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Transcriptome Analysis Reveals Candidate Genes involved in Blister Blight defense in Tea (Camellia sinensis (L) Kuntze). | LitMetric

AI Article Synopsis

  • The study analyzed the transcriptome of tea plants in response to blister blight (BB) caused by the fungus Exobasidium vexans, using RNA sequencing to identify key genes over a 20-day disease cycle.
  • Approximately 69 million reads were processed, resulting in 37,790 unique transcripts, with 149 genes linked to defense mechanisms identified, including various enzymes and resistance genes.
  • The research indicates that specific genes, such as RPM1, RPS2, and RPP13, are crucial in defense and may be regulated by salicylic acid and jasmonic acid for producing antimicrobial compounds to combat BB.

Article Abstract

To unravel the molecular mechanism of defense against blister blight (BB) disease caused by an obligate biotrophic fungus, Exobasidium vexans, transcriptome of BB interaction with resistance and susceptible tea genotypes was analysed through RNA-seq using Illumina GAIIx at four different stages during ~20-day disease cycle. Approximately 69 million high quality reads were assembled de novo, yielding 37,790 unique transcripts with more than 55% being functionally annotated. Differentially expressed, 149 defense related transcripts/genes, namely defense related enzymes, resistance genes, multidrug resistant transporters, transcription factors, retrotransposons, metacaspases and chaperons were observed in RG, suggesting their role in defending against BB. Being present in the major hub, putative master regulators among these candidates were identified from predetermined protein-protein interaction network of Arabidopsis thaliana. Further, confirmation of abundant expression of well-known RPM1, RPS2 and RPP13 in quantitative Real Time PCR indicates salicylic acid and jasmonic acid, possibly induce synthesis of antimicrobial compounds, required to overcome the virulence of E. vexans. Compendiously, the current study provides a comprehensive gene expression and insights into the molecular mechanism of tea defense against BB to serve as a resource for unravelling the possible regulatory mechanism of immunity against various biotic stresses in tea and other crops.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4964330PMC
http://dx.doi.org/10.1038/srep30412DOI Listing

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