Solanum torvum, a superior vegetable grafting rootstock and medicinal Solanaceae plant, exhibits strong seed dormancy, which limits its commercial cultivation. Among various strategies explored to improve the germination rate of S. torvum, exogenous application of gibberellin (GA) has been shown to be effective. In this study, a GA concentration of 2.5 mM was established as the optimal for breaking dormancy in S. torvum seeds. Transcriptome analysis of dry, water-soaked, GA-soaked, and GA-induced germinated seeds was conducted to investigate the molecular mechanism of GA-mediated dormancy release. During the soaking period, GA application significantly induced transcriptome changes in processes including protein processing, translation, and peptide biosynthesis. Concurrently, GA treatment promoted plant hormone signal transduction, enhanced DNA-binding transcription factor activity, and activated monocarboxylic acid biosynthetic process, all of which facilitated seed water absorption. Furthermore, the differentially expressed genes (DEGs) induced by GA during soaking primarily functioned in signal transduction or activation. While most of these DEGs returned to their pre-treatment expression levels before subsequent recovery, a subset persisted until seed germination. During radicle protrusion, the persistent DEGs were associated with energy metabolism and cell structure establishment. Notably, heat shock protein (HSP) genes showed dynamic expression across all stages (soaking, germination, and radicle penetration). Furthermore, by adjusting germination conditions, temperature was confirmed to be a necessary but not sufficient condition for GA-induced S. torvum seed germination. However, functional validation (e.g., using HSP inhibitors or genetic approaches) is still required to confirm the causal role of HSPs. Collectively, these findings not only clarify the molecular basis of GA-regulated seed dormancy breaking in S. torvum but also provide practical guidance for optimizing its commercial propagation protocols.
Clubroot, caused by the obligate biotrophic protist Plasmodiophora brassicae (P. brassicae), is a destructive soil-borne disease that severely threatens the production of radish (Raphanus sativus L.). Although chitinases are known to execute critical defense functions by degrading pathogen chitin, a comprehensive genome-wide characterization of the radish chitinase (RsChi) gene family and its specific role in clubroot resistance remains lacking. Here, we systematically identified 24 RsChi genes in the radish genome, characterizing their chromosomal distribution, structural organization, and promoter regulatory networks. These genes are unevenly distributed across seven chromosomes and cluster into four subfamilies, with tandem duplication driving family expansion, particularly on Chromosome 3. Promoter analysis revealed a significant enrichment of jasmonic acid- and abscisic acid-responsive cis-elements, implicating RsChi genes in hormone-mediated defense signaling. Using qRT-PCR to profile expression dynamics during P. brassicae infection across contrasting radish lines, we identified strong genotype- and stage-specific transcriptional responses. Notably, TRs0x1c000780 remained transcriptionally silent prior to infection but was specifically induced over 10-fold in the resistant line at 28 days post-inoculation. This infection-triggered induction positions TRs0x1c000780 as a promising candidate defense gene. Together, these findings provide structural and functional insights into the RsChi family and highlight candidate targets for breeding clubroot-resistant radish cultivars.
Zhi-Jie Liu, T. Hu, Min-Yan Mai et al.· International Journal of Mol...· 0 citations
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