植物学报 ›› 2026, Vol. 61 ›› Issue (5): 1-.DOI: 10.3724/CBB-2026-0035

• 研究论文 • 上一篇    

高粱SbASR4在盐胁迫响应中的功能解析

蒋娟1,2+, 张浩燃1,2+, 桑亚轩1,2, 庞涛1,2, 韩佳和1,2, 陈稳良1,2,孟祥祥1,2, 孔照胜1,2, 李璐1,2*   

  1. 1山西省后稷实验室, 农学院, 山西农业大学, 太原 030031; 2农业农村部种质创新与分子育种重点实验室(部省共建), 太原 030031
  • 出版日期:2026-09-10 发布日期:2026-08-04

Functional Characterization of Sorghum SbASR4 in Salt Stress Response

Juan Jiang1, 2, Haoran Zhang1, 2, Yaxuan Sang1, 2, Tao Pang1, 2, Jiahe Han1, 2, Wenliang Chen1, 2, Xiangxiang Meng1, 2, Zhaosheng Kong1, 2, Lu Li1, 2* #br#   

  1. ¹Houji Laboratory in Shanxi Province, College of Agriculture, Shanxi Agricultural University, Taiyuan 030031, China; 2Key Laboratory of Minor Crop Germplasm Innovation and Molecular Breeding (Co-construction by Ministry and Province), Ministry of Agriculture and Rural Affairs, Taiyuan 030031, China


  • Online:2026-09-10 Published:2026-08-04

摘要:

高粱(Sorghum bicolor)根系发达, 兼具低耗水、高水分利用效率的特性, 是改良边际土地的理想作物。本研究分析了高粱ASR家族成员的表达模式, 发现SbASR4在盐胁迫和自然失水条件下显著下调。SbASR4定位于细胞核与细胞膜, 盐胁迫影响其蛋白稳定性。功能研究表明, 过表达SbASR4显著降低拟南芥(Arabidopsis thaliana)耐盐性, 表现为萌发率降低、根系伸长抑制加重、Na+积累增加及H2O2水平升高。相反, 沉默SbASR4可显著提升高粱的耐盐性。此外, 盐胁迫下, SbASR4沉默株系的SOS通路相关基因、抗氧化关键基因CAT及能量/胁迫感应激酶SnRK1.1的表达均显著上调, 而过表达株系中CAT2以及Na+外排相关基因的转录表达显著下调。蛋白互作实验证实SbASR4SbSOS2存在相互作用。综上, SbASR4可能通过调控抗氧化系统、ABA信号通路及Na+稳态, 负向调控植物耐盐性。该研究为解析高粱耐盐分子机制提供了新线索, 也为高粱耐盐育种提供了潜在基因靶点。

关键词: font-family:宋体, ">高粱font-family:", ">, ASR, font-family:宋体, ">盐胁迫font-family:", ">, Na+font-family:宋体, ">稳态font-family:", ">, ABAfont-family:宋体, ">信号

Abstract: INTRODUCTION: Sorghum (Sorghum bicolor) is an ideal crop for marginal land improvement due to its well-developed root system and high water-use efficiency. ASR proteins serve as key nodes that integrate plant growth and development with stress responses, playing important roles in fruit ripening and stress tolerance, particularly drought and salt tolerance. However, functional studies on the ASR family genes in sorghum regarding salt stress tolerance remain relatively limited, and their underlying molecular mechanisms require further investigation. 
RATIONALE: To identify salt-responsive SbASR genes in sorghum, we analyzed the expression patterns of ASR family members under salt stress and water deficit. To elucidate its biological role in salt acclimation, we further cloned and functionally characterized SbASR4 through subcellular localization and transcriptional activity assays, protein stability assessment, heterologous expression in Arabidopsis, gene silencing in sorghum, transcriptional analysis of stress-re­sponsive marker genes, and protein-protein interaction experiments.
RESULTS: SbASR4 was significantly downregulated under salt stress and natural water deficit. SbASR4 localized to the nucleus and plasma membrane and underwent rapid degradation under salt stress. Overexpression of SbASR4 significantly exacerbated the sensitivity of Arabidopsis to salt stress, as evidenced by reduced germination rate, inhibited root elongation, increased Na⁺ accumulation, and elevated H2O2 levels. In contrast, silencing SbASR4 in sorghum markedly enhanced plant salt tolerance. Under salt stress, SbASR4-silenced lines exhibited significant upregulation of SOS pathway-related genes, CAT, and SnRK1.1, along with notable changes in PP2C family gene expression. Protein-protein interaction experiments confirmed that SbASR4 interacts with SbSOS2.
CONCLUSION: Collectively, SbASR4 negatively regulates plant salt tolerance, potentially through modulating the antioxidant system, ABA signaling pathway, and Na+ homeostasis. This study provides new insights into the molecular mechanisms underlying salt tolerance in sorghum and identifies a potential genetic target for salt-tolerant sorghum breeding.

Effects of SbASR4 silencing on salt stress tolerance in sorghum (A) Phenotypes of control and SbASR4-silenced plants treated with 300 mmol·L1 NaCl for 7 and 10 days (bars=7 cm) (B) Relative expression level of SbASR4 in SbASR4-silenced lines. Comparison of physiological parameters between control and SbASR4-silenced plants under salt stress: (C) Survival rate (D) Relative fresh weight (E) Relative plant height (F) Leaf Na+/K+ ratio (G) Electrical conductivity (H) Leaf Na+ content (I) H2O2 content. In the figure, pTRV:00 represents the empty vector control, and pTRV:SbASR4 represents the SbASR4-silenced lines. Asterisks indicate significant differences between SbASR4-silenced lines and the control (*P<0.05, **P<0.01, ***P<0.001).




Key words: font-family:", "> , font-family:", ">sorghum, ASR, salt stress, Na+ homeostasis, ABA signaling