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硫化氢调节拟南芥中乙烯诱导的气孔关闭。

Hydrogen sulfide regulates ethylene-induced stomatal closure in Arabidopsis thaliana.

机构信息

College of Life Sciences, Qingdao Agricultural University, University Key Laboratory of Plant Biotechnology in Shandong Province, Qingdao 266109, China.

出版信息

J Integr Plant Biol. 2013 Mar;55(3):277-89. doi: 10.1111/jipb.12004. Epub 2013 Feb 14.

Abstract

Hydrogen sulfide (H2 S) is a newly-discovered signaling molecule in plants and has caused increasing attention in recent years, but its function in stomatal movement is unclear. In plants, H2 S is synthesized via cysteine degradation catalyzed by D-/L-cysteine desulfhydrase (D-/L-CDes). AtD-/L-CDes::GUS transgenic Arabidopsis thaliana (L.) Heynh. plants were generated and used to investigate gene expression patterns, and results showed that AtD-/L-CDes can be expressed in guard cells. We also determined the subcellular localization of AtD-/L-CDes using transgenic plants of AtD-/L-CDes::GFP, and the results showed that AtD-CDes and AtL-CDes are located in the chloroplast and in the cytoplasm, respectively. The transcript levels of AtD-CDes and AtL-CDes were affected by the chemicals that cause stomatal closure. Among these factors, ACC, a precursor of ethylene, has the most significant effect, which indicates that the H2 S generated from D-/L-CDes may play an important role in ethylene-induced stomatal closure. Meanwhile, H2 S synthetic inhibitors significantly inhibited ethylene-induced stomatal closure in Arabidopsis. Ethylene treatment caused an increase of H2 S production and of AtD-/L-CDes activity in Arabidopsis leaves. AtD-/L-CDes over-expressing plants exhibited enhanced induction of stomatal closure compared to the wild-type after ethylene treatment; however, the effect was not observed in the Atd-cdes and Atl-cdes mutants. In conclusion, our results suggest that the D-/L-CDes-generated H2 S is involved in the regulation of ethylene-induced stomatal closure in Arabidopsis thaliana.

摘要

硫化氢 (H2S) 是一种在植物中发现的新的信号分子,近年来受到越来越多的关注,但它在气孔运动中的功能尚不清楚。在植物中,H2S 是通过半胱氨酸脱硫酶 (D-/L-CDes) 催化的半胱氨酸降解合成的。生成了 AtD-/L-CDes::GUS 转基因拟南芥 (L.) Heynh. 植物,用于研究基因表达模式,结果表明 AtD-/L-CDes 可以在保卫细胞中表达。我们还使用 AtD-/L-CDes::GFP 的转基因植物确定了 AtD-/L-CDes 的亚细胞定位,结果表明 AtD-CDes 和 AtL-CDes 分别位于叶绿体和细胞质中。AtD-CDes 和 AtL-CDes 的转录水平受引起气孔关闭的化学物质的影响。在这些因素中,乙烯的前体 ACC 影响最大,这表明 D-/L-CDes 产生的 H2S 可能在乙烯诱导的气孔关闭中发挥重要作用。同时,H2S 合成抑制剂显著抑制了拟南芥中乙烯诱导的气孔关闭。乙烯处理导致拟南芥叶片中 H2S 产生和 AtD-/L-CDes 活性增加。与野生型相比,乙烯处理后过表达 AtD-/L-CDes 的植物表现出更强的气孔关闭诱导;然而,在 Atd-cdes 和 Atl-cdes 突变体中未观察到这种效果。总之,我们的结果表明,D-/L-CDes 产生的 H2S 参与了拟南芥中乙烯诱导的气孔关闭的调节。

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