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Physiological and biochemical reactions of Hordeum vulgare seedlings to the action of silver nanoparticles

机译:大麦幼苗对银纳米颗粒作用的生理生化反应

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Morphometrical indexes, and spectrophotometrically measured protein and glutathione (GSH, GSSG) contents and activity of peroxidase (POD, EC 1.11.1.7), glutathione-reductase (GR, EC 1.6.4.2) and glutathione S-transferase (GST, EС 2.5.1.18) were examined in Hordeum vulgare L. seedlings after 0.01 and 0.1 mg/l AgNPs treatment during 24 h. We tested the hypothesis that the action of nanoparticles has a stressful effect on the physiological and biochemical processes of seedlings. Growth of roots was inhibited and fresh weight decreased by 29% and 21% under low and high concentrations respectively. Conversely, leaf growth was intensified, and leaf length (16% and 18%) and fresh weight (35% and 44%) increased at low and high concentrations respectively. POD activity in roots increased by 26% and 7%, and decreased in leaves to 57% and 81% of control at low and high concentrations respectively. GSH content changed insignificantly, but GSSG content increased in roots (2 and 2.5-fold) and in leaves (13% and 30%) at both AgNPs concentrations. GSH/GSSG-ratio decreased in roots (1.9 and 2.6-fold) and in leaves (1.1 and 1.3-fold) at low and high concentrations respectively. GR activity decreased at a concentration of 0.01 mg/l (7% in roots and 17% in leaves respectively) and increased at 0.1 mg/l (52% in roots and 6% in leaves). GST activity increased in leaves (52% and 78% at low and high concentrations) but decreased by 17% in roots under high concentration of nanosilver. Thus, the action of AgNPs on barley seedlings had a dose-dependent and organ-specific character. The various directions of changes in growth, metabolic processes and activity of antioxidant defense systems appear to be a stress response of barley seedlings to the impact of AgNPs, which underlines the necessity of detailed study of plant intracellular processes exposed to the action of nanomaterial.?.
机译:形态计量学指标,分光光度法测量的蛋白质和谷胱甘肽(GSH,GSSG)含量以及过氧化物酶(POD,EC 1.11.1.7),谷胱甘肽还原酶(GR,EC 1.6.4.2)和谷胱甘肽S-转移酶(GST,EС2.5)的活性。在0.01和0.1 mg / l AgNPs处理24小时后,在大麦幼苗中检查了1.18)。我们测试了以下假设:纳米粒子的作用对幼苗的生理和生化过程具有应激作用。在低浓度和高浓度下,根的生长受到抑制,鲜重分别降低29%和21%。相反,在低浓度和高浓度下,叶片的生长加快,叶片长度(16%和18%)和鲜重(35%和44%)增加。在低浓度和高浓度下,根中的POD活性分别增加了26%和7%,而在叶片中分别下降至对照的57%和81%。在两种AgNPs浓度下,GSH含量变化不明显,但根(2倍和2.5倍)和叶(13%和30%)中的GSSG含量增加。在低浓度和高浓度下,根部的GSH / GSSG比率分别降低(1.9和2.6倍)和叶片(1.1和1.3倍)。 GR活性在0.01 mg / l的浓度下下降(根为7%,叶为17%),在0.1 mg / l的浓度下(根为52%,叶为6%)​​增加。在高浓度的纳米银下,叶片中的GST活性增加(低和高浓度下分别为52%和78%),而根部则降低了17%。因此,AgNPs对大麦幼苗的作用具有剂量依赖性和器官特异性的特征。生长,代谢过程和抗氧化防御系统活性变化的各个方向似乎是大麦幼苗对AgNPs的胁迫响应,这表明有必要详细研究暴露于纳米材料作用下的植物细胞内过程。 。

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