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硫化氢通过上调抗坏血酸-谷胱甘肽循环减轻砷酸盐对豌豆幼苗的毒性作用:一氧化氮可能参与其中。

Hydrogen sulfide alleviates toxic effects of arsenate in pea seedlings through up-regulation of the ascorbate-glutathione cycle: Possible involvement of nitric oxide.

作者信息

Singh Vijay Pratap, Singh Samiksha, Kumar Jitendra, Prasad Sheo Mohan

机构信息

Govt Ramanuj Pratap Singhdev Post Graduate College, Baikunthpur, Koriya, 497335, Chhattisgarh, India.

Ranjan Plant Physiology and Biochemistry Laboratory, Department of Botany, University of Allahabad, Allahabad, 211002, India.

出版信息

J Plant Physiol. 2015 Jun 1;181:20-9. doi: 10.1016/j.jplph.2015.03.015. Epub 2015 Apr 17.

Abstract

In plants, hydrogen sulfide (H2S) is an emerging novel signaling molecule that is involved in growth regulation and abiotic stress responses. However, little is known about its role in the regulation of arsenate (As(V)) toxicity. Therefore, hydroponic experiments were conducted to investigate whether sodium hydrosulfide (NaHS; a source of H2S) is involved in the regulation of As(V) toxicity in pea seedlings. Results showed that As(V) caused decreases in growth, photosynthesis (measured as chlorophyll fluorescence) and nitrogen content, which was accompanied by the accumulation of As. As(V) treatment also reduced the activities of cysteine desulfhydrase and nitrate reductase, and contents of H2S and nitric oxide (NO). However, addition of NaHS ameliorated As(V) toxicity in pea seedlings, which coincided with the increased contents of H2S and NO. The cysteine level was higher under As(V) treatment in comparison to all other treatments (As-free; NaHS; As(V)+NaHS). The content of reactive oxygen species (ROS) and damage to lipids, proteins and membranes increased by As(V) while NaHS alleviated these effects. Enzymes of the ascorbate-glutathione cycle (AsA-GSH cycle) showed inhibition of their activities following As(V) treatment while their activities were increased by application of NaHS. The redox status of ascorbate and glutathione was disturbed by As(V) as indicated by a steep decline in their reduced/oxidized ratios. However, simultaneous NaHS application restored the redox status of the ascorbate and glutathione pools. The results of this study demonstrated that H2S and NO might both be involved in reducing the accumulation of As and triggering up-regulation of the AsA-GSH cycle to counterbalance ROS-mediated damage to macromolecules. Furthermore, the results suggest a crucial role of H2S in plant priming, and in particular for pea seedlings in mitigating As(V) stress.

摘要

在植物中,硫化氢(H₂S)是一种新出现的新型信号分子,参与生长调节和非生物胁迫响应。然而,关于其在砷酸盐(As(V))毒性调节中的作用知之甚少。因此,进行了水培实验,以研究氢硫化钠(NaHS;H₂S的来源)是否参与豌豆幼苗中As(V)毒性的调节。结果表明,As(V)导致生长、光合作用(以叶绿素荧光测量)和氮含量下降,同时伴有As的积累。As(V)处理还降低了半胱氨酸脱硫酶和硝酸还原酶的活性,以及H₂S和一氧化氮(NO)的含量。然而,添加NaHS可减轻豌豆幼苗的As(V)毒性,这与H₂S和NO含量的增加相一致。与所有其他处理(无As;NaHS;As(V)+NaHS)相比,As(V)处理下的半胱氨酸水平更高。As(V)增加了活性氧(ROS)的含量以及对脂质、蛋白质和膜的损伤,而NaHS减轻了这些影响。抗坏血酸-谷胱甘肽循环(AsA-GSH循环)的酶在As(V)处理后活性受到抑制,而应用NaHS可增加其活性。As(V)扰乱了抗坏血酸和谷胱甘肽的氧化还原状态,表现为它们的还原/氧化比急剧下降。然而,同时施用NaHS可恢复抗坏血酸和谷胱甘肽库的氧化还原状态。本研究结果表明,H₂S和NO可能都参与减少As的积累,并触发AsA-GSH循环的上调,以平衡ROS介导的对大分子的损伤。此外,结果表明H₂S在植物引发中起关键作用,特别是对于减轻豌豆幼苗的As(V)胁迫。

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