Hu Shunkai, Hu Yimeng, Mei Huiling, Li Jianjie, Xuan Wei, Jeyaraj Anburaj, Zhao Zhen, Zhao Yuxin, Han Rui, Chen Xuan, Li Xinghui
International Institute of Tea Industry Innovation for "One Belt, One Road", Nanjing Agricultural University, Nanjing, Jiangsu, China.
College of Resources and Environmental Sciences, Nanjing Agricultural University, Nanjing, Jiangsu, China.
Front Plant Sci. 2023 Feb 24;14:1080427. doi: 10.3389/fpls.2023.1080427. eCollection 2023.
Tea () is one of the significant cash crops in China. As a leaf crop, nitrogen supply can not only increase the number of new shoots and leaves but also improve the tenderness of the former. However, a conundrum remains in science, which is the molecular mechanism of nitrogen use efficiency, especially long non-coding RNA (lncRNA). In this study, a total of 16,452 lncRNAs were identified through high-throughput sequencing analysis of lateral roots under nitrogen stress and control conditions, of which 9,451 were differentially expressed lncRNAs (DE-lncRNAs). To figure out the potential function of nitrogen-responsive lncRNAs, co-expression clustering was employed between lncRNAs and coding genes. KEGG enrichment analysis revealed nitrogen-responsive lncRNAs may involve in many biological processes such as plant hormone signal transduction, nitrogen metabolism and protein processing in endoplasmic reticulum. The expression abundance of 12 DE-lncRNAs were further verified by RT-PCR, and their expression trends were consistent with the results of RNA-seq. This study expands the research on lncRNAs in tea plants, provides a novel perspective for the potential regulation of lncRNAs on nitrogen stress, and valuable resources for further improving the nitrogen use efficiency of tea plants.
茶树是中国重要的经济作物之一。作为一种叶用作物,氮素供应不仅能增加新梢和叶片数量,还能提高其嫩度。然而,氮素利用效率的分子机制,尤其是长链非编码RNA(lncRNA),仍是科学上的一个难题。本研究通过对氮胁迫和对照条件下侧根的高通量测序分析,共鉴定出16452条lncRNA,其中9451条为差异表达lncRNA(DE-lncRNA)。为了探究氮响应lncRNA的潜在功能,对lncRNA和编码基因进行了共表达聚类分析。KEGG富集分析表明,氮响应lncRNA可能参与植物激素信号转导、氮代谢和内质网蛋白质加工等多种生物学过程。通过RT-PCR进一步验证了12条DE-lncRNA的表达丰度,其表达趋势与RNA-seq结果一致。本研究拓展了茶树lncRNA的研究,为lncRNA对氮胁迫的潜在调控提供了新视角,也为进一步提高茶树氮素利用效率提供了有价值的资源。