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Screening a variable germplasm collection of Cucumis melo L. for seedling resistance to Macrophomina phaseolina

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Screening a variable germplasm collection of Cucumis melo L. for seedling resistance to Macrophomina phaseolina

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dc.contributor.author Ambrosio, Marcia MQ es_ES
dc.contributor.author Dantas, Ana CA es_ES
dc.contributor.author Martinez Perez, Eva Maria es_ES
dc.contributor.author Medeiros, Alexis C. es_ES
dc.contributor.author Sousa Nunes, Glauber Henrique de es_ES
dc.contributor.author Picó Sirvent, María Belén es_ES
dc.date.accessioned 2016-05-26T12:25:39Z
dc.date.available 2016-05-26T12:25:39Z
dc.date.issued 2015-11
dc.identifier.issn 0014-2336
dc.identifier.uri http://hdl.handle.net/10251/64799
dc.description.abstract [EN] We evaluate the seedling resistance to charcoal rot caused by Macrophomina phaseolina in ninety-seven Cucumis melo accessions, from different geographical origins and five F1 generations, derived from crosses of five accessions selected for their resistance. Artificial inoculations with the toothpick method, previously reported to be useful for predicting shoot resistance, were performed, and plants were scored using a scale of disease severity. The average disease severity was calculated for each accession and was used to cluster the accession in five reaction classes. The screening revealed that sources of natural resistance to this fungus are limited. However, seedlings of seven accessions of different botanic groups displayed a resistant response to the stem inoculation, one cantaloup from Israel, one conomon accession from Korea, two wild agrestis and one acidulus from Africa, and two dudaim accessions from Middle East. The response of the F1 progenies varied from susceptibility to high resistance, the latter in progenies from the two agrestis wild types. These results suggest differences in the genetic basis of the resistance in the different selected sources. The resistant accessions are suggested to be screened under field conditions to confirm the level of resistance at adult plant stage and under stressful conditions. es_ES
dc.description.sponsorship This work has been partially funded by the Project No 294/13 of the Coordenacao de Aperfeicoamento de Pessoal de Nivel Superior CAPES (Brazil). M. M. Q. Ambrosio and A. C. A. Dantas thank CAPES for their research fellowships. B.Pico thanks the Programa Hispano-Brasileno de Cooperacion Universitaria HBP2012-008 and PHBP14/00021 and to the MINECO project AGL2014-53398-C2-2-R. en_EN
dc.language Inglés es_ES
dc.publisher Springer Verlag (Germany) es_ES
dc.relation.ispartof Euphytica es_ES
dc.rights Reserva de todos los derechos es_ES
dc.subject Melon es_ES
dc.subject Charcoal rot es_ES
dc.subject Soilborne fungus es_ES
dc.subject Germplasm es_ES
dc.subject Resistance es_ES
dc.subject.classification GENETICA es_ES
dc.title Screening a variable germplasm collection of Cucumis melo L. for seedling resistance to Macrophomina phaseolina es_ES
dc.type Artículo es_ES
dc.identifier.doi 10.1007/s10681-015-1452-x
dc.relation.projectID info:eu-repo/grantAgreement/CAPES//294%2F13/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/MECD//HBP2012-008/ES/HBP2012-008/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/MECD//PHBP14%2F00021_1/ES/PHBP14%2F00021_1/ es_ES
