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Early development of Moniliophthora perniciosa basidiomata and developmentally regulated genes
Acássia B L Pires1, Karina P Gramacho, Delmira C Silva
1Centro de Biotecnologia e Genética, Laboratório de Genômica e Expressão Gênica, Departamento de Ciências Biológicas, Universidade Estadual de Santa Cruz, Rodovia Ilhéus-Itabuna, km 16, 45662-000, Ilhéus-Bahia, Brazil. ableal@uesc.br
Background:
The hemibiotrophic fungus Moniliophthora perniciosa is the causal agent of Witches' broom, a disease of Theobroma cacao. The pathogen life cycle ends with the production of basidiocarps in dead tissues of the infected host. This structure generates millions of basidiospores that reinfect young tissues of the same or other plants. A deeper understanding of the mechanisms underlying the sexual phase of this fungus may help develop chemical, biological or genetic strategies to control the disease.
Results:
Mycelium was morphologically analyzed prior to emergence of basidiomata by stereomicroscopy, light microscopy and scanning electron microscopy. The morphological changes in the mycelium before fructification show a pattern similar to other members of the order Agaricales. Changes and appearance of hyphae forming a surface layer by fusion were correlated with primordia emergence. The stages of hyphal nodules, aggregation, initial primordium and differentiated primordium were detected. The morphological analysis also allowed conclusions on morphogenetic aspects. To analyze the genes involved in basidiomata development, the expression of some selected EST genes from a non-normalized cDNA library, representative of the fruiting stage of M. perniciosa, was evaluated. A macroarray analysis was performed with 192 selected clones and hybridized with two distinct RNA pools extracted from mycelium in different phases of basidiomata formation. This analysis showed two groups of up and down-regulated genes in primordial phases of mycelia. Hydrophobin coding, glucose transporter, Rho-GEF, Rheb, extensin precursor and cytochrome p450 monooxygenase genes were grouped among the up-regulated. In the down-regulated group relevant genes clustered coding calmodulin, lanosterol 14 alpha demethylase and PIM1. In addition, 12 genes with more detailed expression profiles were analyzed by RT-qPCR. One aegerolysin gene had a peak of expression in mycelium with primordia and a second in basidiomata, confirming their distinctiveness. The number of transcripts of the gene for plerototolysin B increased in reddish-pink mycelium and indicated an activation of the initial basidiomata production even at this culturing stage. Expression of the glucose transporter gene increased in mycelium after the stress, coinciding with a decrease of adenylate cyclase gene transcription. This indicated that nutrient uptake can be an important signal to trigger fruiting in this fungus.
Conclusion:
The identification of genes with increased expression in this phase of the life cycle of M. perniciosa opens up new possibilities of controlling fungus spread as well as of genetic studies of biological processes that lead to basidiomycete fruiting. This is the first comparative morphologic study of the early development both in vivo and in vitro of M. perniciosa basidiomata and the first description of genes expressed at this stage of the fungal life cycle.
Insights
This study details the morphological and genetic changes during the sexual reproduction of Moniliophthora perniciosa, the fungus causing Witches' broom disease. Understanding these processes, particularly gene expression during basidiomata development, offers new avenues for disease control strategies.
Area of Science:
- Mycology
- Plant Pathology
- Molecular Biology
Background:
- Moniliophthora perniciosa causes Witches' broom disease in Theobroma cacao.
- The fungus's sexual reproduction involves basidiocarp formation and basidiospore generation for reinfection.
- Understanding the sexual phase is crucial for developing disease management strategies.
Purpose of the Study:
- To investigate the morphological changes during basidiomata development in M. perniciosa.
- To identify and analyze gene expression patterns associated with basidiomata formation.
- To correlate gene expression with specific developmental stages and environmental triggers.
Main Methods:
- Morphological analysis of mycelium using stereomicroscopy, light microscopy, and scanning electron microscopy.
- Macroarray analysis of 192 selected expressed sequence tags (ESTs) during basidiomata development.
- Quantitative real-time PCR (RT-qPCR) to analyze the expression profiles of 12 selected genes.
Main Results:
- Morphological changes in mycelium precede basidiomata emergence, similar to Agaricales.
- Gene expression analysis revealed distinct groups of up-regulated (e.g., hydrophobin, glucose transporter) and down-regulated (e.g., calmodulin, lanosterol 14 alpha demethylase) genes.
- Specific genes, like aegerolysin and plerototolysin B, showed distinct expression peaks correlating with developmental stages; glucose transporter expression increased with nutrient uptake signals.
Conclusions:
- Identification of key genes involved in M. perniciosa basidiomata development provides targets for disease control.
- This study presents the first comparative morphological analysis of M. perniciosa basidiomata development in vivo and in vitro.
- It also provides the first description of genes expressed during this critical fungal life cycle stage.
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