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首页> 外文期刊>Protoplasma: An International Journal of Cell Biology >Selenium improves photosynthesis and induces ultrastructural changes but does not alleviate cadmium-stress damages in tomato plants
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Selenium improves photosynthesis and induces ultrastructural changes but does not alleviate cadmium-stress damages in tomato plants

机译:硒改善了光合作用并诱导超微结构的变化,但不缓解番茄植物中的镉胁迫损坏

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The application of Se to plants growing under Cd contamination may become an alternative strategy to minimize Cd damage. However, there is no specific information available regarding whether Se can affect the anatomical structure and photosynthetic rates of plants under Cd stress. To address questions related to Se-protective responses under Cd stress, we evaluated the structural and ultrastructural aspects, photosynthetic rates and growth of tomato cv. Micro-Tom plants. Plants were exposed to 0.5 mM CdCl2 and further supplemented with 1.0 mu M of selenite or selenate. The overall results revealed different trends according to the Se source and Cd application. Both Se sources improved growth, photosynthesis, leaf characteristics and middle lamella thickness between mesophyll cells. In contrast, Cd caused decreases in photosynthesis and growth and damage to the ultrastructure of the chloroplast. The number of mitochondria, peroxisomes, starch grains and plastogloboli and the disorganization of the thylakoids and the middle lamella in plants increased in the presence of Cd or Cd + Se. Se plays an important role in plant cultivation under normal conditions. This finding was corroborated by the identification of specific structural changes in Se-treated plants, which could benefit plant development. However, a reversal of Cd stress effects was not observed in the presence of Se.
机译:SE在CD污染下生长的植物可能成为最小化CD损伤的替代策略。然而,没有关于SE是否可以影响CD胁迫下植物的解剖结构和光合速率的具体信息。为了解决与CD压力下的SE保护反应相关的问题,我们评估了番茄CV的结构和超微结构方面,光合速率和生长。微米植物。植物暴露于0.5mM CDCl 2并进一步补充硒矿或硒酸盐。整体结果显示了根据SE源和CD应用的不同趋势。 SE源均可改善叶片细胞之间的生长,光合作用,叶片特征和中隙厚度。相比之下,CD引起光合作用和生长和叶绿体超微结构的损害降低。在Cd或Cd + Se的存在下,线粒体,过氧化物,淀粉颗粒和塑料葡萄球菌和植物中薄片的紊乱增加。在正常情况下,SE在植物培养中起重要作用。通过鉴定SE治疗植物的特异性结构变化,这种发现得到了证实,这可能有利于植物发育。然而,在SE存在下未观察到CD应激效应的逆转。

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