dc.relation.projectID info:eu-repo/grantAgreement/MINECO//AGL2014-53398-C2-2-R/ES/APROXIMACIONES BIOTECNOLOGICAS Y CULTURALES PARA LA MEJORA DE LAS RESISTENCIAS Y EL CONTROL DE ENFERMEDADES EN MELON Y SANDIA/ es_ES
dc.rights.accessRights Abierto es_ES
dc.contributor.affiliation Universitat Politècnica de València. Instituto Universitario de Conservación y Mejora de la Agrodiversidad Valenciana - Institut Universitari de Conservació i Millora de l'Agrodiversitat Valenciana es_ES
dc.contributor.affiliation Universitat Politècnica de València. Departamento de Biotecnología - Departament de Biotecnologia es_ES
dc.description.bibliographicCitation Ambrosio, MM.; Dantas, AC.; Martinez Perez, EM.; Medeiros, AC.; Sousa Nunes, GHD.; Picó Sirvent, MB. (2015). Screening a variable germplasm collection of Cucumis melo L. for seedling resistance to Macrophomina phaseolina. Euphytica. 206(2):287-300. https://doi.org/10.1007/s10681-015-1452-x es_ES
dc.description.accrualMethod S es_ES
dc.relation.publisherversion https://dx.doi.org/10.1007/s10681-015-1452-x es_ES
dc.description.upvformatpinicio 287 es_ES
dc.description.upvformatpfin 300 es_ES
dc.type.version info:eu-repo/semantics/publishedVersion es_ES
dc.description.volume 206 es_ES
dc.description.issue 2 es_ES
dc.relation.senia 303767 es_ES
dc.identifier.eissn 1573-5060
dc.contributor.funder Ministerio de Economía y Competitividad es_ES
dc.contributor.funder Coordenaçao de Aperfeiçoamento de Pessoal de Nível Superior, Brasil es_ES
dc.contributor.funder Ministerio de Educación, Cultura y Deporte es_ES
dc.description.references Aegerter BJ, Gordon TR, Davis RM (2000) Occurrence and pathogenicity of fungi associated with melon root rot and vine decline in California. Plant Dis 84:224–230 es_ES
dc.description.references Almeida AMR, Abdelnoor RV, Arias CAA, Carvalho VP, Jacoud Filho DS, Marin SRR, Benato LC, Pinto MC, Carvalho CGP (2003) Genotypic diversity among Brazilian isolates of Macrophomina phaseolina revealed by RAPD. Fitopatol Bras 28:279–285 es_ES
dc.description.references Almeida AMRA, Seixas CDSS, Farias JRBF, Oliveira MCN, Franchini JC, Debiasi H, Costa JM, Gaudêncio CA (2014) Macrophomina phaseolina em soja. Embrapa Soja, Londrina, p 30p es_ES
dc.description.references Ambrósio MMQ, Bueno CJ, Padovani CR, Souza NL (2009) Sobrevivência de fungos fitopatogênicos habitantes do solo, em microcosmo, simulando solarização com prévia incorporação de materiais orgânicos. Summa Phytopathol 35(1):20–25 es_ES
dc.description.references Andrade DEGT, Michereff SJ, Biondi CM, Nascimento CWA, Sales R Jr (2005) Frequência de fungos associados ao colapso do meloeiro e relação com características físicas, químicas e microbiológicas dos solos. Summa Phytopathol 31(4):327–333 es_ES
dc.description.references Bedendo IP (2011) Podridões de raiz e de colo. In: Amorin L, Rezende JAM, Bergamin Filho A (eds) Manual de Fitopatologia: Princípios e conceitos. Agronômica Ceres, São Paulo, pp 443–448 es_ES
dc.description.references Bramel-Cox PJ, Stein IS, Rodgers DM, Claflin LE (1988) Inheritance of resistance to Macrophomina phaseolina (Tassi) Goid. and Fusarium moniliforme Sheldom in Sorghum. Crop Sci 28(1):37–40 es_ES
dc.description.references Bruton BD, Miller E (1997) Occurrence of vine decline diseases of melons in Honduras. Plant Dis 81(6):696 es_ES
dc.description.references Bruton BD, Jeger MD, Reuveni R (1987) Macrophomina phaseolina infection and vine decline in cantaloupe in relation to planting date, soil environment, and maturation. Plant Dis 71(3):259–263 es_ES
