Nuevas estrategias para el control biológico de fitopatógenos

dc.audienceTécnicospa
dc.audienceProfesionalspa
dc.audienceInvestigadorspa
dc.audience.contentCientíficospa
dc.contributor.authorCotes Prado, Alba Marina
dc.contributor.authorLewis Mosher, Stephen
dc.contributor.authorBarrera Cubillos, Gloria Patricia
dc.contributor.authorKobayashi, Sadao
dc.contributor.authorElad, Yigal
dc.coverage.countryColombiaspa
dc.coverage.researchcenterC.I Tibaitatá
dc.date.accessioned2018-12-05T15:24:00Z
dc.date.available2018-12-05T15:24:00Z
dc.date.issued2018
dc.description.abstractLas tecnologías biológicas, incluyendo el uso de microorganismos biocontroladores, están adquiriendo una importancia primordial en la producción agrícola. Sin embargo, la mayoría de los enfoques para el control biológico de enfermedades de las plantas ha tenido un alcance limitado. Un ejemplo de esto lo representa el hecho de que, en las últimas décadas, en general, se han utilizado agentes de biocontrol individuales para controlar un solo patógeno. Esto puede explicar parcialmente la respuesta inconsistente que se observa frecuentemente, ya que dichos agentes individuales pueden ser inactivos en varios de los ambientes en los que se aplican o contra diferentes patógenos que atacan a la planta huésped. Lograr un control de amplio espectro de patógenos por los antagonistas que se apliquen individualmente o en consorcio sigue siendo, en gran medida, un objetivo no cumplido para la explotación eficaz del control biológico, así como ampliar los usos de los agentes de control biológico para lograr efectos complementarios, tales como tolerancia a factores abióticos limitantes como la sequía y la salinidad, biofertilización y biorremediación, entre otros. Además, en general, se han usado los mismos microorganismos biocontroladores y los descubrimientos de nuevos agentes de control biológico son muy limitados. Sin embargo, estas investigaciones requieren de métodos de tamizado o screening de alta eficiencia que permitan evaluar de forma rápida muchos microorganismos. De otra parte, existen múltiples patógenos para los cuales no se han desarrollado alternativas de control biológico efectivas, como es el caso de muchas bacterias fitopatógenas y de virus, donde existe un potencial inexplorado. Así mismo, el desarrollo de nuevos componentes de manejo que puedan integrarse a los agentes de control biológico para mejorar la respuesta de control tiene aún mucho espacio de investigación.spa
dc.format.mimetypeapplication/pdf
dc.identifier.instnameinstname:Corporación colombiana de investigación agropecuaria AGROSAVIAspa
dc.identifier.isbn978-958-740-254-4 (e-book)
dc.identifier.reponamereponame:Biblioteca Digital Agropecuaria de Colombiaspa
dc.identifier.repourlrepourl:https://repository.agrosavia.co
dc.identifier.urihttp://hdl.handle.net/20.500.12324/34158
dc.language.isospa
dc.publisher‎‎Corporación colombiana de investigación agropecuaria - AGROSAVIAspa
dc.publisher.placeBogotá (Colombia)spa
dc.relation.citationendpage921
dc.relation.citationstartpage878
dc.relation.ispartofbook[Control biológico de fitopatógenos, insectos y ácaros: Aplicaciones y perspectivas V. 2.](http://hdl.handle.net/20.500.12324/33519)spa
dc.relation.referencesAbdelfattah, A., Wisniewski, M., Droby, S., & Schena, L. (2016). Spatial and compositional variation in the fungal communities of organic and conventionally grown apple fruit at the consumer point-of-purchase. Horticulture Research, 3, 16047. doi:10.1038/hortres.2016.47.spa
dc.relation.referencesAbo-Amer, A. (2011). Biodegradation of diazinon by Serratia marcescens DI101 and its use in bioremediation of contaminated environment. Journal of Microbiology and Biotechnology, 21(1), 71-80.spa
dc.relation.referencesAdams, P., De-Leij, F. A. A. M., & Lynch, J. M. (2007). Trichoderma harzianum rifai 1295-22 mediates growth promotion of crack willow (Salix fragilis) saplings in both clean and metal-contaminated soil. Microbial Ecology, 54(2), 306-313.spa
dc.relation.referencesAgler, M. T., Ruhe, J., Kroll, S., Morhenn, C., Kim, S.- T., Weigel, D., & Kemen, E. M. (2016). Microbial hub taxa link host and abiotic factors to plant microbiome variation. Plos Biology, 14(1): e1002352. doi:10.1371/ journal.pbio.1002352.spa
dc.relation.referencesAino, M., Iwamoto, Y., Hashimoto, Y., & Ishikawa, K. (2007). Effect of the endophytic bacteria in lettuce (Lactuca sativa) roots suppressing infection of Olpidium virulentus viral vector for lettuce big-vein virus and possibility of the control of lettuce big-vein diseases by the endophytic bacteria. Kasai, Japón: Technology Center for Agriculture, Forestry and Fisheriesspa
dc.relation.referencesAlabouvette, C., & Cordier, C. (2011). Risks of microbial biocontrol agents and regulation: are they in balance? En R. U. Ehlers (Eds.). Regulation of biological control agents (pp. 157-173). Dordrecht, Holanda: Springer.spa
dc.relation.referencesAlgam, S. A., Xie, G., Li, B., Yu, S., Su, T., & Larsen, J. (2010). Effects of Paenibacillus strains and chitosan on plant growth promotion and control of Ralstonia wilt in tomato. Journal of Plant Pathology, 92(3), 593-600.spa
dc.relation.referencesAltomare, C., Norvell, W. A., Björkman, T., & Harman, G. E. (1999). Solubilization of phosphates and micronutrients by the plant-growth-promoting and biocontrol fungus Trichoderma harzianum rifai 1295-22. Applied and Environmental Microbiology, 65(7), 2926-2933.spa
dc.relation.referencesAndreoni, V., Colombo, M., Colombo, A., Vecchio, A., & Finoli, C. (2003). Cadmium and zinc removal by growing cells of Pseudomonas putida strain B14 isolated from a metal-impacted soil. Annals of Microbiology, 53(2), 135-148.spa
dc.relation.referencesArshad, M., & Frankenberger Jr., W. T. (1993). Microbial production of plant growth regulators. En F. B. Metting Jr. (Ed.), Soil microbial ecology: applications in agricultural and environmental management (pp. 307-347). Nueva York, EE. UU.: Marcell Dekker Inc.spa
dc.relation.referencesBadawy, M. E. I., & Rabea, E. I. (2011). A biopolymer chitosan and its derivatives as promising antimicrobial agents against plant pathogens and their applications in crop protection. International Journal of Carbohydrate Chemistry, 2011, 1-29. doi:10.1155/2011/460381.spa
dc.relation.referencesBadri, D. V., & Vivanco, J. M. (2009). Regulation and function of root exudates. Plant, Cell & Environment, 32(6), 666- 681. doi:10.1111/j.1365-3040.2008.01926.x.spa
dc.relation.referencesBaider, A., & Cohen, Y. (2003). Synergistic interaction between baba and mancozeb in controlling Phytophthora infestans in potato and tomato and Pseudoperonospora cubensis in cucumber. Phytoparasitica, 31(4), 399-409. doi:10.1007/BF02979812spa
dc.relation.referencesBarber, M. S., Bertram, R. E., & Ride, J. P. (1989). Chitin oligosaccharides elicit lignification in wounded wheat leaves. Physiological and Molecular Plant Pathology, 34(1), 3-12. doi:10.1016/0885-5765(89)90012-X.spa
dc.relation.referencesBehlau, F., Canteros, B. I., Minsavage, G. V., Jones, J. B., & Graham, J. H. (2011). Molecular characterization of copper resistance genes from Xanthomonas citri subsp. citri and Xanthomonas alfalfae subsp. citrumelonis. Applied and Environmental Microbiology, 77(12), 4089-4096. doi:10.1128/AEM.03043-10.spa
dc.relation.referencesBender, C. L., & Cooksey, D. A. (1986). Indigenous plasmids in Pseudomonas syringae pv. tomato: conjugative transfer and role in copper resistance. Journal of Bacteriology, 165(2), 534-541.spa
dc.relation.referenceseneduzi, A., Ambrosini, A., & Passaglia, L. M. (2012). Plant growth-promoting rhizobacteria (pgpr): their potential as antagonists and biocontrol agents. Genetics and Molecular Biology, 35(4), 1044-1051.spa
dc.relation.referencesBenhamou, N., Kloepper, J. W., & Tuzun, S. (1998). Induction of resistance against Fusarium wilt of tomato by combination of chitosan with an endophytic bacterial strain: ultrastructure and cytochemistry of the host response. Planta, 204(2), 153-168. doi:10.1007/ s004250050242.spa
dc.relation.referencesBerg, G., Eberl, L., & Hartmann, A. (2005). The rhizosphere as a reservoir for opportunistic human pathogenic bacteria. Environmental Microbiology, 7(11), 1673-1685. doi:10.1111/j.1462-2920.2005.00891.x.spa
dc.relation.referencesBerg, G., Grube, M., Schloter, M., & Smalla, K. (2014). Unraveling the plant microbiome: looking back and future perspectives. Frontiers in Microbiology, 5, 148. doi:10.3389/fmicb.2014.00148.spa
