombiana de Química, 49(1), 20-25.; Stashenko, E. E., & Martínez, J. R. (2010). Algunos aspectos prácticos para la identificación de analitos por cromatografía de gases acoplada a espectrometría de masas. Scientia Chromatographica, 2, 29–47.; Snyder, W. C., & Hansen, H. N. (1940). The Species Concept in Fusarium. American Journal of Botany, 27(2), 64–67. https://doi.org/10.1002/j.1537-2197.1940.tb14217.x; Stoppacher, N., Kluger, B., Zeilinger, S., Krska, R., & Schuhmacher, R. (2010). Identification and profiling of volatile metabolites of the biocontrol fungus Trichoderma atroviride by HS-SPME-GC-MS. Journal of Microbiological Methods, 81(2), 187-193.; Toro, V. (2017). Evaluación de método de muestreo y dinámica poblacional de mosca blanca.(Tesis de grado.Ingeniero Agrónomo). Escuela Superior Politecnica de Chimborazo. Riobamba-Ecuador, Chimborazo. p. 87.; Vásquez, R. L., & Castaño, Z. J. (2017). manejo integrado de la marchitez vascular del tomate [Fusarium oxysporum f. sp. lycopersici (SACC.) WC Snyder & HN Hansen]: UNA REVISIÓN. Revista UDCA Actualidad & Divulgación Científica, 20(2), 363-374.; Verma, M., Brar, S. K., Tyagi, R. D., Surampalli, R. Y., & Valero, J. R. (2007). Antagonistic fungi, Trichoderma spp.: panoply of biological control. Biochemical Engineering Journal, 37(1), 1-20.; Vinale, F., Sivasithamparam, K., Ghisalberti, E. L., Marra, R., Woo, S. L., & Lorito, M. (2008). Trichoderma–plant–pathogen interactions. Soil Biology and Biochemistry, 40(1), 1-10; Vinale, F., Ghisalberti, E. L., Sivasithamparam, K., Marra, R., Ritieni, A., Ferracane, R., & Lorito, M. (2009). Factors affecting the production of Trichoderma harzianum secondary metabolites during the interaction with different plant pathogens. Letters in applied microbiology, 48(6), 705-711.; Vinodkumar, S., Indumathi, T., & Nakkeeran, S. (2017). Trichoderma asperellum (NVTA2) as a potential antagonist for the management of stem rot in carnation under protected cultivation. Biological Control, 113, 58-64.; Wink, M. (2018). Plant secondary metabolites modulate insect behavior-steps toward addiction?. Frontiers in physiology, 9, 364.; Yang, Z., Yu, Z., Lei L., Xia., Z., Shao, L., Zhnag, K., & Li, G. (2012). Nematicidal effect of volatiles produced by Trichoderma sp. Journal of Asia-Pacific Entomology, 15 (4), 647–650.; Zaki, O., Weekers, F., Thonart, P., Tesch, E., Kuenemann, P., & Jacques, P. (2020). Limiting factors of mycopesticide development. Biological Control, 104220.; Zavala, J. A. (2010). Respuestas inmunológicas de las plantas frente al ataque de insectos.; Zipfel, C. (2013). Combined roles of ethylene and endogenous peptides in regulating plant immunity and growth. Proceedings of the National Academy of Sciences, 110(15), 5748-5749.; Ramírez Alarcón Sandra Milena. Compuestos orgánicos volátiles de Trichoderma spp. con actividad biocontroladora sobre el patógeno Fusarium oxysporum f. sp. lycopersici y el insecto plaga Trialeurodes vaporariorum en plantas de tomate. UNIVERSIDAD NACIONAL DE COLOMBIA SEDE BOGOTA. 2020; https://repositorio.unal.edu.co/handle/unal/77894
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5Academic Journal
المصدر: Revista Mexicana de Ciencias Pecuarias; Vol. 38, Núm. 1 (2000) ; 2448-6698 ; 2007-1124
مصطلحات موضوعية: Grazing system, Stocking rate, Diet selection, Preference index, Rotational grazing, Continuous grazing, Sistemas de pastoreo, Carga animal, Dieta, Indice de preferencia, Pastoreo rotacional, Pastoreo continuo
وصف الملف: application/pdf
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6Academic Journal
المصدر: Revista Mexicana de Ciencias Pecuarias, Vol 38, Iss 1 (2012)
مصطلحات موضوعية: Sistemas de pastoreo, Carga animal, Dieta, Indice de preferencia, Pastoreo rotacional, Pastoreo continuo, Animal culture, SF1-1100, Veterinary medicine, SF600-1100
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7Academic Journal
مصطلحات موضوعية: Turismo, Dormidas, Hóspedes, Destinos turísticos, Índice de preferência, Teoria do sentimento do investidor
Relation: Fernandes, Paula O.; Monte, Ana Paula; Castro, José Paulo (2003). A região Norte de Portugal e a preferência da procura turística: Litoral versus Interior. Revista Portuguesa de Estudos Regionais. ISSN 1645-586X. p.57-63; http://hdl.handle.net/10198/1040
الاتاحة: http://hdl.handle.net/10198/1040
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المؤلفون: Gutiérrez Gutiérrez,Obed Gabriel, Morales Nieto,Carlos Raúl, Villalobos González,José Carlos, Ruíz Barrera,Oscar, Ortega Gutiérrez,Juan Ángel, Palacio Nuñez,Jorge
المصدر: Revista mexicana de ciencias pecuarias v.10 n.1 2019
مصطلحات موضوعية: Índice de preferencia, Consumo voluntario, Melinis repens
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المؤلفون: Carolina López Escobar
المصدر: Instituto Politécnico Nacional
IPN
Repositorio Institucional de Literatura del IPN-CIIDIR Unidad Oaxacaمصطلحات موضوعية: primatología, aporte nutricional, Mastozoología, 2 [cti], hábitos alimenticios, índice de preferencia
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10Academic Journal
المؤلفون: De Bortoli, Sergio Antonio, Takao Murata, Afonso, Placidi De Bortoli, Caroline, Oliveira de Magalhães, Gustavo, Dibelli, Wanderlei
المصدر: Comunicata Scientiae, ISSN 2177-5133, Vol. 2, Nº. 3, 2011, pags. 149-155
مصطلحات موضوعية: aspectos biológicos, desenvolvimento, soja, injúria prévia, índices nutricionais, índice de preferência, biological aspects, development, soybean, previous injury, nutritional indexes, preference index
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11Academic Journal
المؤلفون: Sacido, M. B., Loholaberry, F.K., Latorre, E.
المصدر: Archivos de zootecnia, ISSN 0004-0592, Vol. 53, Nº 204, 2004, pags. 395-398
مصطلحات موضوعية: Confort animal, Índice de preferencia
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