dc.description.references Burger Y, Katzir N, Tzuri G, Portnoy V, Saar U, Shriber S, Perl-Treves R, Cohen R (2003) Variation in the response of melon genotypes to Fusarium oxysporum f. sp. melonis race 1 determined by inoculation tests and molecular markers. Plant Pathol 52:204–211 es_ES
dc.description.references Chamorro M, Miranda L, Domínguez P, Medina JJ, Soria C, Romero F, López Aranda JM, De los Santos B (2015) Evaluation of biosolarization for the control of charcoal rot disease (Macrophomina phaseolina) in strawberry. Crop Prot 67:279–286 es_ES
dc.description.references Cohen R (1993) A leaf disk assay for detection of resistance of melons to Sphaerotheca fuliginea race 1. Plant Dis 77(5):513–517 es_ES
dc.description.references Cohen R, Katzir N, Schreiber S, Greenberg R (1996) Occurrence of Shaerotheca fuliginea Race 3 on Cucurbits in Israel. Plant Dis 80:334 es_ES
dc.description.references Cohen R, Omari N, Porat A, Edelstein M (2012) Management of Macrophomina wilt in melons using grafting or fungicide soil application: pathological, horticultural and economical aspects. Crop Prot 35:58–63 es_ES
dc.description.references Cohen R, Tyutyunik J, Fallik E, Oka Y, Tadmor Y, Edelstein M (2014) Phytopathological evaluation of exotic watermelon germplasm as a basic for rootstock breeding. Sci Hortic 165:203–210 es_ES
dc.description.references Dantas AMM, Ambrósio MMQ, Nascimento SRC, Senhor RF, Cézar MA, Lima JSS (2013) Incorporation of plant materials in the control of root pathogens in mushmelon. Revista Agro@ambiente on-line 7(3):338–344 es_ES
dc.description.references Davis RM, Turini TA, Aegerter BJ, Stapleton JJ (2009) Cucurbits charcoal rot, pathogen: Macrophomina phaseolina. UC IPM online. http://www.totoagriculture.org/PDFs/PlantDiseasesPests/1026.pdf . Accessed 25 Feb 2015 es_ES
dc.description.references Dias RCS, Picó B, Espinos A, Nuez F (2004) Resistance to melón vine decline derived from Cucumis melo ssp. agrestis: genetic analysis of root structure and root response. Plant Breed 123:66–72 es_ES
dc.description.references Diourte M, Starr JL, Jegger MJ, Stack JP, Rosenow DT (1995) Charcoal rot (Macrophomina phaseolina) resistance and the effect of water stress on disease development in Sorghum. Plant Pathol 44:196–202 es_ES
dc.description.references Esteras C, Pascual B, Nuez F, Picó MB (2009) Use of ecotilling to identify natural allelic variants of melon candidate genes involved in fuit ripening. 8th Plant Genomics European Meeting (Plant GEM 8) Istambul, 213 es_ES
dc.description.references Esteras C, Formisano G, Roig C, Díaz A, Blanca J, Garcia-Mas J, Gómez-Guillamón ML, López-Sesé AI, Lázaro A, Monforte AJ, Picó B (2013) SNP genotyping in melons: genetic variation, population structure, and linkage disequilibrium. Theor Appl Genet 126(5):1285–1303. doi: 10.1007/s00122-013-2053-5 es_ES
dc.description.references Fang X, Phillips D, Li H, Sivasithamparama K, Barbettia MJ (2011) Comparisons of virulence of pathogens associated with crown and root diseases of strawberry in Western Australia with special reference to the effect of temperature. Sci Hortic 131(22):39–48 es_ES
dc.description.references Food and Agriculture Organization (2014) Faostat. http://faostat.fao.org/site/567/default.aspx#ancor . Accessed 11 Nov 2011 es_ES
dc.description.references García-Jiménez J, Martínez-Ferrer G, Armengol J, Velazquez MT, Orts M, Juárez M, Ortega A, Jordá MC, Alfaro A (1993) Agentes asociados al colapso del melón en distintas zonas españolas. Bol San Veg Plagas 19:401–423 es_ES