dc.relation.referencesBerg, G., Rybakova, D., Grube, M., & Koberl, M. (2016). The plant microbiome explored: implications for experimental botany. Journal of Experimental Botany, 67(4), 995-1002. doi:10.1093/jxb/erv466.spa
dc.relation.referencesBhattacharyya, P., & Jha, D. (2012). Plant growth-promoting rhizobacteria (pgpr): emergence in agriculture. World Journal of Microbiology and Biotechnology, 28(4), 1327- 1350. doi:10.1007/s11274-011-0979-9.spa
dc.relation.referencesBosmans, L., De Bruijn, I., Gerards, S., Moerkens, R., Van Looveren, L., Wittemans, … Lievens, B. (2017). Potential for biocontrol of hairy root disease by a Paenibacillus clade. Frontiers in Microbiology 8, 1-11. doi:10.3389/ fmicb.2017.00447.spa
dc.relation.referencesBulgarelli, D., Rott, M., Schlaeppi, K., Ver Loren van Themaat, E., Ahmadinejad, N., Assenza, F., ... SchulzeLefert, P. (2012). Revealing structure and assembly cues for Arabidopsis root-inhabiting bacterial microbiota. Nature, 488(7409), 91-95. doi:10.1038/nature11336.spa
dc.relation.referencesCai, F., Yu, G., Wang, P., Wei, Z., Fu, L., Shen, Q., Chen, W. (2013). Harzianolide, a novel plant growth regulator and systemic resistance elicitor from Trichoderma harzianum. Plant Physiology and Biochemistry, 73, 106- 113. doi:10.1016/j.plaphy.2013.08.011.spa
dc.relation.referencesCalvo, P., Nelson, L., & Kloepper, J.W. (2014). Agricultural uses of plant biostimulants. Plant Soil, 383(1-2), 3-41. doi:10.1007/s11104-014-2131-8spa
dc.relation.referencesCampbell, R. (1991). Biological control of microbial plant pathogens. Nueva York, EE. UU.: Cambridge University Press.spa
dc.relation.referencesCastillo, D., & Sword, G. A. (2015). The endophytic fungal entomopathogens Beauveria bassiana and Purpureocillium lilacinum enhance the growth of cultivated cotton (Gossypium hirsutum) and negatively affect survival of the cotton bollworm (Helicoverpa zea). Biological Control, 89, 53-60.spa
dc.relation.referencesChakroun, H., Mechichi, T., Martinez, M. J., Dhouib, A., & Sayadi, S. (2010). Purification and characterization of a novel laccase from the ascomycete Trichoderma atroviride: application on bioremediation of phenolic compounds. Process Biochemistry, 45(4), 507-513. doi:10.1016/j. procbio.2009.11.009.spa
dc.relation.referencesChen, F., Gao, Y., Chen, X., Yu, Z., & Li, X. (2013). Quorum quenching enzymes and their application in degrading signal molecules to block Quorum sensing-dependent infection. International Journal of Molecular Sciences, 14(9), 17477-17500. doi:10.3390/ijms140917477.spa
dc.relation.referencesChen, S.-K., Edwards, C. A., & Subler, S. (2001). Effects of the fungicides benomyl, captan and chlorothalonil on soil microbial activity and nitrogen dynamics in laboratory incubations. Soil Biology & Biochemistry, 33(14), 1971-1980.spa
dc.relation.referencesChen, T. H., & Murata, N. (2011). Glycinebetaine protects plants against abiotic stress: mechanisms and biotechnological applications. Plant, Cell & Environment, 34(1), 1-20. doi:10.1111/j.1365-3040.2010.02232.x.spa
dc.relation.referencesChowdhury, S. P., Uhl, J., Grosch, R., Alquéres, S., Pittroff, S., Dietel, K., … Hartmann, A. (2015). Cyclic lipopeptides of Bacillus amyloliquefaciens subsp. plantarum colonizing the lettuce rhizosphere enhance plant defense responses toward the bottom rot pathogen Rhizoctonia solani. Molecular Plant-Microbe Interactions, 28(9), 984-995. doi:10.1094/MPMI-03-15-0066-R.spa
dc.relation.referencesCiverolo, E., & Keil, H. (1969). Inhibition of bacterial spot of peach foliage by Xanthomonas pruni bacteriophage. Phytopathology, 59, 1966-1967.spa
dc.relation.referencesCohen, E. (2001). Chitin synthesis and inhibition: a revisit. Pest Management Science, 57(10), 946-950. doi:10.1002/ ps.363.spa
dc.relation.referencesColla, G., Rouphael, Y., Canaguier, R., Svecova, E., & Cardarelli, M. (2014). Biostimulant action of a plantderived protein hydrolysate produced through enzymatic hydrolysis. Frontiers in Plant Science, 5, 448. doi:10.3389/ fpls.2014.00448.spa
dc.relation.referencesConrath, U., Domard, A., & Kauss, H. (1989). Chitosanelicited synthesis of callose and of coumarin derivatives in parsley cell suspension cultures. Plant Cell Reports, 8(3), 152-155. doi:10.1007/BF00716829.spa
dc.relation.referencesCooksey, D. A. (1990). Genetics of bactericide resistance in plant pathogenic bacteria. Annual Review of Phytopathology, 28, 201-219. doi:10.1146/annurev. py.28.090190.001221.spa
dc.relation.referencesCooksey, D. A. (1994). Molecular mechanisms of copper resistance and accumulation in bacteria. FEMS Microbiology Reviews, 14(4), 381-386.spa
dc.relation.referencesCoons, G. H., & Kotila, J. E. (1925). The transmissible lytic principle (bacteriophage) in relation to plant pathogens. Phytopathology, 15, 357-370.spa
dc.relation.referencesKöhle, H., Jeblick, W., Poten, F., Blaschek, W., & Kauss, H. (1985). Chitosan-Elicited Callose Synthesis in Soybean Cells as a Ca2+ -Dependent Process. Plant Physiology, 77(3), 544-551.spa
dc.relation.referencesKrishnamurthy, S. R., Janowski, A. B., Zhao, G., Barouch, D., & Wang, D. (2016). Hyperexpansion of rna bacteriophage diversity. Plos Biology, 14(3): e1002409. doi:10.1371/journal.pbio.1002409.spa
dc.relation.referencesKuchitsu, K., Kosaka, H., Shiga, T., & Shibuya, N. (1995). epr evidence for generation of hydroxyl radical triggered by N-acetylchitooligosaccharide elicitor and a protein phosphatase inhibitor in suspension-cultured rice cells. Protoplasma, 188(1-2), 138-142. doi:10.1007/ BF01276805.spa
dc.relation.referencesKusaba, M. (2004). rna interference in crop plants. Current Opinion in Biotechnology, 15(2), 139-143. doi:10.1016/j. copbio.2004.02.004.spa
dc.relation.referencesLee, Y. A., Hendson, M., Panopoulos, N. J., & Schroth, M. N. (1994). Molecular cloning, chromosomal mapping, and sequence analysis of copper resistance genes from Xanthomonas campestris pv. juglandis: homology with small blue copper proteins and multicopper oxidase. Journal of Bacteriology, 176(1), 173-188.spa
dc.relation.referencesLi, R.-X., Cai, F., Pang, G., Shen, Q.-R., Li, R., & Chen, W. (2015). Solubilisation of phosphate and micronutrients by Trichoderma harzianum and its relationship with the promotion of tomato plant growth. Plos One, 10(6): e0130081. doi:10.1371/journal.pone.0130081.spa
dc.relation.referencesLindow, S. E., & Brandl, M. T. (2003). Microbiology of the Phyllosphere. Applied and Environmental Microbiology, 69(4), 1875-1883. doi:10.1128/AEM.69.4.1875- 1883.2003.spa
dc.relation.referencesLodewyckx, C., Vangronsveld, J., Porteous, F., Moore, E. R. B., Taghavi, S., Mezgeay, M., & der Lelie, D. v. (2002). Endophytic bacteria and their potential applications. Critical Reviews in Plant Science, 21(6), 583-606. doi:10.1080/0735-260291044377.spa
dc.relation.referencesLugtenberg, B., & Kamilova, F. (2009). Plant-GrowthPromoting Rhizobacteria. Annual Review of Microbiology, 63, 541-556. doi:10.1146/annurev. micro.62.081307.162918.spa
dc.relation.referencesLundberg, D. S., Lebeis, S. L., Paredes, S. H., Yourstone, S., Gehring, J., Malfatti, S., … Dangl, J. L. (2012). Defining the core Arabidopsis thaliana root microbiome. Nature, 488 (7409), 86-90. doi:10.1038/nature11237.spa
dc.relation.referencesMaiyappan, S., Amalraj, E., Santhosh, A., & Peter, A. (2010). Isolation, evaluation and formulation of selected microbial consortia for sustainable agriculture. Journal of Biofertilizers & Biopesticides, 2(2), 109. doi:10.4172/2155- 6202.1000109.spa
dc.relation.referencesMajumdar, R., Rajasekaran, K., & Cary, J. W. (2017). rna interference (RNAi) as a potential tool for control of mycotoxin contamination in crop plants: Concepts and considerations. Frontiers in Plant Science, 8, 200. doi:10.3389/fpls.2017.00200.spa
dc.relation.referencesMallmann, W., & Hemstreet, C. (1924). Isolation of an inhibitory substance from plants. Agricultural Research, 28(6), 599-602. Recuperado de https://naldc.nal.usda. gov/download/IND43966880/PDF.spa
dc.relation.referencesMao, Y.-B., Cai, W.-J., Wang, J.-W., Hong, G.-J., Tao, X.-Y., Wang, L.-J., … Chen, X.-Y. (2007). Silencing a cotton bollworm P450 monooxygenase gene by plant-mediated RNAi impairs larval tolerance of gossypol. Nature Biotechnology, 25(11), 1307-1313. doi:10.1038/nbt1352.spa
