Paclobutrazol mitigates salt stress in indica rice seedlings by enhancing glutathione metabolism and glyoxalase system

被引:0
|
作者
Bundit Khunpon
Suriyan Cha-um
Bualuang Faiyue
Jamnong Uthaibutra
Kobkiat Saengnil
机构
[1] Chiang Mai University,Department of Biology, Faculty of Science
[2] National Center for Genetic Engineering and Biotechnology (BIOTEC),Center of Excellence in Bioresources for Agriculture, Industry and Medicine, Faculty of Science
[3] National Science and Technology Development Agency (NSTDA),undefined
[4] Department of Biology,undefined
[5] Mahidol Wittayanusorn School,undefined
[6] Chiang Mai University,undefined
来源
Biologia | 2018年 / 73卷
关键词
Paclobutrazol; Methylglyoxal; Glyoxalase enzyme; Glutathione; Glutathione reductase; Salinity stress;
D O I
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中图分类号
学科分类号
摘要
Stress-induced methylglyoxal (MG) functions as a toxic molecule, inhibiting plant physiological processes such as photosynthesis and antioxidant defense systems. In the present study, an attempt was made to investigate the MG detoxification through glutathione metabolism in indica rice [Oryza sativa L. ssp. indica cv. Pathumthani 1] under salt stress by exogenous foliar application of paclobutrazol (PBZ). Fourteen-day-old rice seedlings were pretreated with 15 mg L−1 PBZ foliar spray. After 7 days, rice seedlings were subsequently exposed to 0 (control) or 150 mM NaCl (salt stress) for 12 days. Prolonged salt stress enhanced the production of MG molecules and the oxidation of proteins, leading to decreased activity of glyoxalase enzymes, glyoxalase I (Gly I) and glyoxalase II (Gly II). Consequently, the decreased glyoxalase activities were also associated with a decline in reduced glutathione (GSH) content and glutathione reductase (GR) activity. PBZ pretreatment of rice seedlings under salt stress significantly lowered MG production and protein oxidation, and increased the activities of both Gly I and Gly II. PBZ also increased GSH content and GR activity along with the up-regulation of glyoxalase enzymes, under salt stress. In summary, salinity induced a high level of MG and the associated oxidative damage, while PBZ application reduced the MG toxicity by up-regulating glyoxalase and glutathione defense system in rice seedlings.
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页码:1267 / 1276
页数:9
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