dc.creatorRodriguez M.A.
dc.creatorCabrera G.
dc.creatorGozzo F.C.
dc.creatorEberlin M.N.
dc.creatorGodeas A.
dc.date2011
dc.date2015-06-30T20:43:51Z
dc.date2015-11-26T14:54:23Z
dc.date2015-06-30T20:43:51Z
dc.date2015-11-26T14:54:23Z
dc.date.accessioned2018-03-28T22:06:18Z
dc.date.available2018-03-28T22:06:18Z
dc.identifier
dc.identifierJournal Of Applied Microbiology. , v. 110, n. 5, p. 1177 - 1186, 2011.
dc.identifier13645072
dc.identifier10.1111/j.1365-2672.2011.04970.x
dc.identifierhttp://www.scopus.com/inward/record.url?eid=2-s2.0-79953732794&partnerID=40&md5=758bd2e37135a85af50593358c3599db
dc.identifierhttp://www.repositorio.unicamp.br/handle/REPOSIP/109015
dc.identifierhttp://repositorio.unicamp.br/jspui/handle/REPOSIP/109015
dc.identifier2-s2.0-79953732794
dc.identifier.urihttp://repositorioslatinoamericanos.uchile.cl/handle/2250/1255144
dc.descriptionAims: To establish the modes of action of the antagonistic fungal strain Clonostachys rosea BAFC3874 isolated from suppressive soils against Sclerotinia sclerotiorum and to determine its potential as a biocontrol agent. Methods and Results: The antagonistic activity of C. rosea BAFC3874 was determined in vitro by dual cultures. The strain effectively antagonized S. sclerotiorum in pot-grown lettuce and soybean plants. Antifungal activity assays of C. rosea BAFC3874 grown in culture established that the strain produced antifungal compounds against S. sclerotiorum associated with secondary metabolism. High mycelial growth inhibition coincided with sclerotia production inhibition. The C. rosea strain produced a microheterogeneous mixture of peptides belonging to the peptaibiotic family. Moreover, mycoparasitism activity was observed in the dual culture. Conclusions: Clonostachys rosea strain BAFC3874 was proved to be an effective antagonist against the aggressive soil-borne pathogen S. sclerotiorum in greenhouse experiments. The main mechanisms involve peptaibiotic metabolite production and mycoparasitism activity. Significance and Impact of the Study: Clonostachys rosea BAFC3874 may be a good fungal biological control agent against S. sclerotiorum. In addition, we were also able to isolate and identify peptaibols, an unusual family of compounds in this genus of fungi. © 2011 The Authors. Journal of Applied Microbiology © 2011 The Society for Applied Microbiology.
dc.description110
dc.description5
dc.description1177
dc.description1186
dc.descriptionAdams, P.B., Ayers, W.A., Ecology of Sclerotinia species (1979) Phytopathology, 69, pp. 896-899
dc.descriptionAltomare, C., Norvell, W.A., Björkman, T., Harman, G.E., Solubilization of phosphates and micronutrients by the plant-growth promoting and biocontrol fungus Trichoderma harzianum Rifai 1295-22 (1999) Appl Environ Microbiol, 65, pp. 2926-2933
dc.descriptionAryantha, I.N.P., Guest, D.I., Mycoparasitic and antagonistic inhibition on Phytophthora cinnamomi rands by microbial agents isolated from manure compost (2006) Plant Pathol J, 5, pp. 291-298
dc.descriptionBarakat, R.M., Al-Mahareeq, F., AL-Masri, M., Biological control of Sclerotium rolfsii by using indigenous Trichoderma spp. isolates from Palestine (2006) Hebron Univ Res J, 2, pp. 27-47