dc.relation.referencesMarques, M. P., Walshe, K., Doyle, S., Fernandes, P., & De Carvalho, C. C. (2012). Anchoring high-throughput screening methods to scale-up bioproduction of siderophores. Process Biochemistry, 47(3), 416-421. h doi:10.1016/j.procbio.2011.11.020.spa
dc.relation.referencesMassart, S., Martinez-Medina, M., & Jijakli, M. H. (2015). Biological control in the microbiome era: Challenges and opportunities. Biological Control, 89, 98-108. doi:10.1016/j.biocontrol.2015.06.003.spa
dc.relation.referencesMatsubara, M., Lynch, J., & De Leij, F. (2006). A simple screening procedure for selecting fungi with potential for use in the bioremediation of contaminated land. Enzyme and Microbial Technology, 39(7), 1365-1372. doi:10.1016/j.enzmictec.2005.04.025.spa
dc.relation.referencesMcManus, P. S., Stockwell, V. O., Sundin, G. W. & Jones, A. L. (2002). Antibiotic use in plant agriculture. Annual Review of Phytopathology, 40, 443-465. doi:10.1146/ annurev.phyto.40.120301.093927.spa
dc.relation.referencesMeena, A. K., Verma, L., & Kumhar, B. L. (2017). RNAi, it’s mechanism and potential use in crop improvement: A review. International Journal of Pure & Applied Bioscience, 5(2), 294-311. doi:10.18782/2320-7051.2890.spa
dc.relation.referencesMendes, R. (2012). Microbioma da rizosfera e proteção de plantas. En Congresso Paulista de Fitopatologia 35º, Summa Phytopathologica, 38 (supplement). [cd-rom]. Jaguariúna, Brasil.spa
dc.relation.referencesMenzies, J. D. (1959). Occurrence and transfer of abiological factor in soil that suppresses potato scab. Phytopathology, 49, 648-652.spa
dc.relation.referencesMerzendorfer, H., & Zimoch, L. (2003). Chitin metabolism in insects: structure, function and regulation of chitin synthases and chitinases. Journal of Experimental Biology, 206, 4393-4412. doi:10.1242/jeb.00709.spa
dc.relation.referencesMinami, E., Kuchitsu, K., He, D. Y., Kouchi, H., Midoh, N., Ohtsuki, Y., & Shibuya, N. (1996). Two novel genes rapidly and transiently activated in suspension-cultured rice cells by treatment with N-acetylchitoheptaose, a biotic elicitor for phytoalexin production. Plant and Cell Physiology, 37(4), 563-567.spa
dc.relation.references31-43. Recuperado de https://www.researchgate.net/ publication/285023312_Chitosan_and_trichoderma_ harzianum_as_fungicide_alternatives_for_controlling_ fusarium_crown_and_root_rot_of_tomato.spa
dc.relation.referencesEl Hadrami, A., Adam, L. R., El Hadrami, I., & Daayf, F. (2010). Chitosan in plant protection. Marine Drugs, 8(4), 968-987. doi:10.3390/md8040968.spa
dc.relation.referencesEzra, D., Castillo, U. F., Strobel, G. A., Hess, W. M., Porter, H., Jensen, J. B., … Yaver, D. (2004). Coronamycins, peptide antibiotics produced by a verticillate Streptomyces sp. (MSU-2110) endophytic on Monstera sp.Microbiology, 150(4), 785-793. doi:10.1099/mic.0.26645-0.spa
dc.relation.referencesEzzi, M. I., & Lynch, J. M. (2005). Biodegradation of cyanide by Trichoderma spp. and Fusarium spp. Enzyme and Microbial Technology, 36(7), 849-854. doi:10.1016/j. enzmictec.2004.03.030.spa
dc.relation.referencesFaeth, S. H., & Fagan, W. F. (2002). Fungal endophytes: Common host plant symbionts but uncommon mutualists. Integrative and Comparative Biology, 42(2), 360-368. doi:10.1093/icb/42.2.360spa
dc.relation.referencesFakhro, A., Andrade-Linares, D. R., Von Bargen, S., Bandte, M., Büttner, C., Grosch, R., … Franken, P. (2010). Impact of Piriformospora indica on tomato growth and on interaction with fungal and viral pathogens. Mycorrhiza, 20(3), 191-200. doi:10.1007/s00572-009-0279-5.spa
dc.relation.referencesFelix, G., Baureithel, K., & Boller, T. (1998). Desensitization of the perception system for chitin fragments in tomato cells. Plant Physiology, 117(2), 643-650.spa
dc.relation.referencesFelix, G., Regenass, M., & Boller, T. (1993). Specific perception of subnanomolar concentrations of chitin fragments by tomato cells: induction of extracellular alkalinization, changes in protein phosphorylation, and establishment of a refractory state. The Plant Journal, 4(2), 307-316. doi:10.1046/j.1365-313X.1993.04020307.x.spa
dc.relation.referencesFerri, M., Franceschetti, M., Naldrett, M. J., Saalbach, G., & Tassoni, A. (2014). Effects of chitosan on the protein profile of grape cell culture subcellular fractions. Electrophoresis, 35(11), 1685-1692. doi:10.1002/ elps.201300624.spa
dc.relation.referencesFigueroa-López, A. M., Cordero-Ramírez, J. D., MartínezÁlvarez, J. C., López-Meyer, M., Lizárraga-Sánchez, G. J., Félix-Gastélum, R., ... Maldonado-Mendoza, I. E. (2016). Rhizospheric bacteria of maize with potential for biocontrol of Fusarium verticillioides. Springerplus, 5, 330. doi:10.1186/s40064-016-1780-x.spa
dc.relation.referencesFigueroa-López, A. M., Cordero-Ramírez, J. D., QuirozFigueroa, F. R., & Maldonado-Mendoza, I. E. (2014). A high-throughput screening assay to identify bacterial antagonists against Fusarium verticillioides. Journal of Basic Microbiology, 54(1), S125-133. doi:10.1002/ jobm.201200594spa
dc.relation.referencesFire, A., Xu, S., Montgomery, M. K., Kostas, S. A., Driver, S. E, & Mello, C. C. (1998). Potent and specific genetic interference by double-stranded rna in Caenorhabditis elegans. Nature, 391 (6669), 806-811.spa
dc.relation.referencesFondong, V. N., Nagalakshmi, U., & Dinesh-Kumar, S. P. (2016). Novel functional genomics approaches: a promising future in the combat against plant viruses. Phytopathology, 106(10), 1231-1239. doi:10.1094/ PHYTO-03-16-0145-FI.spa
dc.relation.referencesForchetti, G., Masciarelli, O., Alemano, S., Alvarez, D., & Abdala, G. (2007). Endophytic bacteria in sunflower (Helianthus annuus L.): isolation, characterization, and production of jasmonates and abscisic acid in culture medium. Applied Microbiology and Biotechnology, 76(5), 1145-1152. doi:10.1007/s00253-007-1077-7.spa
dc.relation.referencesFrampton, R. A., Pitman, A. R., & Fineran, P. C. (2012). Advances in bacteriophage-mediated control of plant pathogens. International Journal of Microbiology, 2012, 1-11. doi:10.1155/2012/326452.spa
dc.relation.referencesFravel, D. (2005). Commercialization and implementation of biocontrol. Annual Review of Phytopathology, 43, 337-359. doi:10.1146/annurev.phyto.43.032904.092924.spa
dc.relation.referencesGhorbanpour, M., Hatami, M., & Khavazi, K. (2013). Role of plant growth promoting rhizobacteria on antioxidant enzyme activities and tropane alkaloid production of Hyoscyamus niger under water deficit stress. Turkish Journal of Biology, 37(3), 350-360. doi:10.3906/biy1209-12.spa
dc.relation.referencesGill, J., & Abedon, S. T. (2003). Bacteriophage ecology and plants. APS Feature Stories. doi:10.1094/ APSnetFeature-2003-1103.spa
dc.relation.referencesGiller, K. E., Witter, E., & Mcgrath, S. P. (1998). Toxicity of heavy metals to microorganisms and microbial processes in agricultural soils: a review. Soil Biology & Biochemistry, 30(10-11), 1389-1414. doi:10.1016/ S0038-0717(97)00270-8spa
dc.relation.referencesGortari, M. C., & Hours, R. A. (2008). Fungal chitinases and their biological role in the antagonism onto nematode eggs. A review. Mycological Progress, 7(4), 221-238. doi:10.1007/s11557-008-0571-3.spa
dc.relation.referencesGoy, R. C., Britto, D., & Assis, O. B. G. (2009). A review of the antimicrobial activity of chitosan. Polímeros 19(3), 241-247. doi:10.1590/S0104-14282009000300013.spa
dc.relation.referencesGoyal, S., Lambert, C., Cluzet, S., Mérillon, J. M., & Ramawat, K. G. (2012). Secondary metabolites and plant defence. En J. M. Mérillon & K. G. Ramawat (Eds.), Plant Defence: Biological Control (pp. 109-138). Dordrecht, Países Bajos: Springerspa
dc.relation.referencesGozzo, F., & Faoro, F. (2013). Systemic acquired resistance (50 years after discovery): moving from the lab to the field. Journal of Agricultural and Food Chemistry, 61(51), 12473-12491. doi:10.1021/jf404156x.spa
dc.relation.referencesGrose, J. H., & Casjens, S. R. (2014). Understanding the enormous diversity of bacteriophages: the tailed phagesspa
dc.relation.referencesCooper, R. L., Laws, S. C., Das, P. C., Narotsky, M. G., Goldman, J. M., Lee Tyrey, E., & Stoker, T. E. (2007). Atrazine and reproductive function: mode and mechanism of action studies. Birth Defects Research Part B: Developmental and Reproductive Toxicology, 80(2), 98-112.spa
dc.relation.referencesCopeland, J. K., Yuan, L., Layeghifard, M., Wang, P. W., & Guttman, D. S. (2015). Seasonal community succession of the phyllosphere microbiome. Molecular Plant-Microbe Interactions, 28(3), 274-285. doi:10.1094/MPMI-10-14- 0331-FI.spa
