植物学报 ›› 2026, Vol. 61 ›› Issue (5): 1-0.DOI: 10.11983/CBB25190

• 研究论文 • 上一篇    

Gα-CA模块通过调控NO生成介导CO2关闭拟南芥气孔

李金霞1,马小雨1,武梦莹1,柴林峰1,张晨曦1,慕明涛2,黑淑梅1   

  1. 1. 延安大学生命科学学院
    2. 延安大学医学院
  • 收稿日期:2025-10-23 修回日期:2026-02-07 出版日期:2026-09-10 发布日期:2026-07-28
  • 通讯作者: 黑淑梅
  • 基金资助:
    国家自然科学基金;延安大学博士启动基金;陕西红枣重点实验室科技项目

The Gα-CA module mediates CO2-induced stomatal closure in Arabidopsis thaliana by regulating NO production.

  • Received:2025-10-23 Revised:2026-02-07 Online:2026-09-10 Published:2026-07-28

摘要: G蛋白、碳酸酐酶(Carbonic anhydrase,CA)与一氧化氮(Nitric oxide,NO)均介导高浓度CO2关闭气孔,然而三者间的作用关系尚未明确。本文以拟南芥(Arabidopsis thaliana)为材料,通过药理学、遗传学和气体交换实验及荧光成像技术,发现:NO供体硝普纳(Sodium nitroprusside,SNP)可消除Gα功能抑制或缺失对CO2诱导保卫细胞NO生成和气孔关闭的破坏作用,而Gα过表达或组成型激活不能挽救CO2诱导NO缺失或合成途径受损叶片的保卫细胞NO生成和气孔关闭,表明Gα位于NO上游。SNP恢复CO2诱导CA功能抑制或突变缺失叶片的保卫细胞NO生成和气孔关闭,表明CA作用于NO上游。Gα过表达或组成型激活无法补偿CA缺失所造成的NO生成和气孔关闭缺陷,表明CA位于Gα下游。综上所述,Gα-CA模块通过调控保卫细胞NO生成介导高浓度CO2诱导气孔关闭。该研究可为深入理解植物气孔运动的信号网络及作物适应未来高CO2环境提供关键理论依据。

关键词: CO2, 碳酸酐酶, G蛋白, 一氧化氮, 气孔运动

Abstract: INTRODUCTION: The continuously increasing atmospheric CO2concentration affects plant stomatal movement and water use efficiency. Unveiling the molecular mechanisms underlying CO2-regulated stomatal closure is of great significance for understanding plant adaptation to high CO2 environments and ensuring agricultural productivity. Previous studies have indicated that Gα protein, carbonic anhydrase (CA), and nitric oxide (NO) are all involved in high CO2-induced stomatal closure, but the signaling relationships among these three components remain unclear. RATIONALE: Gα mediates stomatal movement in response to various stimuli by regulating NO generation in guard cells; CA is a key enzyme for CO2 perception in guard cells and participates in early CO2 signal transduction; NO acts as a gaseous signaling molecule crucial for stomatal movement, with its synthesis primarily dependent on nitrate reductase NIA1. Previous research suggests that Gα may interact with CA, and both likely function upstream of NO to jointly regulate CO2 response. RESULTS: (1) Pertussis toxin (PTX, Gα inhibitor) and gpa1 mutants impaired NaHCO3-induced stomatal closure and NO production in guard cells of wild-type plants, but not in cGα and wGα lines. Sodium nitroprusside (SNP, NO donor) eliminated the blocking effects of PTX and gpa1 on NaHCO3-induced stomatal closure. c-PTIO (NO scavenger), Na2WO4(nitrate reductase inhibitor), and nia1-2 mutant all disrupted NaHCO3-induced stomatal closure and guard cell NO generation, effects which were not reversed by cholera toxin (CTX, Gα activator). Furthermore, NaHCO3 failed to induce stomatal closure and NO production in guard cells of cGα/nia1-2 and wGα/nia1-2. These results indicate that Gα is located upstream of NO. (2) The CA inhibitors acetazolamide (AZ) and ethoxzolamide (EZ), as well as ca1ca4 mutant, disrupted NaHCO3-induced stomatal closure and guard cell NO generation, while SNP restored NaHCO3-induced stomatal closure in these samples. These results demonstrate that CA is also situated upstream of NO. (3) The failure of NaHCO3 to induce stomatal closure and guard cell NO generation in wGα/ca1ca4 and cGα/ca1ca4 was consistent with the phenotype of ca1ca4 but opposite to that of wGα and cGα. This indicates that CA is genetically located downstream of Gα. CONCLUSION: This study elucidates a sequential signaling pathway of Gα-CA-NO, which collectively regulates high CO2-induced stomatal closure in Arabidopsis. These findings deepen our understanding of CO2 signal transduction in guard cells and provide a theoretical basis for modulating crop adaptation to future high-CO2 environments.

Key words: CO2, carbonic anhydrase, G protein, Nitric oxide, stomatal movement