Division of Applied Life Science (BK21 Four), Institute of Agriculture & Life Science, Gyeongsang National University, Jinju, 52828, Korea.
Sci Data. 2023 Oct 12;10(1):692. doi: 10.1038/s41597-023-02592-3.
Environmental stresses significantly affect plant growth, development, and productivity. Therefore, a deeper understanding of the underlying stress responses at the molecular level is needed. In this study, to identify critical genetic factors associated with environmental stress responses, the entire 737.3 Gb clean RNA-seq dataset across abiotic, biotic stress, and phytohormone conditions in Capsicum annuum was used to perform individual differentially expressed gene analysis and to construct gene co-expression networks for each stress condition. Subsequently, gene networks were reconstructed around transcription factors to identify critical factors involved in the stress responses, including the NLR gene family, previously implicated in resistance. The abiotic and biotic stress networks comprise 233 and 597 hubs respectively, with 10 and 89 NLRs. Each gene within the NLR groups in the network exhibited substantial expression to particular stresses. The integrated analysis strategy of the transcriptome network revealed potential key genes for complex environmental conditions. Together, this could provide important clues to uncover novel key factors using high-throughput transcriptome data in other species as well as plants.
环境胁迫显著影响植物的生长、发育和生产力。因此,需要在分子水平上更深入地了解潜在的应激反应。在这项研究中,为了鉴定与环境应激反应相关的关键遗传因素,使用了辣椒整个 737.3Gb 清洁 RNA-seq 数据集,进行了个体差异表达基因分析,并为每种应激条件构建了基因共表达网络。随后,围绕转录因子重建基因网络,以鉴定应激反应中涉及的关键因子,包括先前与抗性有关的 NLR 基因家族。非生物和生物胁迫网络分别包含 233 和 597 个枢纽,分别有 10 和 89 个 NLR。网络中 NLR 组内的每个基因对特定胁迫都表现出大量表达。转录组网络的综合分析策略揭示了复杂环境条件下的潜在关键基因。总的来说,这为利用高通量转录组数据在其他物种以及植物中揭示新的关键因素提供了重要线索。