dc.relation.referencesCotes, A. M., Lepoivre, P., & Semal, J. (1996). Correlation between hydrolytic enzyme activities measured in bean seedlings after Trichoderma koningii treatment combined with pregermination and the protective effect against Pythium splendens. European Journal of Plant Pathology, 102(5), 497-506.spa
dc.relation.referencesCraigie, J. S. (2011). Seaweed extract stimuli in plant science and agriculture. Journal of Applied Phycology, 23(3), 371- 393. doi:10.1007/s10811-010-9560-4.spa
dc.relation.referencesD’Herelle, F. (1911). Sur une épizootie de nature bactérienne sévissant sur les sauterelles au Mexique. Comptes rendus hebdomadaires des séances de l’Acadédemie des sciences, 152, 1413-1415.spa
dc.relation.referencesDalton, D. A., Kramer, S., Azios, N., Fusaro, S., Cahill, E., Kennedy, C. (2004). Endophytic nitrogen fixation in dune grasses (Ammophila arenaria and Elymus mollis) from Oregon. FEMS Microbiology Ecology, 49(3), 469- 479. doi:10.1016/j.femsec.2004.04.010.spa
dc.relation.referencesDas, K., & Mukherjee, A. K. (2007). Crude petroleumoil biodegradation efficiency of Bacillus subtilis and Pseudomonas aeruginosa strains isolated from a petroleum-oil contaminated soil from North-East India. Bioresource Technology, 98(7), 1339-1345. doi:10.1016/j. biortech.2006.05.032spa
dc.relation.referencesDe Jin, R., Suh, J. W., Park, R. D., Kim, Y. W., Krishnan, H., & Kim, K. Y. (2005). Effect of chitin compost and broth on biological control of Meloidogyne incognita on tomato (Lycopersicon esculentum Mill.). Nematology, 7(1), 125- 132spa
dc.relation.referencesDe Vasconcellos, R. L. F., & Cardoso, E. J. B. N. (2009). Rhizospheric streptomycetes as potential biocontrol agents of Fusarium and Armillaria pine rot and as pgpr for Pinus taeda. BioControl, 54(6), 807spa
dc.relation.referencesDe Vasconcellos, R. L. F., & Cardoso, E. J. B. N. (2009). Rhizospheric streptomycetes as potential biocontrol agents of Fusarium and Armillaria pine rot and as pgpr for Pinus taeda. BioControl, 54(6), 807spa
dc.relation.referencesDick, R. P. (1992). A review: long-term effects of agricultural systems on soil biochemical and microbial parameters. Agriculture, Ecosystems & Environment, 40(1-4), 25-36. doi:10.1016/0167-8809(92)90081-L.spa
dc.relation.referencesDjonović, S., Pozo, M. J., Dangott, L. J., Howell, C. R., & Kenerley, C. M. (2006). Sm1, a proteinaceous elicitor secreted by the biocontrol fungus Trichoderma virens Induces plant defense responses and systemic resistance. Molecular Plant-Microbe Interactions, 19(8), 838-853. doi:10.1094/MPMI-19-0838.spa
dc.relation.referencesDjonović, S., Vargas, W. A., Kolomiets, M. V., Horndeski, M., Wiest, A., & Kenerley, C. M. (2007). A proteinaceous elicitor Sm1 from the beneficial fungus Trichoderma virens is required for induced systemic resistance in maize. Plant Physiology, 145(3), 875-889. doi:10.1104/ pp.107.103689.spa
dc.relation.referencesDong, Y.-H., Xu, J.-L., Li, X.-Z., & Zhang, L.-H. (2000). AiiA, an enzyme that inactivates the acylhomoserine lactone quorum-sensing signal and attenuates the virulence of Erwinia carotovora. Proceedings of the National Academy of Sciences, 97(7), 3526-3531. doi:10.1073/ pnas.060023897.spa
dc.relation.referencesDoornbos, R. F., van Loon, L. C., & Bakker, P. A. H. M. (2012). Impact of root exudates and plant defense signaling on bacterial communities in the rhizosphere. A review. Agronomy for Sustainable Development, 32(1), 227- 243. doi:10.1007/s13593-011-0028-yspa
dc.relation.referencesDu Jardin, P. (2012). The Science of Plant Biostimulants - A bibliographic analysis. [Ad hoc study report to the European Commission DG Enterprise and Industry]. Recuperado de http://hdl.handle.net/2268/169257.spa
dc.relation.referencesDu Jardin, P. (2015). Plant biostimulants: Definition, concept, main categories and regulation. Scientia Horticulturae, 196, 3-14. doi:10.1016/j.scienta.2015.09.021.spa
dc.relation.referencesDuan, C.-G., Wang, C.-H., & Guo, H.-S. (2012). Application of rna silencing to plant disease resistance. Silence, 3(1), 5. doi:10.1186/1758-907X-3-5.spa
dc.relation.referencesDuffy, B. K., Simon, A., & Weller, D. (1996). Combination of Trichoderma koningii with fluorescent pseudomonads for control of take-all on wheat. Phytopathology, 86(2), 188-194. Recuperado de https://www.apsnet. org/publ ications/phytopathology/backissues/ Documents/1996Articles/Phyto86n02_188.pdf.spa
dc.relation.referencesDye, D. W. (1953). Control of Pseudomonas syringae with streptomycin. Nature, 172, 683-684. doi:10.1038/172683a0.spa
dc.relation.referencesEl-Ghaouth, A., Arul, J., Ponnampalam, R., & Boulet, M. (1991). Use of chitosan coating to reduce water loss and maintain quality of cucumber and bell pepper fruits. Journal of Food Processing and Preservation, 15, 359-368. doi:10.1111/j.1745-4549.1991.tb00178.x.spa
dc.relation.referencesEl-Ghaouth, A., Ponnampalam, R., Castaigne, F., & Arul, J. (1992). Chitosan coating to extend the storage life of tomatoes. HortScience, 27(9), 1016-1018.spa
dc.relation.referencesEl-Mohamedy, R. S., Abdel-Kareem, F., JabounKhiareddine, H., & Daami-Remadi, M. (2014). Chitosan and Trichoderma harzianum as fungicide alternatives for controlling Fusarium crown and root rot of tomato. Tunisian Journal of Plant Protection, 9,spa
dc.relation.referencesJain, A., Singh, A., Singh, S., & Singh, H. B. (2015). Biological management of Sclerotinia sclerotiorum in pea using plant growth promoting microbial consortium. Journal of Basic Microbiology, 55(8), 961-972. doi:10.1002/ jobm.201400628.spa
dc.relation.referencesJain, R., Poulos, M. G., Gros, J., Chakravarty, A. K., & Shuman, S. (2011). Substrate specificity and mutational analysis of Kluyveromyces lactis gamma-toxin, a eukaryal tRNA anticodon nuclease. RNA, 17(7), 1336-1343. doi:10.1261/rna.2722711.spa
dc.relation.referencesJalilzadeh Yengejeh, R., Sekhavatjou, M., Maktabi, P., Arbab Soleimani, N., Khadivi, S., & Pourjafarian, V. (2014). The biodegradation of crude oil by Bacillus subtilis isolated from contaminated soil in hot weather areas. International Journal of Environmental Research, 8(2), 509- 514. doi:10.22059/ijer.2014.744spa
dc.relation.referencesJetiyanon, K. (2007). Defensive-related enzyme response in plants treated with a mixture of Bacillus strains (IN937a and IN937b) against different pathogens. Biological Control, 42(2), 178-185.spa
dc.relation.referencesKaku, H., Shibuya, N., Xu, P., Aryan, A. P., & Fincher, G. B. (1997). N-acetylchitooligosaccharides elicit expression of a single (1→3)-β-glucanase gene in suspension-cultured cells from barley (Hordeum vulgare). Physiologia Plantarum, 100, 111-118. doi:10.1111/ j.1399-3054.1997.tb03460.xspa
dc.relation.referencesKannan, V., & Sureendar, R. (2009). Synergistic effect of beneficial rhizosphere microflora in biocontrol and plant growth promotion. Journal of Basic Microbiology, 49, 158- 164. doi:10.1002/jobm.200800011.spa
dc.relation.referencesKatiyar, D., Hemantaranjan, A., & Singh, B. (2015). Chitosan as a promising natural compound to enhance potential physiological responses in plant: a review. Indian Journal of Plant Physiology, 20(1), 1-9. doi:10.1007/s40502-015- 0139-6.spa
dc.relation.referencesKatznelson, H. (1937). Bacteriophage in relation to plant diseases. The Botanical Review, 3, 499. doi:10.1007/ BF02870486.spa
dc.relation.referencesKauffman, G. L., Kneivel, D. P., & Watschke, T. L. (2007). Effects of a biostimulant on the heat tolerance associated with photosynthetic capacity, membrane thermostability, and polyphenol production of perennial ryegrass. Crop Science, 47(1), 261-267. doi:10.2135/ cropsci2006.03.0171.spa
dc.relation.referencesKembel, S. W., O’Connor, T. K., Arnold, H. K., Hubbell, S. P., Wright, S. J., & Green, J. L. (2014). Relationships between phyllosphere bacterial communities and plant functional traits in a neotropical forest. Proceedings of the National Academy of Sciences, 111(38), 13715-13720. doi:10.1073/pnas.1216057111.spa
dc.relation.referencesKesarcodi-Watson, A., Kaspar, H., Lategan, M. J., & Gibson, L. (2008). Probiotics in aquaculture: the need, principles and mechanisms of action and screening processes. Aquaculture, 274(1), 1-14. doi:10.1016/j. aquaculture.2007.11.019.spa
