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Solanacearum inoculation and this study reported deferentially expressed genes that are involved in the biosynthesis of phytoalexins, which might play crucial role in resistance to wilt disease (Chen et al., 2014b). In a root transcriptome analysis of resistant and susceptible peanut genotypes after infection with R. Solanacearum, KEGG analysis showed that the primary metabolism got inhibited more in the resistant genotype at an early point of inoculation exhibiting similar response like the susceptible genotype. Moreover, defense related genes like R gene, cell wall genes, LRR-RLK protein etc. were differently expressed between both the genotypes (Chen et al., 2014c). Yang et al. (2022) analyzed differential gene expression in leaves of resistant and susceptible peanut genotypes infected with R. Further more, KEGG enrichment pathway analysis of differentially expressed genes showed that MAPK signaling, plant-pathogen interaction, and plant hormone signal transduction pathways were upregulated.
The manual includes a CD-ROM, plus a DVD of an ELSA training session ‘Working with Puppets’. The DVD was produced to show ELSAs in training how others are putting it into practice. It is a useful resource for those wishing to set up ELSA locally as it includes descriptions by a primary head teacher and secondary assistant head teacher of the impact the work is having in their respective schools. The DVD is also being used in schools to help other staff understand what ELSA is all about.
Kumar, D., Kirti, P. B. Pathogen-induced SGT1 of Arachis diogoi induces cell death and enhanced disease resistance in tobacco and peanut. Plant Biotechnol. Kolekar, R., Sujay, V., Shirasawa, K., Sukruth, M., Khedikar, Y., Gowda, M., et al. (2016). QTL mapping for late leaf spot and rust resistance using an improved genetic map and extensive phenotypic data on a recombinant inbred line population in peanut (Arachis hypogaea L.).
Wynne, J., Beute, M., Nigam, S. Breeding for disease resistance in peanut (Arachis hypogaea L.). Rev. Phytopathol. 29, 279–303. Wang, W.-S., Zhao, X.-Q., Li, M., Huang, L.-Y., Xu, J.-L., Zhang, F., et al. (2016c).
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Probably, many major efforts were not made in peanut in this direction because of this reason. However, there were limited reports on the identification of miRNAs in peanut due to unavailabilty of complete genome sequence till recently. However, in line with miRNAs studies in peanut, Zhao et al. (2010) reported 14 novel and 75 conserved miRNAs that might play crucial roles in plant growth, development and environmental stresses using deep sequencing. A high-throughput sequencing method of peanut small RNA library identified a large number of miRNAs and their related target genes (Chi et al., 2011).
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