dc.descriptionBennett, A.J., Whipps, J.M., Beneficial microorganism survival on seed, roots and in rhizosphere soil following application to seed during drum priming (2008) Biol Control, 44, pp. 349-361
dc.descriptionBoland, G.J., Hall, R., Index of plant hosts of Sclerotinia sclerotiorum (1994) Can J Plant Pathol, 16, pp. 93-108
dc.descriptionButler, M.J., Day, A.W., Henson, J.M., Money, N.P., Pathogenic properties of fungal melanins (2001) Mycologia, 93, pp. 1-8
dc.descriptionButt, T.M., Jackson, C., Magan, M., Introduction-fungal biological control agents: progress, problems and potential (2001) Fungi as Biocontrol Agents: Progress, Problems and Potential, pp. 1-8. , ed. Butt, T., Jackson, C. and Magan, N. Southampton and Cranfield, UK: University of Wales
dc.descriptionChikanishi, T., Hasumi, K., Harada, T., Kawasaki, N., Endo, A., Clonostachin, a novel peptaibol that inhibits platelet aggregation (1996) J Antibiot, 50, pp. 105-110
dc.descriptionDaniel, J.F., Rodrigues Filho, E., Peptaibols of Trichoderma (2007) Nat Prod Rep, 24, pp. 1128-1141
dc.descriptionDegenkolb, T., Gräfenhan, T., Nirenberg, H.I., Gams, W., Brückner, H., Trichoderma brevicompactum complex: rich source of novel and recurrent plant-protective polypeptide antibiotics (peptaibiotics) (2006) J Agric Food Chem, 54, pp. 7047-7061
dc.descriptionDegenkolb, T., Kirschbaum, J., Brückner, N., New sequences, constituents, and producers of peptaibiotics: an updated review (2007) Chem Biodivers, 4, pp. 1052-1067
dc.descriptionDennis, C., Webster, J., Antagonistic properties of species-groups of Trichoderma I. Production of non-volatile antibiotics (1971) Mycol Res, 57, pp. 25-39
dc.descriptionDennis, C., Webster, J., Antagonistic properties of species-groups of Trichoderma: II. Production of volatile antibiotics (1971) Mycol Res, 57, pp. 41-48
dc.descriptionDomsch, K.H., Gams, W., Anderson, T.H., (1980) Compendium of Soil Fungi, 1. , London, UK: Academic Press
dc.descriptionErvio, L.R., Halkilahti, A.M., Pohjakallio, O., The survival in soil of Sclerotinia species and their ability to form mycelia (1994) Adv Front Plant Sci, 8, pp. 121-133
dc.descriptionFuhrmann, J.J., Isolation of microorganisms producing antibiotics (1994) Methods of Soil Analysis. Part 2. Microbiological and Biochemical Properties, pp. 379-403. , In Soil Science Society of America Book Series ed. Weaver, R.W., Angle, S., Bottomley, P., Bezdicek, D., Smith, S., Tabatabai, A. and Wollum, A. Madison, WI, USA: Soil Science Society of America
dc.descriptionpp: 1121
dc.descriptionGromadzka, K., Chelkowski, J., Popiel, D., Kachlicki, P., Kostecki, M., Golinski, P., Solid substrate bioassay to evaluate the effect of Trichoderma and Clonostachys on the production of zearalenone by Fusarium species (2009) World Mycotoxin J, 2, pp. 45-52
dc.descriptionHadacek, F., Greger, H., Testing of antifungal natural products: methodologies, comparability of results and assay choice (2000) Phytochem Anal, 11, pp. 137-147
dc.descriptionHarish, S., Manjula, K., Podile, A.R., Fusarium udum is resistant to the mycolytic activity of a biocontrol strain of Bacillus subtilis AF 1 (1998) FEMS Microbiol Ecol, 25, pp. 385-390