dc.relation.referencesKeswani, C., Mishra, S., Sarma, B. K., Singh, S. P., & Singh, H. B. (2014). Unraveling the efficient applications of secondary metabolites of various Trichoderma spp. Applied Microbiology and Biotechnology, 98(2), 533-544. doi:10.1007/s00253-013-5344-5.spa
dc.relation.referencesKhan, W., Rayirath, U. P., Subramanian, S., Jithesh, M. N., Rayorath, P., Hodges, D. M., … Prithiviraj, B. (2009). Seaweed extracts as biostimulants of plant growth and development. Journal of Plant Growth Regulation, 28(4), 386-399. doi:10.1007/s00344-009-9103-xspa
dc.relation.referencesKikuyama, M., Kuchitsu, K., & Shibuya, N. (1997). Membrane depolarization induced by N-acetylchitooligosaccharide elicitor in suspension-cultured rice cells. Plant and Cell Physiology, 38(8), 902-909. doi:10.1093/oxfordjournals. pcp.a029250.spa
dc.relation.referencesKloepper, J. W., Rodríguez-Kábana, R., Zehnder, A. W., Murphy, J. F., Sikora, E., & Fernández, C. (1999). Plant root-bacterial interactions in biological control of soilborne diseases and potential extension to systemic and foliar diseases. Australasian Plant Pathology, 28(1), 21-26. doi:10.1071/AP99003.spa
dc.relation.referencesKloepper, J., Reddy, M., Rodríguez-Kabana, R., Kenney, D., Kokalis-Burelle, N., & Martinez-Ochoa, N. (2004). Application for rhizobacteria in transplant production and yield enhancement. Acta Horticulturae, 631, 219-229. doi:10.17660/ActaHortic.2004.631.28.spa
dc.relation.referencesKloepper, J. W., Leong, J., Teintze, M., & Schroth, M. N. (1980). Enhanced plant growth by siderophores produced by plant growth-promoting rhizobacteria. Nature, 286, 885-886. doi:10.1038/286885a0.spa
dc.relation.referencesKloepper, J. W., Lifshitz, R., & Zablotowicz, R. M. (1989). Free-living bacterial inocula for enhancing crop productivity. Trends in Biotechnology, 7(2), 39-44. doi:10.1016/0167-7799(89)90057-7.spa
dc.relation.referencesKnip, M., Constantin, M. E., & Thordal-Christensen, H. (2014). Trans-kingdom cross-talk: Small RNAs on the move. Plos Genetics, 10(9): e1004602. doi:10.1371/ journal.pgen.1004602.spa
dc.relation.referencesKoberl, M., Schmidt, R., Ramadan, E. M., Bauer, R., & Berg, G. (2013). The microbiome of medicinal plants: diversity and importance for plant growth, quality and health. Frontiers in Microbiology, 4, 400. doi:10.3389/ fmicb.2013.00400.spa
dc.relation.referencesKoch, A., Biedenkopf, D., Furch, A., Weber, L., Rossbach, O., Abdellatef, E., … Kogel, K.-H. (2016). An RNAi-based control of Fusarium graminearum infections through spraying of long dsRNAs involves a plant passage and is controlled by the fungal silencing machinery. Plos Pathogens, 12(10): e1005901. doi:10.1371/journal. ppat.1005901. that infect the bacterial family Enterobacteriaceae. Virology, 468, 421-443. doi:10.1016/j.virol.2014.08.024.spa
dc.relation.referencesGroszhans, H., & Filipowicz, W. (2008). Molecular biology: The expanding world of small RNAs. Nature, 451(7177), 414-416. doi:10.1038/451414a.spa
dc.relation.referencesGuo, H., Luo, S., Chen, L., Xiao, X., Xi, Q., Wei, W., ... Chen, J. (2010). Bioremediation of heavy metals by growing hyperaccumulaor endophytic bacterium Bacillus sp. L14. Bioresource Technology, 101(22), 8599-8605. doi:10.1016/j.biortech.2010.06.085.spa
dc.relation.referencesGuo, S., & Kemphues, K. J. (1995). par-1, a gene required for establishing polarity in C. elegans embryos, encodes a putative Ser/Thr kinase that is asymmetrically distributed. Cell, 81(4), 611-620.spa
dc.relation.referencesHaas, D., & Keel, C. (2003). Regulation of antibiotic production in root-colonizing Pseudomonas spp. and relevance for biological control of plant disease. Annual Review of Phytopathology, 41, 117-153. doi:10.1146/ annurev.phyto.41.052002.095656.spa
dc.relation.referencesHadwiger, L. A. (2013). Multiple effects of chitosan on plant systems: Solid science or hype. Plant Science, 208, 42-49. doi:10.1016/j.plantsci.2013.03.007.spa
dc.relation.referencesHaichar, F. E. Z., Marol, C., Berge, O., Rangel-Castro, J. I., Prosser, J. I., Balesdent, J. M., … Achouak, W. (2008). Plant host habitat and root exudates shape soil bacterial community structure. The ISME Journal, 2(12), 1221- 1230. doi:10.1038/ismej.2008.80.spa
dc.relation.referencesHalpern, M., Bar-Tal, A., Ofek, M., Minz, D., Muller, T., & Yermiyahu, U. (2015). Chapter two - The use of biostimulants for enhancing nutrient uptake. En D. L. Sparks (Ed.), Advances in Agronomy (vol. 130, pp. 141- 174). doi:10.1016/bs.agron.2014.10.001.spa
dc.relation.referencesHallmann, J., Quadt-Hallmann, A., Mahaffee, W. F., & Kloepper, J. W. (1997). Bacterial endophytes in agricultural crops. Canadian Journal of Microbiology, 43(10), 895-914. doi:10.1139/m97-131.spa
dc.relation.referencesHammerschmidt, R. (1999). Phytoalexins: What have we learned after 60 years? Annual Review of Phytopathology, 37, 285-306. doi:10.1146/annurev.phyto.37.1.285.spa
dc.relation.referencesHardoim, P. R., Van Overbeek, L. S., & Elsas, J. D. v. (2008). Properties of bacterial endophytes and their proposed role in plant growth. Trends in Microbiology, 16(10), 463- 471. doi:10.1016/j.tim.2008.07.008.spa
dc.relation.referencesHariprasad, P., Navya, H., Chandra, S., & Niranjana, S. (2009). Advantage of using psirb over psrb and irb to improve plant health of tomato. Biological Control, 50(3), 307-316. doi:10.1016/j.biocontrol.2009.04.002spa
dc.relation.referencesHarish, S., Kavino, M., Kumar, N., Balasubramanian, P., & Samiyappan, R. (2009). Induction of defenserelated proteins by mixtures of plant growth promoting endophytic bacteria against Banana bunchy top virus. Biological Control, 51(1), 16-25. doi:10.1016/j.biocontrol. 2009.06.002.spa
dc.relation.referencesHirst, J. M., Le Riche, H. H., & Bascomb, C. L. (1961). Copper accumulation in the soils of apple orchards near wisbech. Plant Pathology, 10(3), 105-108. doi:10.1111/j.1365-3059.1961.tb00127.xspa
dc.relation.referencesHoitink, H., & Boehm, M. (1999). Biocontrol within the context of soil microbial communities: a substratedependent phenomenon. Annual Review of Phytopathology, 37, 427-446. doi:10.1146/annurev.phyto.37.1.427.spa
dc.relation.referencesHosseyni-Moghaddam, M. S., & Soltani, J. (2014). Bioactivity of endophytic Trichoderma fungal species from the plant family Cupressaceae. Annals of Microbiology, 64(2), 753- 761. doi:10.1007/s13213-013-0710-1.spa
dc.relation.referencesHowell, C. R. (2003). Mechanisms employed by Trichoderma species in the biological control of plant diseases: The history and evolution of current concepts. Plant Disease, 87(1), 4-10. doi:10.1094/PDIS.2003.87.1.4.spa
dc.relation.referencesHowell, C. R., Hanson, L. E., Stipanovic, R. D., & Puckhaber, L. S. (2000). Induction of terpenoid synthesis in cotton roots and control of Rhizoctonia solani by seed treatment with Trichoderma virens. Phytopathology, 90(3), 248-252. doi:10.1094/PHYTO.2000.90.3.248.spa
dc.relation.referencesHuang, G., Allen, R., Davis, E. L., Baum, T. J., & Hussey, R. S. (2006). Engineering broad root-knot resistance in transgenic plants by RNAi silencing of a conserved and essential root-knot nematode parasitism gene. Proceedings of the National Academy of Sciences, 103(39), 14302- 14306. doi:10.1073/pnas.0604698103.spa
dc.relation.referencesHuang, X., Chen, L., Ran, W., Shen, Q., & Yang, X. (2011). Trichoderma harzianum strain SQR-T37 and its bio-organic fertilizer could control Rhizoctonia solani damping-off disease in cucumber seedlings mainly by the mycoparasitism. Applied Microbiology and Biotechnology, 91(3), 741-755. doi:10.1007/s00253-011-3259-6.spa
dc.relation.referencesHunter, R. D., Ekunwe, S. I., Dodor, D. E., Hwang, H.-M., & Ekunwe, L. (2005). Bacillus subtilis is a potential degrader of pyrene and benzo[a]pyrene. International Journal of Environmental Research and Public Health, 2(2), 267-271.spa
dc.relation.referencesIriarte, F. B., Balogh, B., Momol, M. T., Smith, L. M., Wilson, M., & Jones, J. B. (2007). Factors affecting survival of bacteriophage on tomato leaf surfaces. Applied and Environmental Microbiology, 73(6), 1704-1711. doi:10.1128/AEM.02118-06.spa
dc.relation.referencesIriti, M., Picchi, V., Rossoni, M., Gomarasca, S., Ludwig, N., Gargano, M., & Faoro, F. (2009). Chitosan antitranspirant activity is due to abscisic acid-dependent stomatal closure. Environmental and Experimental Botany, 66, 493-500.spa
