998 resultados para F-sp-lycopersici


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A murcha-de-fusário, causada por Fusarium oxysporum f. sp. lycopersici (FOL), é uma importante doença do tomateiro (Lycopersicon esculentum Mill.) no mundo. Existem três raças identificadas do patógeno, sendo que a raça 3 ainda não havia sido registrada no Brasil. Este trabalho teve dois objetivos: comunicar a presença da raça 3 de FOL no Brasil e selecionar fontes de resistência às três raças do patógeno. Nove isolados de FOL foram obtidos de dois híbridos de tomate (Carmen e Alambra) com sintomas de mrucha, provenientes de três lavouras localizadas nos municípios de Venda Nova do Imigrante - Espírito Santo e Domingos Martins 9ES). Estes dois híbridos comerciais de tomate são considerados resistentes ás raças 1 e 2 de FOL. O teste de virulência foi feito com as cultivares: Ponderosa (suscetível a todasa as raças), IPA-5 (resistente à raça 1), Floradade (resistente às raças 1 e 2) e BHRS-2,3 (resistente às raças 1, 2 e 3). Todos os isolados foram virulentos às cultivares Ponderosa, IPA-R e Floradade e ainda infectaram algumas plantas de BHRS-2,3. O teste de virulência foi repetido com as mesmas cultivares mas também incluindo o acesso 'LA 716' da espécie selvagem L. pennellii. Foram obtidos resultados semelhantes para as cultivares, enquanto L. pennellii apresentou uma reação de imunidade ao patógeno. Estes resultadaos comprovam que os novos isolados de ES pertencem à raça 3 de FOL. Uma coleção de germoplasma de acessos de Lycopersicon spp. da Embrapa Hortaliças foi inicialmente avaliada quanto à reação de um dos isolados da raça 3 e uma parte deles às raças 1 e 2. Novas fontes de resistência múltipla foram identificadas em acessos de L. chilense, l. hirsutum e L. peruvianum, sendo dez genótipos imunes às raças 2 e 3 e cinco às três raças. A identificação destas fontes de resistência peermite que os programas de melhoramento de tomate antecipem potenciais problemas, inclusive a emergência de novas raças de FOL, além das raças 1, 2 e 3.

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Three concentrations of Xenorhabdus nematophila and Xenorhabdus spp., (4x10(5,) 4x10(6,) 4x10(7) cells/ml) were evaluated in the laboratory and in pot experiments to test their antagonistic effects on Fusarium oxysporum f.sp., lycopersici. All concentrations effectively inhibited its growth on agar plates. In soil under greenhouse conditions treatments with each bacterium at 4x10(7) cells/ml reduced the disease incidence of tomato by up to 40.38 and 47.54% respectively and there were significant increases of plant biomass by 198 and 211% respectively. The rhizosphere population of Fusarium oxysporum f.sp., lycopersici was reduced by 97%. The Xenorhabdus spp., was comparatively more effective than X. nematophila.

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Genetic variation among 29 isolates of Fusarium oxysporum f.sp. zingiberi (Foz) collected from diseased ginger rhizome in production regions throughout Queensland was analysed using DNA amplification fingerprinting (DAF). Eight isolates of other Fusarium species and/or formae speciales were included for comparative analysis. Within the Foz isolates, three haplotypes were identified based on 17 polymorphic bands generated with five primers. Two groups showed very little genetic variation (98.6% similarity), whereas the third single isolate was quite distinct in terms of its molecular profile (77.2% similarity). Genetic similarity among the Fusarium solani, F. oxysporum f.sp. lycopersici and F. oxysporum f.sp. cubense races 1, 3 and 4 isolates compared well with the published literature.