dc.descriptionHarman, G., Petzoldt, R., Comis, A., Jie Chen, J., Interactions between Trichoderma harzianum strain T22 and maize inbred line Mo17 and effects of these interactions on diseases caused by Pythium ultimum and Colletotrichum graminicola (2004) Phytopathology, 94, pp. 147-153
dc.descriptionHermosa, M.R., Grondona, I., Iturriaga, E.A., Diaz-Minguez, J.M., Castro, C., Monte, E., Garcia-Acha, I., Molecular characterization and identification of biocontrol isolates of Trichoderma spp (2000) Appl Environ Microbiol, 66, pp. 1890-1898
dc.descriptionInnocenti, G., Roberti, R., Montanari, M., Zakrisson, E., Efficacy of microorganisms antagonistic to Rhizoctonia cerealis and their cell wall degrading enzymatic activities (2003) Mycol Res, 107, pp. 421-427
dc.descriptionJackson, A.M., Whipps, J.M., Lynch, J.M., In vitro screening for the identification of potential biocontrol agents of Allium white rot (1991) Mycol Res, 95, pp. 430-434
dc.descriptionJaworski, A., Brückner, H., New sequences and new fungal producers of peptaibol antibiotics antiamoebins (2000) J Pept Sci, 6, pp. 149-167
dc.descriptionKeinath, A.P., Fravel, D.R., Papavizas, G.C., Potential of Gliocladium roseum for biocontrol of Verticillium dahliae (1991) Phytopathology, 81, pp. 644-648
dc.descriptionKnudsen, I.M.B., Hockenhull, J., Jensen, D.F., Biocontrol of seedling diseases of barley and wheat caused by Fusarium culmorum and Bipolaris sorokiniana: effects of selected fungal antagonists on growth and yield components (1995) Plant Pathol, 44, pp. 467-477
dc.descriptionKohn, L.M., Delimitation of the economically important plant pathogenic Sclerotinia species (1979) Phytopathology, 69, pp. 873-886
dc.descriptionLe Tourneau, D., Morphology, cytology and physiology of Sclerotinia species in culture (1979) Phytopathology, 69, pp. 887-890
dc.descriptionMejía, L.C., Rojas, E.I., Maynard, Z., Van Bael, S., Arnold, A.E., Hebbar, P., Samuels, G.J., Robbins, N., Endophytic fungi as biocontrol agents of Theobroma cacao pathogens (2008) Biol Control, 46, pp. 4-14
dc.descriptionMelgarejo, P., Carrillo, R., Sagasta, E.M., Mycoflora of peach twigs and flowers and its possible significance in biological control of Monilia laxa (1985) Mycol Res, 85, pp. 313-317
dc.descriptionNobre, S.A.M., Maffia, L.A., Mizubuti, E.S.G., Cota, L.V., Dias, A.P.S., Selection of Clonostachys rosea isolates from Brazilian ecosystems effective in controlling Botrytis cinerea (2005) Biol Control, 34, pp. 132-143
dc.descriptionNosanchuk, J.D., Casadevall, A., The contribution of melanin to microbial pathogenesis (2003) Cell Microbiol, 5, pp. 203-223
dc.descriptionRoberti, R., De Vero, L., Pisiand, A., Cesari, A., Biological control of wheat foot rot by antagonistic fungi and their modes of action (2001) IOBC/WPRS Bull, 24, pp. 13-16
dc.descriptionRoberti, R., Veronesi, A.R., Cesari, A., Cascote, A., Di Berardino, I., Bertini, L., Caruso, C., Induction of PR proteins and resistance by the biocontrol agent Clonostachys rosea in wheat plants infected with Fusarium culmorum (2008) Plant Sci, 175, pp. 339-347
dc.descriptionRodríguez, M.A., (2004) Hongos del suelo antagonistas de Sclerotinia sclerotiorum. Selección y estudio de potenciales agentes de biocontrol, , Tesis Doctoral. Buenos Aires, Argentina: Departamento de Biodiversidad y Biología Experimental, FCEyN, UBA
