Acta Prataculturae Sinica ›› 2026, Vol. 35 ›› Issue (9): 236-246.DOI: 10.11686/cyxb2025447
Xue-feng LIANG1(
), Shu-mei FANG2,3, Xi-long LIANG1,3(
)
Received:2025-11-04
Revised:2025-12-15
Online:2026-09-20
Published:2026-07-27
Contact:
Xi-long LIANG
Xue-feng LIANG, Shu-mei FANG, Xi-long LIANG. Regulatory mechanisms of pre-mRNA alternative splicing in plant responses to saline-alkali stress[J]. Acta Prataculturae Sinica, 2026, 35(9): 236-246.
物种 Species | 基因 Gene | 剪接变体/作用形式 Splicing isoform/form of action | 功能 Function | 参考文献 Reference |
|---|---|---|---|---|
拟南芥 A. thaliana | AtSR45 | 产生SR45.1变体Produces SR45.1 isoform | SR45.1亚型通过调节SOS基因表达以控制离子稳态和赋予耐盐性。The SR45.1 isoform controls ion homeostasis and confers salt tolerance by regulating salt overly sensitive (SOS) gene expression. | [ |
| AtSR45a | 产生两种变体SR45a-1a和SR45a-1b Produces SR45a-1a and SR45a-1b isoform | 剪接因子SR45a的两种变体都可以与CBP20共同作用,调控拟南芥多种盐胁迫核心因子核糖核酸加工过程。Two isoforms of the splicing factor SR45a can act synergistically with CBP20 to regulate the RNA processing of multiple core salt stress factors in A.thaliana. | [ | |
| AtSR34b | 调控靶基因剪接与mRNA稳定性Regulates splicing and mRNA stability of target genes | 通过IRT1的剪接和稳定性促进IRT1蛋白积累Promotes IRT1 protein accumulation via regulating the splicing and stability of IRT1 mRNA | [ | |
| AtSAD1 | 调控剪接效率Regulates splicing efficiency | 提高盐胁迫响应基因的剪接效率Improves the splicing efficiency of salt stress response genes | [ | |
| AtSKIP | 参与剪接体组装Involves in the assembly of the isoform | 调控全基因组范围内大量胁迫响应基因的选择性剪接Regulation of alternative splicing in numerous stress response gene across the entire genome | [ | |
| AtSRAS1 | 产生SRAS1.1和SRAS1.2剪接变体Produces SRAS1.1 and SRAS1.2 isoforms | 调控COP9信号复合体亚基5A(CSN5A)的蛋白平衡Regulates the protein balance of COP9 signalosome subunit 5A(CSN5A) | [ | |
| AtRCD1 | 产生RCD1.1和RCD1.2剪接变体Produces RCD1.1 and RCD1.2 isoforms | RCD1的剪接变体可减少盐诱导的细胞死亡Splicing isoform of RCD1 reduce salt-induced cell death | [ | |
水稻 O. sativa | OsNHX1 | Pre-mRNA剪接产生3种变体Pre-mRNA splicing generates three isoforms | 过表达异构体的品系耐盐性增强Lines overexpressing the isoform exhibit enhanced salt tolerance | [ |
| OsMAPK5 | 产生维持激酶活性的OsMAPK5a亚型Produces the OsMAPK5a isoform with retained kinase activity | OsMAPK5a可以增强对盐分胁迫的耐受性OsMAPK5a enhances tolerance to salt stress | [ | |
| OsIM1 | 产生两种功能分化的剪接变体Produces two functionally differentiated isoforms | 通过完整功能域维持叶绿体能量代谢稳态,又在胁迫持续时通过变体的降解或反馈调节实现能量分配优化。Maintains chloroplast energy metabolism homeostasis via intact domains; Optimizes energy allocation through isoform degradation or feedback regulation under prolonged stress. | [ | |