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Fusarium oxysporum f. sp. cubense (Foc), causal agent of fusarium wilt of banana, is among the most destructive pathogens of banana and plantain. The development of a molecular diagnostic capable of reliably distinguishing between the various races of the pathogen is of key importance to disease management. However, attempts to distinguish isolates using the standard molecular loci typically used for fungal phylogenetics have been complicated by a poor correlation between phylogeny and pathogenicity. Among the available alternative loci are several putative effector genes, known as SIX genes, which have been successfully used to differentiate the three races of F. oxysporum f. sp. lycopersici. In this study, an international collection of Foc isolates was screened for the presence of the putative effector SIX8. Using a PCR and sequencing approach, variation in Foc-SIX8 was identified which allowed race 4 to be differentiated from race 1 and 2 isolates, and tropical and subtropical race 4 isolates to be distinguished from one another.

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The tomato I-3 gene introgressed from the Lycopersicon pennellii accession LA716 confers resistance to race 3 of the fusarium wilt pathogen Fusarium oxysporum f. sp. lycopersici. We have improved the high-resolution map of the I-3 region of tomato chromosome 7 with the development and mapping of 31 new PCR-based markers. Recombinants recovered from L. esculentum cv. M82 × IL7-2 F2 and (IL7-2 × IL7-4) × M82 TC1F2 mapping populations, together with recombinants recovered from a previous M82 × IL7-3 F2 mapping population, were used to position these markers. A significantly higher recombination frequency was observed in the (IL7-2 × IL7-4) × M82 TC1F2 mapping population based on a reconstituted L. pennellii chromosome 7 compared to the other two mapping populations based on smaller segments of L. pennellii chromosome 7. A BAC contig consisting of L. esculentum cv. Heinz 1706 BACs covering the I-3 region has also been established. The new high-resolution map places the I-3 gene within a 0.38 cM interval between the molecular markers RGA332 and bP23/gPT with an estimated physical size of 50-60 kb. The I-3 region was found to display almost continuous microsynteny with grape chromosome 12 but interspersed microsynteny with Arabidopsis thaliana chromosomes 1, 2 and 3. An S-receptor-like kinase gene family present in the I-3 region of tomato chromosome 7 was found to be present in the microsyntenous region of grape chromosome 12 but was absent altogether from the A. thaliana genome.

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The tomato I-3 and I-7 genes confer resistance to Fusarium oxysporum f. sp. lycopersici (Fol) race 3 and were introgressed into the cultivated tomato, Solanum lycopersicum, from the wild relative Solanum pennellii. I-3 has been identified previously on chromosome 7 and encodes an S-receptor-like kinase, but little is known about I-7. Molecular markers have been developed for the marker-assisted breeding of I-3, but none are available for I-7. We used an RNA-seq and single nucleotide polymorphism (SNP) analysis approach to map I-7 to a small introgression of S. pennellii DNA (c. 210 kb) on chromosome 8, and identified I-7 as a gene encoding a leucine-rich repeat receptor-like protein (LRR-RLP), thereby expanding the repertoire of resistance protein classes conferring resistance to Fol. Using an eds1 mutant of tomato, we showed that I-7, like many other LRR-RLPs conferring pathogen resistance in tomato, is EDS1 (Enhanced Disease Susceptibility 1) dependent. Using transgenic tomato plants carrying only the I-7 gene for Fol resistance, we found that I-7 also confers resistance to Fol races 1 and 2. Given that Fol race 1 carries Avr1, resistance to Fol race 1 indicates that I-7-mediated resistance, unlike I-2- or I-3-mediated resistance, is not suppressed by Avr1. This suggests that Avr1 is not a general suppressor of Fol resistance in tomato, leading us to hypothesize that Avr1 may be acting against an EDS1-independent pathway for resistance activation. The identification of I-7 has allowed us to develop molecular markers for marker-assisted breeding of both genes currently known to confer Fol race 3 resistance (I-3 and I-7). Given that I-7-mediated resistance is not suppressed by Avr1, I-7 may be a useful addition to I-3 in the tomato breeder's toolbox.