dc.description.references Grezes-Besset B, Lucante N, Kelechian V, Dargent R, Muller H (1996) Evaluation of castor bean resistance to sclerotial wilt disease caused by Macrophomina phaseolina. Plant Dis 80(8):842–846 es_ES
dc.description.references Hutcheson SW (1998) Current concepts of active defense in plants. Annu Rev Phytopathol 36:59–90 es_ES
dc.description.references Iglesias A, Picó B, Nuez F (2000) A temporal genetic analysis of disease resistance genes resistance to melon vine decline derived from Cucumis melo var. agrestis. Plant Breed 119:329–334 es_ES
dc.description.references Islam MS, Haque MS, Islam MM, Emdad EM, Halim A, Hossen QMM, Hossain MZ, Ahmed B, Rahim S, Rahman MS, Alam MM, Hou S, Wan X, Saito JÁ, Alam M (2012) Tools to kill: genome of one of the most destructive plant pathogenic fungi Macrophomina phaseolina. BMC Genomic 13(493):1–16 es_ES
dc.description.references Jacob CJ, Krarup C, Díaz A, Latorre BA (2013) A severe outbreak of charcoal rot in cantaloupe melon caused by Macrophomina phaseolina in Chile. Plant Dis 97(1):141 es_ES
dc.description.references Kaur S, Dhillon GS, Brar SK, Vallad GE, Chand R, Chauhan VB (2012) Emerging phytopathogen Macrophomina phaseolina: biology, economic importance and current diagnostic trends. Crit Rev Microbiol 38(1):136–151 es_ES
dc.description.references Keeling A (1982) Seedling test for resistance to soybean stem canker caused by diaporthe phaseolorum var. caulivora. Phytopathology 72(7):807–809 es_ES
dc.description.references Khan SN (2007) Macrophomina phaseolina as causal agent for charcoal rot of sunflower. Mycopath 5(2):111–118 es_ES
dc.description.references Khan SH, Shuaib M (2007) Identification of sources of resistance in Mung bean (Vigna radiata L.) against Charcoal Rot Macrophomina phaseolina (Tassi) Goid. Afr Crop Sci 8:2101–2102 es_ES
dc.description.references Krikun J, Orion D, Nachmias A, Reuveni R (1982) The role of soilborne pathogens under conditions of intensive agricultura. Phytoparasitica 10(4):247–258 es_ES
dc.description.references Mahmoudi SB, Ghashghaie S (2013) Reaction of sugar beet S1 lines and cultivars to different isolates of Macrophomina phaseolina and Rhizoctonia solani AG-2-2IIIB. Euphytica 190:39–445. doi: 10.1007/s10681-012-0832-8 es_ES
dc.description.references Mertely J, Seijo T, Peres N (2005) First report of Macrophomina phaseolina causing a crown rot of strawberry in Florida. Plant Dis 89(4):434 es_ES
dc.description.references Mughogho LK, Pande S (1984) Charcoal Rot of Sorghum. In: Mughogho LK, Rosenberg G (eds) Sorghum root and stalk rots, a critical review: proceedings of the consultative group discussion on research needs and strategies for control of sorghum root and stalk rot diseases. Icrisat, Bellagio, pp 11–24 es_ES
dc.description.references Nischwitz C, Olsen M, Rasmussen S (2004) Effect of irrigation type on inoculum density of Macrophomina phaseolina in melon fields in Arizona. J Phytopathol 152(3):133–137 es_ES
dc.description.references Noling JW, Becker JO (1994) The challenge of research and extension to define and implement alternatives to methyl bromide. J Nematol 26(4S):573–586 es_ES
dc.description.references Pitrat M (2008) Melon. In: Prohens J, Nuez F (eds) Handbook of plant breeding. Springer, New York, pp 283–315 es_ES
dc.description.references Purkayastha S, Kaur B, Dilbaghi N, Chaudhury A (2006) Characterization of Macrophomina phaseolina, the charcoal rot pathogen of cluster bean, using conventional techniques and PCR-based molecular markers. Plant Pathol 55:106–116. doi: 10.1111/j.1365-3059.2005.01317.x es_ES
