Chen YiQing, Zhou Yan, Cai Yuyi, Feng Yongpei, Zhong Cairong, Fang ZanShan, Zhang Ying
Hainan Academy of Forestry, Hainan Mangrove Research Institute, Haikou, China.
Mangrove Institute, Lingnan Normal University, Zhanjiang, China.
Front Plant Sci. 2022 Sep 23;13:995855. doi: 10.3389/fpls.2022.995855. eCollection 2022.
has a strong salt tolerance and can grow in saline and alkaline coastal and inland habitats. This study investigated the physiological and molecular responses of to high salinity by analyzing the changes in plant phytohormones and antioxidant activity, including their differentially expressed genes (DEGs) under similar high-salinity conditions. High salinity significantly affected proline (Pro) and hydrogen peroxide (HO) in seedlings, increasing Pro and HO contents by 290.56 and 83.36%, respectively, compared to the control. Antioxidant activities, including superoxide dismutase (SOD), peroxidase (POD), and catalase (CAT), significantly increased by 83.05, 205.14, and 751.87%, respectively, under high salinity. Meanwhile, abscisic acid (ABA) and gibberellic acid (GA) contents showed the reverse trend of high salt treatment. transcriptome analysis showed that 36,676 unigenes were matched, and 3,622 salt stress-induced DEGs were identified as being associated with the metabolic and biological regulation processes of antioxidant activity and plant phytohormones. POD and SOD were upregulated under high-salinity conditions. In addition, the transcription levels of genes involved in auxin ( and ), ethylene (, , , and ), ABA (), and GA () transport or signaling were altered. This study identified key metabolic and biological processes and putative genes involved in the high salt tolerance of and it is of great significance for identifying new salt-tolerant genes to promote ecological restoration of the coastal strand.
具有很强的耐盐性,能够在盐碱化的沿海和内陆生境中生长。本研究通过分析植物激素和抗氧化活性的变化,包括在相似高盐条件下它们的差异表达基因(DEGs),来探究[植物名称]对高盐度的生理和分子响应。高盐度显著影响了[植物名称]幼苗中的脯氨酸(Pro)和过氧化氢(HO),与对照相比,脯氨酸和过氧化氢含量分别增加了290.56%和83.36%。抗氧化活性,包括超氧化物歧化酶(SOD)、过氧化物酶(POD)和过氧化氢酶(CAT),在高盐度下分别显著增加了83.05%、205.14%和751.87%。同时,脱落酸(ABA)和赤霉素(GA)含量呈现出与高盐处理相反的趋势。[植物名称]转录组分析表明,有36,676个单基因被匹配,并且鉴定出3,622个盐胁迫诱导的DEGs与抗氧化活性和植物激素的代谢及生物调节过程相关。POD和SOD在高盐度条件下上调。此外,参与生长素([生长素相关基因]和[生长素相关基因])、乙烯([乙烯相关基因]、[乙烯相关基因]、[乙烯相关基因]和[乙烯相关基因])、ABA([ABA相关基因])和GA([GA相关基因])运输或信号传导的基因转录水平发生了改变。本研究确定了参与[植物名称]高耐盐性的关键代谢和生物学过程以及推定基因,这对于鉴定新的耐盐基因以促进沿海滩涂的生态恢复具有重要意义。