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O trabalho teve por objetivo verificar o efeito dos isolados de Fusarium oxysporum não patogênicos (143/1, 233, 233/1, 245, 245/1, 251, 251/2 e 257) no controle da murcha de Fusarium causada por Fusarium oxysporum f. sp. lycopersici, raça 2 (isolados C-21A, TO11 e TO245) em plântulas de tomateiro cv. Viradoro. O sistema radicular de plântulas de tomateiro, com 30 dias de idade, foi imerso na suspensão de inóculo dos isolados de F. oxysporum não patogênicos na concentração de 106 conídios mL-1 e em seguida as mudas foram transplantadas para substrato de cultivo.

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An isolate of Gliocladium virens from disease affected soil in a commercial tomato greenhouse proved highly antagonistic to Fusarium oxysporum f.sp. lycopersici, used together with an isolate of the nematophagus fungus Verticillium chlamydosporium. Significant disease control was obtained when young mycelial preparation (on a food-base culture) of the G. virens together with V. chlamydosporium was applied in potting medium. Similar results were observed when a Trichoderma harzianum isolate was treated in combination with the V. chlamydosporium isolate. Most promising, in terms of minimizing the Fusarium wilt of tomato incidence, was also the effect of the bacteria associated with entomopathogenic nematodes (Steinernema spp.), Pseudomonas oryzihabitans and Xenorhabdus nematophilus.

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Fusarium oxysporum f.sp. lycopersici (Fol) is the causal agent of the Fusarium wilt disease of tomato. Soil fumigant (mainly methyl bromide) applications are in use for its control. With the increasing environmental awareness, biological control methods are under investigation for their effectiveness, including the use of antagonists. Pseudomonas oryzihabitans (=Flavimonas oryzihabitans), a symbiont of the entomopathogenic nematode Steinernema abbasi was investigated as an antagonism of a Fol isolate in two laboratory and two glasshouse experiments. Bacteria and cell-free filtrate antifungal activity were tested both in dual cultures and in broth culture. In pot experiments, suspensions of bacteria in five concentrations (106, 105, 104, 103 and 102 cells/ml) were tested for their ability to control the pathogen at 25±3°C. In all tests the bacterium significantly inhibited the growth of Fol mycelium in vitro. Similar results were obtained when the bacterium was also tested against Fusarium oxysporum f.sp. radicis lycopersici and against Rhizoctonia solani. Moreover, when it was introduced into the soil, it was able to suppress the Fusarium wilt of tomato.

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A preservação de fungos fitopatogênicos por longos períodos de tempo é importante para que pesquisas possam ser realizadas a qualquer momento. Os fungos habitantes do solo são organismos que podem produzir estruturas de resistência em face de situações adversas, tais como ausência de hospedeiros e ou condições climáticas desfavoráveis para a sua sobrevivência. O objetivo deste trabalho foi desenvolver metodologias de preservação de estruturas de resistência para os fungos Fusarium oxysporum f.sp. lycopersici raça 2, Macrophomina phaseolina, Rhizoctonia solani AG4 HGI, Sclerotium rolfsii, Sclerotinia sclerotiorum e Verticillium dahliae. O delineamento foi inteiramente casualizado, com um método de produção de estruturas para cada fungo, submetido a três tratamentos [temperatura ambiente de laboratório (28±2ºC), de geladeira (5ºC) e de freezer (-20ºC)] e com dois frascos por temperatura. Mensalmente, e por um período de um ano, a sobrevivência e o vigor das colônias de cada patógeno foram avaliadas em meios de cultura específicos. Testes de patogenicidade foram realizados após um ano de preservação, com as estruturas que sobreviveram aos melhores tratamentos (temperatura) para todos os fungos. As melhores temperaturas (tratamentos) para preservar os fungos foram: a) F. oxysporum f.sp. lycopersici em temperatura de refrigeração e de freezer (5,2 e 2,9 x 10³ufc.g-1 de talco, respectivamente); b) M. phaseolina em temperatura de refrigeração [100% de sobrevivência (S) e índice 3 de vigor (V)] e S. rolfsii em temperatura ambiente (74,4% S e 1 V) e c) S. sclerotiorum e V. dahliae, ambos em temperatura de freezer (100% S e 3 V). Após um ano de preservação, somente V. dahliae perdeu a patogenicidade na metodologia desenvolvida.