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Characterization of RNA Silencing Components in the Plant Pathogenic Fungus Fusarium Graminearum

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Journal Sci Rep
Specialty Science
Date 2015 Jul 28
PMID 26212591
Citations 66
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Abstract

The RNA interference (RNAi) plays a critical role in gene regulation in a variety of eukaryotic organisms. However, the role of RNAi remains largely unclear in plant pathogenic fungi. In this study, we explored the roles of core components of the RNAi pathway in Fusarium graminearum, the major causal agent of wheat head blight. Our results demonstrated that the hairpin RNA (hpRNA) can efficiently silence the expression level of target gene, and the argonaute protein FgAgo1 and dicer protein FgDicer2 are important in this silencing process. RNAi machinery was not involved in growth, abiotic stress and pathogenesis in F. graminearum under tested conditions. We firstly applied high-throughput sequencing technology to elucidate small RNA (17-40 nucleotides) (sRNA) transcriptome in F. graminearum, and found that a total of forty-nine micro-like-RNA (milRNA) candidates were identified in the wild-type and ∆FgDICER2, and twenty-four of them were FgDicer2-dependent. Fg-milRNA-4 negatively regulated expression of its target gene. Taken together, our results indicated that the hpRNA-induced gene silencing was a valuable genetic tool for exploring gene function in F. graminearum. FgAgo1 and FgDicer2 proteins played a critical role in the hpRNA mediated gene silencing process. In addition, FgDicer2 was involved in sRNA transcription and milRNA generation in this fungus.

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References
1.
Yin Y, Liu X, Li B, Ma Z . Characterization of sterol demethylation inhibitor-resistant isolates of Fusarium asiaticum and F. graminearum collected from wheat in China. Phytopathology. 2009; 99(5):487-97. DOI: 10.1094/PHYTO-99-5-0487. View

2.
Rathjen T, Pais H, Sweetman D, Moulton V, Munsterberg A, Dalmay T . High throughput sequencing of microRNAs in chicken somites. FEBS Lett. 2009; 583(9):1422-6. DOI: 10.1016/j.febslet.2009.03.048. View

3.
Nguyen Q, Kadotani N, Kasahara S, Tosa Y, Mayama S, Nakayashiki H . Systematic functional analysis of calcium-signalling proteins in the genome of the rice-blast fungus, Magnaporthe oryzae, using a high-throughput RNA-silencing system. Mol Microbiol. 2008; 68(6):1348-65. DOI: 10.1111/j.1365-2958.2008.06242.x. View

4.
Chang S, Zhang Z, Liu Y . RNA interference pathways in fungi: mechanisms and functions. Annu Rev Microbiol. 2012; 66:305-23. PMC: 4617789. DOI: 10.1146/annurev-micro-092611-150138. View

5.
Xiao C, Rajewsky K . MicroRNA control in the immune system: basic principles. Cell. 2009; 136(1):26-36. DOI: 10.1016/j.cell.2008.12.027. View