dc.relation.referencesIwamoto, Y., Aino, M., Kanto, T., & Maekawa, K. (2003). Effective fungicides on Olpidium brassicae causing lettuce big-vein disease and optimum drenching conditions. Japanese Journal of Phytopathology, 69(4), 366-372.spa
dc.relation.referencesMishra, J., Tewari, S., Singh, S., & Kumar, N. (2015). Biopesticides: Where We Stand? En N. K. Arora (Ed.), Plant Microbes Symbiosis: Applied Facets (pp. 37-75). Nueva Delhi, India: Springer.spa
dc.relation.referencesMitter, N., Worrall, E. A., Robinson, K. E., Li, P., Jain, R.G., Taochy, C., … Xu, Z. P. (2017). Clay nanosheets for topical delivery of RNAi for sustained protection against plant viruses. Nature Plants, 3(2), 1-10. doi:10.1038/ nplants.2016.207.spa
dc.relation.referencesMontesinos, E. (2003). Development, registration and commercialization of microbial pesticides for plant protection. International Microbiology, 6(4), 245-252. doi:10.1007/s10123-003-0144-x.spa
dc.relation.referencesMoore, E. S. (1926). D’Herelle’s bacteriophage in relation to plant parasites. South African Journal of Science, 23, 306.spa
dc.relation.referencesMoradi, H., Bahramnejad, B., Amini, J., Siosemardeh, A., & Haji-Allahverdipoor, K. (2012). Suppression of chickpea (Cicer arietinum L.) Fusariums wilt by Bacillus subtillis and Trichoderma harzianum. Plant Omics, 5(2), 68-74.spa
dc.relation.referencesMoreno, C., Castillo, F., González, A., Bernal, D., Jaimes, Y., Chaparro, M., … Cotes, A. (2009). Biological and molecular characterization of the response of tomato plants treated with Trichoderma koningiopsis. Physiological and Molecular Plant Pathology, 74(2), 111-120. doi:10.1046/j.1365-2672.2000.00939.x.spa
dc.relation.referencesMulaw, T., Druzhinina, I., Kubicek, C., & Atanasova, L. (2013). Novel endophytic Trichoderma spp. isolated from healthy Coffea arabica roots are capable of controlling coffee tracheomycosis. Diversity, 5(4), 750-766. doi:10.3390/d5040750.spa
dc.relation.referencesNamdeo, A. (2007). Plant cell elicitation for production of secondary metabolites: A review. Pharmacognosy Review, 1(1), 69-79.spa
dc.relation.referencesNapoli, C., Lemieux, C., & Jorgensen, R. (1990). Introduction of a chimeric chalcone synthase gene into petunia results in reversible co-suppression of homologous genes in trans. The Plant Cell, 2, 279-289. Recuperado de http://www. plantcell.org/content/plantcell/2/4/279.full.pdfspa
dc.relation.referencesNeilands, J. (1995). Siderophores: structure and function of microbial iron transport compounds. Journal of Biological Chemistry, 270, 26723-26726. doi:10.1074/ jbc.270.45.26723.spa
dc.relation.referencesNgo, H., Tschudi, C., Gull, K., & Ullu, E. (1998). Double-stranded rna induces mRNA degradation in Trypanosoma brucei. Proceedings of the National Academy of Sciences, 95(25), 14687-14692.spa
dc.relation.referencesNielsen, P., & Sørensen, J. (1997). Multi-target and mediumindependent fungal antagonism by hydrolytic enzymes in Paenibacillus polymyxa and Bacillus pumilus strains from barley rhizosphere. FEMS Microbiology Ecology, 22(3), 183-192. doi:10.1111/j.1574-6941.1997.tb00370.x.spa
dc.relation.referencesNishizawa, Y., Kawakami, A., Hibi, T., He, D.-Y., Shibuya, N., & Minami, E. (1999). Regulation of the chitinase gene expression in suspension-cultured rice cells by N-acetylchitooligosaccharides: differences in the signal transduction pathways leading to the activation of elicitor-responsive genes. Plant Molecular Biology, 39(5), 907-914. doi:10.1023/A:1006161802334.spa
dc.relation.referencesNojiri, H., Sugimori, M., Yamane, H., Nishimura, Y., Yamada, A., Shibuya, N., … Omori, T. (1996). Involvement of jasmonic acid in elicitor-induced phytoalexin production in suspension-cultured rice cells. Plant Physiology, 110, 387-392. doi:10.1104/pp.110.2.387.spa
dc.relation.referencesNongmaithem, N., Roy, A., & Bhattacharya, P. M. (2016). Screening of Trichoderma isolates for their potential of biosorption of nickel and cadmium. Brazilian Journal of Microbiology, 47(2), 305-313. doi:10.1016/j. bjm.2016.01.008.spa
dc.relation.referencesNowara, D., Gay, A., Lacomme, C., Shaw, J., Ridout, C., Douchkov, D., … Schweizer, P. (2010). higs: hostinduced gene silencing in the obligate biotrophic fungal pathogen Blumeria graminis. The Plant Cell, 22(9), 3130- 3141. Recuperado de http://www.plantcell.org/content/ plantcell/22/9/3130.full.pdf.spa
dc.relation.referencesNunes, C. C., & Dean, R. A. (2012). Host-induced gene silencing: a tool for understanding fungal host interaction and for developing novel disease control strategies. Molecular Plant Pathology, 13(5), 519-529. doi:10.1111/ j.1364-3703.2011.00766.x.spa
dc.relation.referencesO'Sullivan, M., Stephens, P. M., & O'Gara, F. (1991). Extracellular protease production by fluorescent Pseudomonas spp. and the colonization of sugarbeet roots and soil. Soil Biology & Biochemistry, 23(7), 623-627. doi:10.1016/0038-0717(91)90074-T.spa
dc.relation.referencesOchoa, J. M., & Cotes, A. M. (1998). Evaluación de la actividad biocontroladora de Pseudomonas fluorescens, Streptomyces coelicolor y Trichoderma hamatum mediante su actividad individual y combinada para el control de Fusarium oxysporum f. sp. dianthi. Fitopatología Colombiana, 22, 88- 93.spa
dc.relation.referencesOfek, M., Hadar, Y. & Minz, D. (2012). Ecology of root colonizing Massilia (Oxalobacteraceae). Plos One, 7(7): e40117. doi:10.1371/journal.pone.0040117.spa
dc.relation.referencesOkabe, N., & Goto, M. (1963). Bacteriophages of Plant Pathogens. Annual Review of Phytopathology, 1, 397-418. doi:10.1146/annurev.py.01.090163.002145spa
dc.relation.referencesOmnilytics. (2018). Changing the way the world treats bacterial disease. Recuperado de http://www.omnilytics.com/ agriculture/.spa
dc.relation.referencesOngena, M., Jourdan, E., Adam, A., Paquot, M., Brans, A., Joris, B., … Thonart, P. (2007). Surfactin and fengycin lipopeptides of Bacillus subtilis as elicitors of induced systemic resistance in plants. Environmental Microbiology, 9(4), 1084-1090. doi:10.1111/j.1462- 2920.2006.01202.x.spa
dc.relation.referencesPal-Bhadra, M., Bhadra, U., & Birchler, J. A. (1997). Cosuppression in Drosophila: Gene silencing of alcohol dehydrogenase by white-adh transgenes is polycomb dependent. Cell, 90(3), 479-490.spa
dc.relation.referencesPanwar, V., McCallum, B., Jordan, M., Loewen, M., Fobert, P., McCartney, C., Bakkeren, G. (2016). rna silencing approaches for identifying pathogenicity and virulence elements towards engineering crop resistance to plant pathogenic fungi. CAB Reviews, 11(027), 1-13. doi:10.1079/PAVSNNR201611027.spa
dc.relation.referencesPietrzak, U., & McPhail, D. C. (2004). Copper accumulation, distribution and fractionation in vineyard soils of Victoria, Australia. Geoderma, 122(2-4), 151-166. doi:10.1016/j. geoderma.2004.01.005.spa
dc.relation.referencesPliego, C., Ramos, C., De Vicente, A., & Cazorla, F. M. (2011). Screening for candidate bacterial biocontrol agents against soilborne fungal plant pathogens. Plant Soil, 340, 505-520. doi:10.1007/s11104-010-0615-8.spa
dc.relation.referencesPovero, G., Loreti, E., Pucciariello, C., Santaniello, A., Di Tommaso, D., Di Tommaso, G., ... Perata, P. (2011). Transcript profiling of chitosan-treated Arabidopsis seedlings. Journal of Plant Research, 124(5), 619-629. doi:10.1007/s10265-010-0399-1.spa
dc.relation.referencesPrakash Verma, J., Yadav, J., Tiwari, K., & Jaiswal, D. (2013). Evaluation of plant growth promoting activities of microbial strains and their effect on growth and yield of chickpea (Cicer arietinum L.) in India. Soil Biology and Biochemistry, 70, 33-37. doi:10.1016/j. soilbio.2013.12.001.spa
dc.relation.referencesQian, J., Li, D., Zhan, G., Zhang, L., Su, W., & Gao, P. (2012). Simultaneous biodegradation of Ni–citrate complexes and removal of nickel from solutions by Pseudomonas alcaliphila. Bioresource Technology, 116, 66- 73. doi:10.1016/j.biortech.2012.04.017.spa
dc.relation.referencesRaaijmakers, J. M., De Bruijn, I., Nybroe, O., & Ongena, M. (2010). Natural functions of lipopeptides from Bacillus and Pseudomonas: more than surfactants and antibiotics. FEMS Microbiology Reviews, 34(6), 1037-1062. doi:10.1111/j.1574-6976.2010.00221.x.spa
dc.relation.referencesRabea, E. I., Badawy, M. E. T., Stevens, C. V., Smagghe, G., & Steurbaut, W. (2003). Chitosan as antimicrobial agent: Applications and mode of action. Biomacromolecules, 4(6), 1457-1465. doi:10.1021/bm034130m.spa
