Nitric oxide alleviates cadmium-impeded growth by limiting ROS accumulation in pea seedlings

过氧化氢酶 活性氧 化学 抗氧化剂 一氧化氮 氧化应激 生物化学 过氧化物酶 过氧化氢 脂质过氧化 硝普钠 亚硝酸盐还原酶 亚硝酸盐 食品科学 硝酸还原酶 硝酸盐 有机化学
作者
Ekhlaque A. Khan,H. Ahmed,Amarendra Narayan Misra,Pallavi Sharma,Amarendra Narayan Misra,Mirza Hasanuzzaman
出处
期刊:Biocell 卷期号:46 (12): 2583-2593 被引量:5
标识
DOI:10.32604/biocell.2022.021732
摘要

Cadmium (Cd) causes oxidative stress, which leads to the oxidation of various biomolecules by the production of reactive oxygen species (ROS) to facilitate programmed cell death (PCD). The antioxidant defense system fails to detoxify ROS when it is produced in excess. Nitric oxide (NO), a gaseous free radical and a phytohormone, regulates various physiological processes of plants. Therefore, this work was undertaken to study the effects of the application of exogenous sodium nitroprusside (SNP, a NO donor) on growth parameters, oxidative stress, accumulation of secondary metabolites, and activities of antioxidant enzymes under Cd stress. Mild (50 µM) and severe (200 µM) Cd stress were applied to hydroponically grown pea (Pisum sativum L.) plants with or without 50 µM SNP. Severe Cd stress had a substantial impact on the plants. The effectiveness of NO in reducing Cd-induced negative effects on plant height, fresh weight, dry weight, protein content, nitrite content, nitrate reductase (NR) activity, catalase activity, and peroxidase activity were investigated. Seedling development, protein content, nitrite content, nitrate reductase (NR) activity, antioxidant defense systems disruption, overproduction of reactive oxygen species, and oxidative damage were observed. The antioxidant defense system (catalase and peroxidase activities) was activated by NO, which resulted in lower lipid peroxidation and lower hydrogen peroxide (H2O2) levels in Cd-exposed plants. SNP treatment boosted endogenous NO levels and NR activity in Cd-stressed plants while also enhanced proline levels to preserve osmotic equilibrium. The presence of total phenols and flavonoids increased after SNP treatment, indicating that SNP enhanced stress recovery and boosted plant development in Cd-stressed plants.

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