大麦 H. vulgare | HvDRF1 | 产生两种含AP2结构域的功能变体Produces two functional isoforms containing the AP2 domain | 两种剪接变体均通过AP2结构域发挥转录激活作用,响应盐碱胁迫的脱落酸核心信号通路。Both splicing isoforms exert transcriptional activation through the AP2 domain, responding to the core hormone signal pathway of abscisic acid in response to saline-alkali stress. | [ |
谷子 S. italica | SiCYP19 | 产生剪接变体Produces splicing isoform | 剪接变体可以提高脯氨酸含量和促进活性氧清除能力。Splicing isoforms can increase proline content and promote reactive oxygen species (ROS) scavenging capacity. | [ |
胡杨 P. euphratica | PeuHKT1;3 | 产生PeuHKT1;3的可变3′剪接位点Generation of variable 3′splice sites for PeuHKT1;3 | 通过截短变体的降解与反馈调节实现能量分配,优化重塑离子选择性。Optimizes energy allocation and reshaping ion selectivity through degradation and feedback regulation of truncated isoforms. | [ |
大豆 G. max | GmPeNTL9 | 产生剪接变体Produces splicing isoform | 剪接变体激活抗氧化清除系统Splicing isoform activates the antioxidant scavenging system | [ |
| GsSCL30a | GsSCL30a剪接因子对自身进行剪接The splicing factor GsSCL30a undergoes self-splices | GsSCL30a与GsSnRK1协同作用可增强植株的耐碱性GsSCL30a synergistically enhances plant alkaline tolerance with GsSnRK1 | [ | |
| GmAP2 | GmAP2基因中微外显子的缺失Microexon deletion in the GmAP2 gene | AP2基因中微外显子的缺失增强了对盐碱的抗性Deletion of a microexon in the AP2 gene enhances resistance to saline-alkali stress | [ | |
| 百慕大草Cynodon dactylon | CdDHN4 | 产生CdDHN4-L和CdDHN4-S Produces CdDHN4-L and CdDHN4-S | 显著降低电解质渗漏和增强光合能力Significantly reduces electrolyte leakage and enhances photosynthetic capacity | [ |
| 盐芥T. salsuginea | TsHKT1 | 选择性剪接产生多种变体Alternative splicing generates multiple isoforms | 形成互作复合体调控Na+/K+平衡Forms an interaction complex to regulate Na+/K+ balance | [ |
Table 1 Genes involved in alternative splicing during salt-alkali stress responses in different plants
物种 Species | 基因 Gene | 剪接变体/作用形式 Splicing isoform/form of action | 功能 Function | 参考文献 Reference |
|---|---|---|---|---|
拟南芥 A. thaliana | AtSR45 | 产生SR45.1变体Produces SR45.1 isoform | SR45.1亚型通过调节SOS基因表达以控制离子稳态和赋予耐盐性。The SR45.1 isoform controls ion homeostasis and confers salt tolerance by regulating salt overly sensitive (SOS) gene expression. | [ |
| AtSR45a | 产生两种变体SR45a-1a和SR45a-1b Produces SR45a-1a and SR45a-1b isoform | 剪接因子SR45a的两种变体都可以与CBP20共同作用,调控拟南芥多种盐胁迫核心因子核糖核酸加工过程。Two isoforms of the splicing factor SR45a can act synergistically with CBP20 to regulate the RNA processing of multiple core salt stress factors in A.thaliana. | [ | |
| AtSR34b | 调控靶基因剪接与mRNA稳定性Regulates splicing and mRNA stability of target genes | 通过IRT1的剪接和稳定性促进IRT1蛋白积累Promotes IRT1 protein accumulation via regulating the splicing and stability of IRT1 mRNA | [ | |
| AtSAD1 | 调控剪接效率Regulates splicing efficiency | 提高盐胁迫响应基因的剪接效率Improves the splicing efficiency of salt stress response genes | [ | |
| AtSKIP | 参与剪接体组装Involves in the assembly of the isoform | 调控全基因组范围内大量胁迫响应基因的选择性剪接Regulation of alternative splicing in numerous stress response gene across the entire genome | [ | |