dc.description.references Radwan O, Rouhana LV, Hartman GL, Korban SS (2014) Genetic mechanisms of host-pathogen interactions for charcoal rot in soybean. Plant Mol Biol Report 32(3):617–629 es_ES
dc.description.references Ravf BA, Ahmad I (1998) Studies on correlation of seed infection to field incidence of Alternaria alternate and Macrophomina phaseolina in Sunflower. 13th Iranian Plant Protection Congress-Karaj, p 113 es_ES
dc.description.references Roustaee A, Reyhan MK, Jafari M (2011) Study of interaction between salinity and charcoal rot diseases of melon (Macrophomina phaseolina) in Semnan and Garmsar. Desert 16(2):175–218 es_ES
dc.description.references Salari M, Panjehkeh N, Nasirpoor Z, Abkhoo J (2012) Reaction of melón (Cucumis melo L.) cultivars to soil-borne plant pathogenic fungi in Iran. Afr J Biotecnol 11(87):15324–15329 es_ES
dc.description.references Sales R Jr, Oliveira OF, Medeiros EV, Guimarães IM, Correia KC, Michereff SJ (2012) Ervas daninhas como hospedeiras alternativas de patógenos causadores do colapso do meloeiro. Rev Ciênc Agron 43(1):195–198 es_ES
dc.description.references Sas Institute (2000) Sas/Stat user´s guide: statistics, version 8.01, v. 2, 4. SAS Institute, Inc, Cary es_ES
dc.description.references Scandiani MM, Ruberti DS, Giorda LM, Pioli RN, Luque AG, Bottai H, Ivancovich JJ, Aoki T, O´Donnell K (2011) Comparison of inoculation methods for characterizing relative aggressiveness of two soybean sudden-death syndrome pathogens, Fusarium virguliforme and F. tucumaniae. Trop Plant Pathol 36(3):133–140 es_ES
dc.description.references Scott AJ, Knott MA (1974) Cluster analysis method for grouping means in the analysis of variance. Biometrics 30(3):507–512 es_ES
dc.description.references Sebastian P, Schaefer H, Telford IRH, Renner SS (2010) Cucumber (Cucumis sativus) and melon (C. melo) have numerous wild relatives in Asia and Australia, and the sister species of melon is from Australia. Proc Natl Acad Sci 107:14269–14273 es_ES
dc.description.references Sharmishtha P, Bhavneet K, Neeraj D, Ashok C (2006) Evaluation of cluster bean genotypes for resistance to charcoal rot caused by Macrophomina phaseolina using different host inoculation methods pages. J Crop Improv 15(1):67–79 es_ES
dc.description.references Shekhar M, Sharma RC, Singh L, Dutta R (2006) Morphological and pathogenic variability of Macrophomina phaseolina (Tassi.) Goid Incitant of charcoal rot of maize in India. Indian Phytopath 59(3):294–298 es_ES
dc.description.references Stapleton JJ (2000) Soil solarization in various agricultural production systems. Crop Prot 19:837–841 es_ES
dc.description.references Twizeyimana M, Hill CB, Pawlowski M, Paul C, Hartman GL (2012) A cut-stem inoculation technique to evaluate soybean for resistance to Macrophomina phaseolina. Plant Dis 96(8):1210–1215 es_ES
dc.description.references Watson A, Napier T (2009) Disease of cucurbit vegetables. Primefact 832:1–6 es_ES
dc.description.references Wolukau JN, Zhou XH, Li Y, Zhang Y, Chen J (2007) Resistance to gummy stem blight in melon (Cucumis melo L.) germplasm and inheritance of resistance from plant introductions 157076, 420145, and 323498. HortScience 42(2):215–221 es_ES
dc.description.references Wrather JA, Anderson TR, Arsyad DM, Tan Y, Ploper LD, Porta-Puglia A, Ram HH, Yorinori JT (2001) Soybean disease loss estimates for the top ten soybean-producing countries in 1998. Can J Plant Pathol 23:115–121 es_ES


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