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At least 19 recordsLinked to original sources

Potential of induced resistance to control Oidium lycopersici on tomato and tobacco.

Powdery mildew is widespread on greenhouse-cultivated tomato especially in Europe. Rhizobacteria, particularly Pseudomonas strains are well known for inducing resistance to many diseases on field crops. Plant disease resistance can also be induced by treatment with benzothiadiazole (BTH) which specifically induces the salicylic acid-dependent defence pathway. We investigated the possibility of inducing resistance to Oidium lycopersici on tomato and tobacco by treatment with BTH or with resistance-inducing rhizobacteria. Tomato (Lycopersicon esculentum) cv. Moneymaker and NahG tomato (a transgenic tomato which cannot accumulate salicylic acid (SA)) were planted in soil treated with P. aeruginosa KMPCH, a SA-producing mutant of P. aeruginosa 7NSK2, at 10(8) CFU/g. Four weeks-old plants were inoculated by exposure to an atmosphere heavily infested with O. lycopersici. P. aeruginosa 7NSK2 and KMPCH; and P. fluorescens WCS 417 were similarly tested on tobacco cv. Xanthi and Samsun NN. The results showed that the rhizobacteria had no effect on the levels of infection of the plants by O. lycopersici. There were also no differences between NahG and wild type plants. We conclude that the induced resistance pathways activated by rhizobacteria do not lead to enhanced resistance of tomato and tobacco to O. lycopersici. BTH was tested on tomato by soil application at 0.1 ppm or foliar spray with 100 microM solution 4 or 7 days before inoculation (dbi) and tobacco was treated by foliar spray with 1, 10 or 100 microM BTH, 4 dbi. While a dose-dependent suppression of O. lycopersici by BTH was registered on tobacco, tomato infection by the powdery mildew was not affected by BTH. This difference indicates that BTH probably affects the tobacco-Oidium and the tomato-Oidium systems differently. We are currently investigating whether or not this difference can be associated with the production of different PR proteins.

Ascomycota↗

Streptopodium caricae sp. nov., with a discussion of powdery mildews on papaya, and emended descriptions of the genus Streptopodium and Oidium caricae.

A new powdery mildew infecting papaya (Carica papaya) in Brazil, Streptopodium caricae sp. nov., is described. The species is compared with other anamorphic Erysiphales known to infect papaya: Oidiopsis sicula, Ovulariopsis papayae, Oidium caricae, O. papayae, O. caricicola, O. indicum, O. caricae-papayae, Podosphaera (syn. Sphaerotheca) spp., and Erysiphe spp. An emended description Streptopodium and a key to the anamorphs of powdery mildews on papaya are also presented. A re-examination of the type material of Phyllactinia caricaefolia showed that conidia in this material are dimorphic, indicating that its anamorph does not belong to Ovulariopsis and that the teleomorph is not conspecific with Phyllactinia guttata. Oidium caricae, the common powdery mildew of papaya, was re-examined, recognized as a member of subgenus Pseudoidium, an emended description was prepared, and a new type was indicated. O. papayae was recognized as a synonym of O. caricae, and many of the records of this fungus are considered to be doubtful or incorrect, either omitting a description of the fungus or including a description or illustration of an euodium conidiophore morphology.

Brazil↗

The effect of Oidium lactis on the sporulation of Bacillus coagulans in tomato juice.

Oidium lactis can raise the pH of tomato juice in thin layers to a pH range optimum for sporulation of Bacillus coagulans in 24 hr at 25 C and in 48 hr at 35 C. The percentage of sporulation of B. coagulans was greater in tomato juice where O. lactis had grown than in the thermoacidurans broth. As high as 61.7% sporulation occurs within 24 hr in the tomato juice in which Oidium lactis had grown when this juice was incubated at 52 C. When tomato juice was adjusted to pH 5.0 and B. coagulans or a mixture of O. lactis and the vegetative cells of B. coagulans were added as an inoculum, only in the juice in which O. lactis was growing were spores produced within 72 hr at 35 C.

Bacillus↗

Mapping OI-4, a gene conferring resistance to Oidium neolycopersici and originating from Lycopersicon peruvianum LA2172, requires multi-allelic, single-locus markers.

Lycopersicon peruvianum LA2172 is completely resistant to Oidium neolycopersici, the causal agent of tomato powdery mildew. Despite the large genetic distance between the cultivated tomato and L. peruvianum, fertile F1 hybrids of L. esculentum cv. Money maker x L.peruvianum LA2172 were produced, and a pseudo-F2 population was generated by mating F, half-sibs. The disease tests on the pseudo-F2 population and two BC,families showed that the resistance in LA2172 is governed by one dominant gene, designated as 01-4. In the pseudo-F2 population, distorted segregation was observed, and multi-allelic, single-locus markers were used to display different marker-allele configurations per locus. Para-meters for both distortion and linkage between genetic loci were determined by maximum likelihood estimation, and the necessity of using multi-allelic, single-locus markers was illustrated. Finally, a genetic linkage map of chromosome 6 around the 01-4 locus was constructed by using the pseudo-F2 population.

