State Key Laboratory of Tree Genetics and Breeding, Key Laboratory of Tree Breeding and Cultivation of the State Forestry Administration, Research Institute of Forestry, Chinese Academy of Forestry, Beijing, 100091, China.
Department of Biology, Montclair State University, Montclair, NJ, 07043, USA.
Sci Rep. 2017 Jul 28;7(1):6769. doi: 10.1038/s41598-017-05240-0.
Salinization is one of the major factors that threaten the existence of plants worldwide. Populus euphratica has been deemed to be a promising candidate for stress response research because of its high capacity to tolerate extreme salt stress. We carried out a genome-wide transcriptome analysis to identify the differentially expressed genes (DEGs) response to salt shock and elucidate the early salt tolerance mechanisms in P. euphratica. Both hierarchical clustering and DEG analysis demonstrated a predominant variation from time-course rather than NaCl intensity within 24 hours salt shock. Among the identified 1,678 salt-responsive DEGs, 74.1% (1,244) have not been reported before. We further created an integrated regulatory gene network of the salt response in P. euphratica by combining DEGs, transcription factors (TFs), Helitrons, miRNAs and their targets. The prominent pathways in this network are plant hormone transduction, starch and sucrose metabolism, RNA transport, protein processing in endoplasmic reticulum, etc. In addition, the network indicates calcium-related genes play key roles in P. euphratica response to salt shock. These results illustrated an overview of the systematic molecular response in P. euphratica under different intensities of salt shock and revealed the complex regulatory mechanism.
盐渍化是威胁全球植物生存的主要因素之一。由于具有耐受极端盐胁迫的高能力,胡杨已被认为是应激反应研究的有前途的候选者。我们进行了全基因组转录组分析,以鉴定对盐冲击有反应的差异表达基因(DEGs),并阐明胡杨的早期耐盐机制。层次聚类和 DEG 分析都表明,在 24 小时盐冲击内,时间过程而非 NaCl 强度是主要的变化。在鉴定出的 1678 个盐响应 DEG 中,以前没有报道过 74.1%(1244 个)。我们通过将 DEG、转录因子(TF)、Helitrons、miRNAs 及其靶标结合起来,进一步创建了胡杨盐响应的综合调控基因网络。该网络中的突出途径是植物激素转导、淀粉和蔗糖代谢、RNA 转运、内质网蛋白加工等。此外,该网络表明钙相关基因在胡杨对盐冲击的反应中起关键作用。这些结果说明了胡杨在不同盐胁迫强度下系统分子反应的概述,并揭示了复杂的调控机制。