| AtSRAS1 | 产生SRAS1.1和SRAS1.2剪接变体Produces SRAS1.1 and SRAS1.2 isoforms | 调控COP9信号复合体亚基5A(CSN5A)的蛋白平衡Regulates the protein balance of COP9 signalosome subunit 5A(CSN5A) | [ | |
| AtRCD1 | 产生RCD1.1和RCD1.2剪接变体Produces RCD1.1 and RCD1.2 isoforms | RCD1的剪接变体可减少盐诱导的细胞死亡Splicing isoform of RCD1 reduce salt-induced cell death | [ | |
水稻 O. sativa | OsNHX1 | Pre-mRNA剪接产生3种变体Pre-mRNA splicing generates three isoforms | 过表达异构体的品系耐盐性增强Lines overexpressing the isoform exhibit enhanced salt tolerance | [ |
| OsMAPK5 | 产生维持激酶活性的OsMAPK5a亚型Produces the OsMAPK5a isoform with retained kinase activity | OsMAPK5a可以增强对盐分胁迫的耐受性OsMAPK5a enhances tolerance to salt stress | [ | |
| OsIM1 | 产生两种功能分化的剪接变体Produces two functionally differentiated isoforms | 通过完整功能域维持叶绿体能量代谢稳态,又在胁迫持续时通过变体的降解或反馈调节实现能量分配优化。Maintains chloroplast energy metabolism homeostasis via intact domains; Optimizes energy allocation through isoform degradation or feedback regulation under prolonged stress. | [ | |
大麦 H. vulgare | HvDRF1 | 产生两种含AP2结构域的功能变体Produces two functional isoforms containing the AP2 domain | 两种剪接变体均通过AP2结构域发挥转录激活作用,响应盐碱胁迫的脱落酸核心信号通路。Both splicing isoforms exert transcriptional activation through the AP2 domain, responding to the core hormone signal pathway of abscisic acid in response to saline-alkali stress. | [ |
谷子 S. italica | SiCYP19 | 产生剪接变体Produces splicing isoform | 剪接变体可以提高脯氨酸含量和促进活性氧清除能力。Splicing isoforms can increase proline content and promote reactive oxygen species (ROS) scavenging capacity. | [ |
胡杨 P. euphratica | PeuHKT1;3 | 产生PeuHKT1;3的可变3′剪接位点Generation of variable 3′splice sites for PeuHKT1;3 | 通过截短变体的降解与反馈调节实现能量分配,优化重塑离子选择性。Optimizes energy allocation and reshaping ion selectivity through degradation and feedback regulation of truncated isoforms. | [ |
大豆 G. max | GmPeNTL9 | 产生剪接变体Produces splicing isoform | 剪接变体激活抗氧化清除系统Splicing isoform activates the antioxidant scavenging system | [ |
| GsSCL30a | GsSCL30a剪接因子对自身进行剪接The splicing factor GsSCL30a undergoes self-splices | GsSCL30a与GsSnRK1协同作用可增强植株的耐碱性GsSCL30a synergistically enhances plant alkaline tolerance with GsSnRK1 | [ | |
| GmAP2 | GmAP2基因中微外显子的缺失Microexon deletion in the GmAP2 gene | AP2基因中微外显子的缺失增强了对盐碱的抗性Deletion of a microexon in the AP2 gene enhances resistance to saline-alkali stress | [ | |
| 百慕大草Cynodon dactylon | CdDHN4 | 产生CdDHN4-L和CdDHN4-S Produces CdDHN4-L and CdDHN4-S | 显著降低电解质渗漏和增强光合能力Significantly reduces electrolyte leakage and enhances photosynthetic capacity | [ |
| 盐芥T. salsuginea | TsHKT1 | 选择性剪接产生多种变体Alternative splicing generates multiple isoforms | 形成互作复合体调控Na+/K+平衡Forms an interaction complex to regulate Na+/K+ balance | [ |
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