dc.relation.referencesRajasekhar, L., Satish, K., Sain, & Divya, J. (2016). Evaluation of microbial consortium for plant health management of pigeonpea. International Journal of Plant, Animal and Environmental Sciences, 6(2), 107-113. Recuperado de http://www.ijpaes.com/admin/php/uploads/958_ pdf.pdf.spa
dc.relation.referencesRaupach, G. S., & Kloepper, J. W. (1998). Mixtures of plant growth-promoting rhizobacteria enhance biological control of multiple cucumber pathogens. Phytopathology, 88(11), 1158-1164. doi:10.1094/PHYTO.1998.88.11. 1158.spa
dc.relation.referencesRaupach, G. S., Liu, L., Murphy, J. F., Tuzun, S., & Kloepper, J. W. (1996). Induced systemic resistance in cucumber and tomato against Cucumber mosaic virus using plant growth-promoting rhizobacteria (pgpr). Plant Disease, 80, 891-894. Recuperado de https://www. apsnet.org/publications/PlantDisease/BackIssues/ Documents/1996Articles/PlantDisease80n08_ 891.PDF.spa
dc.relation.referencesRaymundo Raymundo, E., Nikolskii Gavrilov, I., Duwig, C., Prado Pano, B. L., Hidalgo Moreno, C. I., Gavi Reyes, F., & Figueroa Sandoval, B. (2009). Transporte de atrazina en un andosol y un vertisol de México. Interciencia, 34(5), 330-337. Recuperado de http://www.redalyc.org/ articulo.oa?id=33911403005.spa
dc.relation.referencesRen, Y.-Y., & West, C.A. (1992). Elicitation of diterpene biosynthesis in rice (Oryza sativa L.) by chitin. Plant Physiology, 99, 1169-1178. doi: doi:10.1104/ pp.99.3.1169.spa
dc.relation.referencesRenwick, A., Campbell, R., & Coe, S. (1991). Assessment of in vivo screening systems for potential biocontrol agents of Gaeumannomyces graminis. Plant Pathology, 40(4), 524- 532. doi:10.1111/j.1365-3059.1991.tb02415.xspa
dc.relation.referencesRoberts, D. P., & Lohrke, S. M. (2003). United States Department of Agriculture-Agricultural Research Service research programs in biological control of plant diseases. Pest Management Science, 59(6-7), 654-664. doi:10.1002/ ps.613.spa
dc.relation.referencesRoby, D., Gadelle, A., & Toppan, A. (1987). Chitin oligosaccharides as elicitors of chitinase activity in melon plants. Biochemical and Biophysical Research Communications, 143(3), 885-892. doi:10.1016/0006- 291X(87)90332-9.spa
dc.relation.referencesRomano, N., & Macino, G. (1992). Quelling: transient inactivation of gene expression in Neurospora crassa by transformation with homologous sequences. Molecular Microbiology, 6(22), 3343-3353. doi:10.1111/j.1365-2 958.1992.tb02202.x.spa
dc.relation.referencesRose, M., Patti, A., Little, K., Brown, A. L., Jackson, W. R., & Cavagnaro, T. R. (2014). A meta-analysis and review of plant-growth response to humic substances: Practical implications for agriculture. En D. L. Sparks (Ed.), Advances in Agronomy (1. a ed., vol. 124, pp. 37-89). EE. UU.: Elsevier. doi:10.1016/B978-0-12-800138-7.00 002-4.spa
dc.relation.referencesRothstein, S. J., DiMaio, J., Strand, M., & Rice, D. (1987). Stable and heritable inhibition of the expression of nopaline synthase in tobacco expressing antisense rna. Proceedings of the National Academy of Sciences, 84(23), 8439-8443.spa
dc.relation.referencesRudresh, D., Shivaprakash, M., & Prasad, R. (2005). Effect of combined application of Rhizobium, phosphate solubilizing bacterium and Trichoderma spp. on growth, nutrient uptake and yield of chickpea (Ciceraritenium L.). Applied Soil Ecology, 28(2), 139-146. doi:10.1016/j. apsoil.2004.07.005.spa
dc.relation.referencesSantos, A., Villamizar, L., García, M., Beltrán, C., & Cotes, A. M. (2016). Biocontrol of Rhizoctonia solani and Tecia solanivora in potato seed-tuber treated with a powder formulation based on Trichoderma koningiopsis and baculovirus. IOBC-WPRS Bulletin, 115, 47-53.spa
dc.relation.referencesSenthilraja, G., Anand, T., Durairaj, C., Kennedy, J., Suresh, S., Raguchander, T., & Samiyappan, R. (2010). A new microbial consortia containing entomopathogenic fungus, Beauveria bassiana and plant growth promoting rhizobacteria, Pseudomonas fluorescens for simultaneous management of leafminers and collar rot disease in groundnut. Biocontrol Science and Technology, 20(5), 449- 464. doi:10.1080/09583150903576949.spa
dc.relation.referencesSerfling, A., Wirsel, S. G. R., Lind, V., & Deising, H. B. (2007). performance of the biocontrol fungus Piriformospora indica on wheat under greenhouse and field conditions. Phytopathology, 97, 523-531. doi:10.1094/ PHYTO-97-4-0523.spa
dc.relation.referencesShehata, H. R., Lyons, E. M., Jordan, K. S., & Raizada, M. N. (2016). Relevance of in vitro agar based screens to characterize the anti-fungal activities of bacterial endophyte communities. BMC Microbiology, 16, 8. doi:10.1186/s12866-016-0623-9.spa
dc.relation.referencesSheng, X., Chen, X., & He, L. (2008). Characteristics of an endophytic pyrene-degrading bacterium of Enterobacter sp. 12J1 from Allium macrostemon Bunge. International Biodeterioration and Biodegradation, 62(2), 88-95. doi:10.1016/j.ibiod.2007.12.003.spa
dc.relation.referencesShoresh, M., Harman, G. E. & Mastouri, F. (2010). Induced systemic resistance and plant responses to fungal biocontrol agents. Annual Review of Phytopathology, 48, 21-43. doi:10.1146/annurev-phyto-073009-114450.spa
dc.relation.referencesSindhu, S., & Dadarwal, K. (2001). Chitinolytic and cellulolytic Pseudomonas sp. antagonistic to fungal pathogens enhances nodulation by Mesorhizobium sp. Cicer in chickpea. Microbiological Research, 156(4), 353- 358. doi:10.1078/0944-5013-00120.spa
dc.relation.referencesSingh, A., Sarma, B. K., Upadhyay, R. S., & Singh, H. B. (2013). Compatible rhizosphere microbes mediated alleviation of biotic stress in chickpea through enhanced antioxidant and phenylpropanoid activities. Microbiological Research, 168(1), 33-40. doi:10.1016/j.micres.2012.07.001.spa
dc.relation.referencesSingh, D., Chaudhary, S., Kumar, R., Sirohi, P., Mehla, K., Sirohi, A., … Singh, P. K. (2016). rna interference technology applications and limitations. En I. Y. Abdurakhmonov (Ed.), rna Interference, InTech. Recuperado de https://www.intechopen.com/books/rnainterference/rna-interference-technology-applicationsand-limitations. doi:10.5772/60631.spa
dc.relation.referencesSkopp, J., Jawson, M., & Doran, J. (1990). Steady-state aerobic microbial activity as a function of soil water content. Soil Science Society of America Journal, 54(6), 1619-1625. doi:10.2136/sssaj1990.03615995005400060018x.spa
dc.relation.referencesSrinivasan, K., & Mathivanan, N. (2011). Plant growth promoting microbial consortia mediated classical biocontrol of sunflower necrosis virus disease. Journal of Biopesticides, 4(1), 65-72. Recuperado de http://www.jbiopest.com/ users/lw8/efiles/vol_4_1_241.pdf.spa
dc.relation.referencesStein, E., Molitor, A., Kogel, K.-H., & Waller, F. (2008). Systemic resistance in Arabidopsis conferred by the mycorrhizal fungus Piriformospora indica requires jasmonic acid signaling and the cytoplasmic function of NPR1. Plant and Cell Physiology, 49(11), 1747-1751. doi:10.1093/pcp/ pcn147.spa
dc.relation.referencesStockwell, V., Johnson, K., Sugar, D., & Loper, J. (2011). Mechanistically compatible mixtures of bacterial antagonists improve biological control of fire blight of pear. Phytopathology, 101(1), 113-123. doi:10.1094/ PHYTO-03-10-0098spa
dc.relation.referencesSummers, W. C. (2005). Bacteriophage research: early history. En E. Kutter & A. Sulakvelidze (Eds.), Bacteriophages: Biology and applications (pp. 5-27). Boca Ratón, EE. UU.: CRC Press.spa
dc.relation.referencesSzittya, G., & Burgyán, J. (2013). Rna interference-mediated intrinsic antiviral immunity in plants. En B. R. Cullen (Ed.), Intrinsic immunity (pp. 153-181). Berlín, Alemania: Springerspa
dc.relation.referencesTakai, R., Hasegawa, K., Kaku, H., Shibuya, N., & Minami, E. (2001). Isolation and analysis of expression mechanisms of a rice gene, EL5, which shows structural similarity to atl family from Arabidopsis, in response to N-acetylchitooligosaccharide elicitor. Plant Science, 160(4), 577-583. doi:10.1016/S0168-9452(00)00390-3.spa
dc.relation.referencesTang, J., Liu, Y., Li, H., Wang, L., Huang, K., & Chen, Z. (2015). Combining an antagonistic yeast with harpin treatment to control postharvest decay of kiwifruit. Biological Control, 89, 61-67. doi:10.1016/j. biocontrol.2015.04.025.spa
dc.relation.referencesTang, K., Zhang, Y., Yu, M., Shi, X., Coenye, T., Bossier, P., & Zhang, X.-H. (2013). Evaluation of a new highthroughput method for identifying quorum quenching bacteria. Scientific Reports, 3, 2935. doi:10.1038/ srep02935.spa
