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外源硅改变了两种盐胁迫籼稻品种(MTU1010 和 Nonabokra)中的抗坏血酸-谷胱甘肽循环。

Exogenous silicon alters ascorbate-glutathione cycle in two salt-stressed indica rice cultivars (MTU 1010 and Nonabokra).

机构信息

Plant Physiology and Biochemistry Laboratory, Centre of Advanced Study, Department Of Botany, Ballygunge Science College, University of Calcutta, 35, Ballygunge Circular Road, Kolkata, 700019, India.

Plant Molecular Cytogenetics Laboratory, Centre of Advanced Study, Department Of Botany, Ballygunge Science College, University of Calcutta, 35, Ballygunge Circular Road, Kolkata, 700019, India.

出版信息

Environ Sci Pollut Res Int. 2018 Sep;25(26):26625-26642. doi: 10.1007/s11356-018-2659-x. Epub 2018 Jul 12.

Abstract

Silicon is widely available in soil and is known to mitigate both biotic and abiotic stress in plants. Very low doses of silicon are becoming increasingly essential in rice for biofortification and preventing water loss. Soil salinity is a matter of grave concern in various parts of the world, and silicon is a suitable candidate to mitigate salinity-induced stress of important plants in affected areas. The present study investigates the protective capability of exogenously applied silicon in ameliorating NaCl-induced toxicity in two rice (Oryza sativa L.) cultivars, the salt-sensitive MTU 1010, and salt-tolerant Nonabokra. Rice seedlings were treated with three doses of NaCl (25, 50, and 100 mM), initially alone and subsequently in combination with 2 mM sodium silicate (NaSiO, 9HO). After 21 days, these plants were examined to determine levels of reduced glutathione, ascorbic acid, cysteine, and activities of different enzymes involved in the ascorbate-glutathione cycle, viz., glutathione reductase (GR), ascorbate peroxidase (APX), glutathione peroxidase (GPx), and glutathione S-transferase (GST). Though ROS levels increased in both the cultivars with increasing NaCl concentrations, cv. MTU 1010 accumulated comparatively higher amounts. A differential response of NaCl-induced toxicity on the two cultivars was observed with respect to the various enzymatic and non-enzymatic antioxidants. APX and GST activities, as well as, cysteine contents, increased concomitantly with salt concentrations, whereas GR activity declined at increasing salt concentrations, in both cultivars. Activity of GPx increased in cv. Nonabokra but declined in cv. MTU 1010, under similar NaCl concentrations. Reduced glutathione (GSH) contents decreased in both cultivars, whereas ascorbate contents declined in only the sensitive cultivar. Application of silicon, along with NaCl, in the test seedlings of both the cultivars, reduced ROS accumulation and boosted antioxidant defense mechanism, through enhancing ascorbate and GSH levels, and activities of ascorbate-glutathione cycle enzymes as well. However, amelioration of salt-induced damages in the sensitive cv. MTU 1010 was more pronounced upon silicon administration, than the tolerant cv. Nonabokra. Thus, cv. MTU 1010 was found to be more responsive to applied silicon. Hence, this study was instrumental in realizing a successful strategy in silicon-mediated amelioration of salinity stress in plants.

摘要

硅在土壤中广泛存在,已知可减轻植物的生物和非生物胁迫。极低剂量的硅对水稻的生物强化和防止水分流失变得越来越重要。土壤盐度是世界各地的一个严重问题,硅是缓解受影响地区重要植物盐胁迫的合适候选物质。本研究调查了外源硅在缓解两种水稻(Oryza sativa L.)品种,即盐敏感 MTU 1010 和耐盐 Nonabokra 中 NaCl 诱导毒性中的保护能力。用三种剂量的 NaCl(25、50 和 100 mM)单独处理和随后与 2 mM 硅酸钠(NaSiO3·9H2O)组合处理水稻幼苗。21 天后,检查这些植物以确定还原型谷胱甘肽、抗坏血酸、半胱氨酸的水平和参与抗坏血酸-谷胱甘肽循环的不同酶的活性,即谷胱甘肽还原酶(GR)、抗坏血酸过氧化物酶(APX)、谷胱甘肽过氧化物酶(GPx)和谷胱甘肽 S-转移酶(GST)。尽管随着 NaCl 浓度的增加,两种品种的 ROS 水平都增加了,但 cv. MTU 1010 积累的量更高。在两种品种中观察到 NaCl 诱导的毒性的差异反应,涉及各种酶和非酶抗氧化剂。APX 和 GST 活性以及半胱氨酸含量随着盐浓度的增加而增加,而 GR 活性在两种品种中随着盐浓度的增加而下降。在 cv. Nonabokra 中,GPx 活性增加,但在 cv. MTU 1010 中则下降,在类似的 NaCl 浓度下。两种品种的还原型谷胱甘肽(GSH)含量下降,而只有敏感品种的抗坏血酸含量下降。在两种品种的试验幼苗中同时施用硅和 NaCl,通过增加抗坏血酸和 GSH 水平以及抗坏血酸-谷胱甘肽循环酶的活性,减少 ROS 积累并增强抗氧化防御机制。然而,在施用硅后,敏感品种 MTU 1010 中盐诱导损伤的缓解更为明显,而耐盐品种 Nonabokra 则不然。因此,发现 cv. MTU 1010 对外源硅的反应更为敏感。因此,本研究有助于实现一种在硅介导的植物盐胁迫缓解中的成功策略。

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