dc.descriptionSchirmböck, M., Lorito, M., Wang, Y.L., Hayes, C.K., Arisan-Atac, C., Scala, F., Harman, G.E., Kubicek, C.P., Parallel formation and synergism of hydrolytic enzymes and peptaibol antibiotics, molecular mechanisms involved in the antagonistic action of Trichoderma harzianum against phytopathogenic fungi (1994) Appl Environ Microbiol, 60, pp. 4364-4370
dc.descriptionSchroers, H.J., Samuels, G.J., Seifert, K.A., Gams, W., Classification of the mycoparasite Gliocladium roseum in Clonostachys as C. rosea, its relationship to Bionectria ochroleuca, and notes on other Gliocladium-like fungi (1999) Mycologia, 91, pp. 365-385
dc.descriptionShoresh, M., Harman, G.E., Mastouri, F., Induced systemic resistance and plant responses to fungal biocontrol agents (2010) Annu Rev Phytopathol, 48, pp. 1-23
dc.descriptionSingh, S.-B., Herath, K., Guan, Z., Zink, D.L., Dombrowski, D.A., Polishook, J.D., Silverman, K.C., Lingham, R.B., Integramides A and B, Two novel non-nibosomal linear peptides containing nine Cr-Methyl amino acids produced by fungal fermentations that are inhibitors of HIV-1 integrase (2002) Org Lett, 4, pp. 1431-1434
dc.descriptionSutton, J.C., Li, D.W., Peng, G., Yu, H., Zhang, P., Valdebeneito-Sanhueza, R.M., Gliocladium roseum: a versatile adversary of Botrytis cinerea in crops (1997) Plant Dis, 81, pp. 316-328
dc.descriptionVey, A., Hoag, I.R.E., Butt, T.M., Toxic metabolites of fungal biocontrol agents (2001) Fungi as Biocontrol Agents: Progress, Problems and Potential, p. 311. , ed. Butt, T.M., Jackson, C. and Magan, N. Bristol, USA: CAB International Publishing
dc.descriptionViterbo, A., Wiest, A., Brotman, Y., Chet, I., Kenerley, C., The 18mer peptaibols from Trichoderma virens elicit plant defence responses (2007) Mol Plant Pathol, 8, pp. 737-746
dc.descriptionWhipps, J.M., Effect of media on growth and interactions between a range of soil-borne glasshouse pathogens and antagonistic fungi (1987) New Phytol, 107, pp. 127-142
dc.descriptionWhipps, J.M., Microbial interactions and biocontrol in the rhizosphere (2001) J Exp Bot, 52, pp. 487-511
dc.descriptionWhipps, J.M., Magan, N., Effects of nutrient status and water potential of media on fungal growth and antagonist-pathogen interactions (1986) EPPO Bulletin, 17, pp. 581-591
dc.descriptionYedidia, I., Srivastva, A.K., Kapulnik, Y., Chet, I., Effect of Trichoderma harzianum on microelement concentrations and increased growth of cucumber plants (2001) Plant Soil, 235, pp. 235-242
dc.descriptionZafari, D., Koushki, M.M., Bazgir, E., Biocontrol evaluation of wheat take-all disease by Trichoderma screened isolates (2008) Afr J Biotechnol, 7, pp. 3653-3659
dc.descriptionZahir, Z.A., Arshad, M., Frankenberger, W.T., Plant growth promoting rhizobacteria: applications and perspectives in agriculture (2004) Adv Agron, 81, pp. 97-168
dc.descriptionZazzerini, A., Tosi, L., Antagonistic activity of fungi isolated from sclerotia of Sclerotinia sclerotiorum (1985) Plant Pathol, 34, pp. 415-421
dc.languageen
dc.publisher
dc.relationJournal of Applied Microbiology
dc.rightsfechado
dc.sourceScopus
dc.titleClonostachys Rosea Bafc3874 As A Sclerotinia Sclerotiorum Antagonist: Mechanisms Involved And Potential As A Biocontrol Agent
dc.typeArtículos de revistas


Este ítem pertenece a la siguiente institución