dc.relation.referencesTenllado, F., Llave, C., & Dı́az-Ruı́z, J. R. (2004). rna interference as a new biotechnological tool for the control of virus diseases in plants. Virus Research, 102(1), 85-96. doi:10.1016/j.virusres.2004.01.019.spa
dc.relation.referencesTharanathan, R. N., & Kittur, F. S. (2003). Chitin—The undisputed biomolecule of great potential. Critical Reviews in Food Science and Nutrispa
dc.relation.referencesThayer, P. L., & Stall, R. E. (1961). A survey of Xanthomonas vesicatoria resistance to streptomycin. Proceedings of the Florida State Horticultural Society, 1523, 163-165. Recuperado de http://fshs.org/proceedings-o/1962- vol-75/163-165%20(THAYER).pdf.spa
dc.relation.referencesThomas, R. (1935). A bacteriophage in relation to Stewart’s disease of corn. Phytopathology, 25, 371-372.spa
dc.relation.referencesTian, H., Riggs, R. D., & Crippen, D. L. (2000). Control of soybean cyst nematode by chitinolytic bacteria with chitin substrate. Journal of Nematology, 32(4), 370-376. Recuperado de https://www.ncbi.nlm.nih.gov/pmc/ articles/PMC2620463/pdf/370.pdf.spa
dc.relation.referencesTwort, F. W. (1915). An investigation on the nature of ultra-microscopic viruses. The Lancet, 186, 1241-1243. doi:10.1016/S0140-6736(01)20383-3.spa
dc.relation.referencesVan Buren, A. M., Andre, C., & Ishimaru, C. (1993). Biological control of the bacterial ring rot pathogen by endophytic bacteria isolated from potato. Phytopathology, 83, 140-146.spa
dc.relation.referencesVan der Krol, A. R., Lenting, P. E., Veenstra, J., van der Meer, I. M., Koes, R. E., Gerats, A. G., … Stuitje, A. R. (1988). An anti-sense chalcone synthase gene in transgenic plants inhibits flower pigmentation. Nature, 333, 866-869. doi:10.1038/333866a0.spa
dc.relation.referencesVan der Krol, A. R., Mur, L. A., Beld, M., Mol, J., & Stuitje, A. R. (1990). Flavonoid genes in petunia: addition of a limited number of gene copies may lead to a suppression of gene expression. The Plant Cell, 2(4), 291-299. Recuperado de https://www.ncbi.nlm.nih.gov/pmc/ articles/PMC159886/pdf/020291.pdf.spa
dc.relation.referencesVega, F. E., Goettel, M. S., Blackwell, M., Chandler, D., Jackson, M. A., Keller, S., … Roy, H. E. (2009). Fungal entomopathogens: new insights on their ecology. Fungal Ecology, 2(4), 149-159. doi:10.1016/j. funeco.2009.05.001.spa
dc.relation.referencesVinale, F., Marra, R., Scala, F., Ghisalberti, E., Lorito, M., & Sivasithamparam, K. (2006). Major secondary metabolites produced by two commercial Trichoderma strains active against different phytopathogens. Letters in Applied Microbiology, 43(2), 143-148. doi:10.1111/ j.1472-765X.2006.01939.x.spa
dc.relation.referencesVinale, F., Sivasithamparam, K., Ghisalberti, E.L., Marra, R., Barbetti, M.J., Li, H., ... Lorito, M. (2008). A novel role for Trichoderma secondary metabolites in the interactions with plants. Physiological and Molecular Plant Pathology, 72(1-3), 80-86. doi:10.1016/j.pmpp.2008.05.005.spa
dc.relation.referencesVorholt, J. A. (2012). Microbial life in the phyllosphere.Nature Reviews Microbiology, 10(12), 828-840. doi:10.1038/ nrmicro2910.spa
dc.relation.referencesVranova, V., Rejsek, K., Skene, K. R., & Formanek, P. (2011). Non-protein amino acids: plant, soil and ecosystem interactions. Plant Soil, 342(1), 31-48. doi:10.1007/ s11104-010-0673-yspa
dc.relation.referencesWalker-Simmons, M., & Ryan, C. A. (1984). Proteinase inhibitor synthesis in tomato leaves: Induction by chitosan oligomers and chemically modified chitosan and chitin. Plant Physiology, 76(3), 787-790. Recuperado de https:// www.ncbi.nlm.nih.gov/pmc/articles/PMC1064374/ pdf/plntphys00581-0243.pdfspa
dc.relation.referencesWally, O. S. D., Critchley, A. T., Hiltz, D., Craigie, J. S., Han, X., Zaharia, L. I., … Prithiviraj, B. (2013a). Erratum to: regulation of phytohormone biosynthesis and accumulation in Arabidopsis following treatment with commercial extract from the marine macroalga Ascophyllum nodosum. Journal of Plant Growth Regulation, 32(2), 340-341. doi:10.1007/s00344-012-9311-7.spa
dc.relation.referencesWally, O. S. D., Critchley, A.T., Hiltz, D., Craigie, J.S., Han, X., Zaharia, L. I., … Prithiviraj, B. (2013b). Regulation of phytohormone biosynthesis and accumulation in Arabidopsis following treatment with commercial extract from the marine macroalga Ascophyllum nodosum. Journal of Plant Growth Regulation, 32(2), 324-339. doi:10.1007/ s00344-012-9301-9spa
dc.relation.referencesWang, M., & Jin, H. (2017). Spray-induced gene silencing: a powerful innovative strategy for crop protection. Trends in Microbiology, 25(1), 4-6. doi:10.1016/j.tim.2016.11.011.spa
dc.relation.referencesWang, M., Thomas, N., & Jin, H. (2017). Cross-kingdom rna trafficking and environmental RNAi for powerful innovative pre-and post-harvest plant protection. Current Opinion in Plant Biology, 38, 133-141. doi:10.1016/j. pbi.2017.05.003.spa
dc.relation.referencesWang, M., Weiberg, A., Lin, F.-M., Thomma, B. P., Huang, H.-D., & Jin, H. (2016). Bidirectional cross-kingdom RNAi and fungal uptake of external RNAs confer plant protection. Nature Plants, 2, 1-10. doi:10.1038/ nplants.2016.151.spa
dc.relation.referencesWeller, D. M., Raaijmakers, J. M., Gardener, B. B., & Thomashow, L. S. (2002). Microbial populations responsible for specific soil suppressiveness to plant pathogens. Annual Review of Phytopathology, 40, 309-348. doi:10.1146/annurev.phyto.40.030402.110010.spa
dc.relation.referencesWhitman, W. B., Coleman, D. C., & Wiebe, W. J. (1998). Prokaryotes: The unseen majority. Proceedings of the National Academy of Sciences, 95(12), 6578-6583.spa
dc.relation.referencesWilson, D. (1995). Endophyte: The evolution of a term, and clarification of its use and definition. Oikos, 73(2), 274- 276. doi:10.2307/3545919.spa
dc.relation.referencesWinterowd, J., & Sandford, P. (1995). Chitin and chitosan. En A. M. Stephen (Ed.), Food polysaccharides and their applications (pp. 441-462) Nueva York, EE. UU.: Marcel Dekker.spa
dc.relation.referencesYamada, A., Shibuya, N., Kodama, O., & Akatsuka, T. (1993). Induction of phytoalexin formation in suspensioncultured rice cells by N-Acetyl-chitooligosaccharides. Bioscience, Biotechnology, and Biochemistry, 57(1), 405- 409. doi:10.1271/bbb.57.405.spa
dc.relation.referencesYang, J., Kloepper, J. W., & Ryu, C.-M. (2009). Rhizosphere bacteria help plants tolerate abiotic stress. Trends in Plant Science, 14(4), 1-4. doi:10.1016/j.tplants.2008.10.004spa
dc.relation.referencesYin, H., Zhao, X., & Du, Y. (2010). Oligochitosan: A plant diseases vaccine—A review. Carbohydrate Polymers, 82(1), 1-8. doi:10.1016/j.carbpol.2010.03.066.spa
dc.relation.referencesYu, X., Ai, C., Xin, L., & Zhou, G. (2011). The siderophoreproducing bacterium, Bacillus subtilis CAS15, has a biocontrol effect on Fusarium wilt and promotes the growth of pepper. European Journal of Soil Biology, 47, 138-145. doi:10.1016/j.ejsobi.2010.11.001.spa
dc.relation.referencesZhang, J., Bruton, B., Howell, C., & Miller, M. (1999). Potential of Trichoderma virens for biocontrol of root rot and vine decline in Cucumis melo L. caused by Monoporascus cannonballus. Subtropical Plant Science, 51, 29-37.spa
dc.relation.referencesZhu, Z., Zhang, B., Chen, B., Cai, Q., & Lin, W. (2016). Biosurfactant production by marine-originated bacteria Bacillus subtilis and its application for crude oil removal. Water, Air, and Soil Pollution, 227(9), 328. doi:10.1007/ s11270-016-3012-yspa
dc.rightsAttribution-NonCommercial-ShareAlike 4.0 International*
dc.rights.accessrightsinfo:eu-repo/semantics/openAccess
dc.rights.urihttp://creativecommons.org/licenses/by-nc-sa/4.0/*
dc.subject.agrovocBioestimulantesspa
dc.subject.agrovocBioplaguicidasspa
dc.subject.agrovocTratamiento biológico contaminantesspa
dc.subject.agrovocNepovirusspa
dc.subject.faoEnfermedades de las plantas - H20spa
dc.subject.redTransversalspa
dc.titleNuevas estrategias para el control biológico de fitopatógenosspa
dc.title.translatedNovel strategies for plant pathogens biological controleng
dc.type.coarhttp://purl.org/coar/resource_type/c_3248
dc.type.driverinfo:eu-repo/semantics/bookPart
dc.type.localCapítulospa
dc.type.localengbook parteng
dc.type.redcolhttps://purl.org/redcol/resource_type/CAP_LIB
dc.type.versionhttp://purl.org/coar/version/c_970fb48d4fbd8a85

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