Ascomycota↗

Reactive oxygen species generation and peroxidase activity during Oidium neolycopersici infection on Lycopersicon species.

Histochemical and biochemical study of plant tissue responses were carried out on three Lycopersicon spp. accessions differing in response to Oidium neolycopersici. High production of superoxide anion was observed mainly in infected leaves of highly susceptible Lycopersicon esculentum cv. 'Amateur' during the first hours post inoculation (hpi). The production of hydrogen peroxide as well as an increase of peroxidase (POX) activity were detected mainly in resistant accessions at 4-12 hpi. A signal confirming the presence of very active POX was found in the apical part of tubes of germinating fungus and inside dead conidia. Increased soluble POX and catalase activity in leaf extracts of resistant accessions L. chmielewskii (LA 2663) and L. hirsutum (LA 2128) (20 hpi) correlated with the percentage of dead cells in infection sites. The correlation between production of reactive oxygen species (ROS) and activity of enzymes participating in their metabolism and hypersensitive response was evident during plant defence response.

Ascomycota↗

Characterization and mapping of resistance to Oidium lycopersicum in two Lycopersicon hirsutum accessions: evidence for close linkage of two Ol-genes on chromosome 6 of tomato.

The cultivated tomato is susceptible to powdery mildew (Oidium lycopersicum). Several accessions of wild species are resistant. In this study we describe (i) the genetics and mapping of resistance to O. lycopersicum in G1.1290, one of the resistant accessions in Lycopersicon hirsutum, (ii) fine mapping of Ol-1 originated from L. hirsutum G1.1560, another resistant accession of L. hirsutum, and (iii) tests of allelism for resistance in G1.1290 and G1.1560. Initially, it is demonstrated that the resistance in G1.1290 to O. lycopersicum is controlled by an incompletely dominant gene, designated Ol-3. By using an advanced breeding line (ABL) containing introgression fragment(s) from G1.1290, Ol-3 was found to be associated with several RFLP and SCAR markers on chromosome 6. By using these markers, Ol-3 was mapped between markers TG25/SCAF10 and H9A11 on chromosome 6. Secondly, after testing some F3 lines and their progenies from the cross between L. esculentum cv Moneymaker and L. hirsutum G1.1560, we provided more evidence for the map position of Ol-1 to lie between SCAF10 and H9A11, indicating that Ol-1 and Ol-3 are in the same chromosome region. Thirdly, although allelism tests could not discriminate between Ol-1 and Ol-3, (indirect) evidence suggested that these two genes are not identical. They might instead represent functional genes of a cluster of Ol-homologues.

Alleles↗

Tomato defense to Oidium neolycopersici: dominant Ol genes confer isolate-dependent resistance via a different mechanism than recessive ol-2.

Tomato powdery mildew caused by Oidium neolycopersici has become a globally important disease of tomato (Lycopersicon esculentum). To study the defense responses of tomato triggered by tomato powdery mildew, we first mapped a set of resistance genes to O. neolycopersici from related Lycopersicon species. An integrated genetic map was generated showing that all the dominant resistance genes (Ol-1, Ol-3, Ol-4, Ol-5, and Ol-6) are located on tomato chromosome 6 and are organized in three genetic loci. Then, near-isogenic lines (NIL) were produced that contain the different dominant Ol genes in a L. esculentum genetic background. These NIL were used in disease tests with local isolates of O. neolycopersici in different geographic locations, demonstrating that the resistance conferred by different Ol genes was isolate-dependent and, hence, may be race-specific. In addition, the resistance mechanism was analyzed histologically. The mechanism of resistance conferred by the dominant Ol genes was associated with hypersensitive response, which varies in details depending on the Ol-gene in the NIL, while the mechanism of resistance governed by the recessive gene ol-2 on tomato chromosome 4 was associated with papillae formation.

Ascomycota↗

QTLs for tomato powdery mildew resistance (Oidium lycopersici) in Lycopersicon parviflorum G1.1601 co-localize with two qualitative powdery mildew resistance genes.

Tomato (Lycopersicon esculentum) is susceptible to the powdery mildew Oidium lycopersici, but several wild relatives such as Lycopersicon parviflorum G1.1601 are completely resistant. An F2 population from a cross of Lycopersicon esculentum cv. Moneymaker x Lycopersicon parviflorum G1.1601 was used to map the O. lycopersici resistance by using amplified fragment length polymorphism markers. The resistance was controlled by three quantitative trait loci (QTLs). Ol-qtl1 is on chromosome 6 in the same region as the Ol-1 locus, which is involved in a hypersensitive resistance response to O. lycopersici. Ol-qtl2 and Ol-qtl3 are located on chromosome 12, separated by 25 cM, in the vicinity of the Lv locus conferring resistance to another powdery mildew species, Leveillula taurica. The three QTLs, jointly explaining 68% of the phenotypic variation, were confirmed by testing F3 progenies. A set of polymerase chain reaction-based cleaved amplified polymorphic sequence and sequence characterized amplified region markers was generated for efficient monitoring of the target QTL genomic regions in marker assisted selection. The possible relationship between genes underlying major and partial resistance for tomato powdery mildew is discussed.

Chromosome Mapping↗