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Assessment of Morpho-Physiological and Biochemical Responses of Mercury-Stressed Trigonella foenum-gracum L. to Silver Nanoparticles and Sphingobacterium ginsenosidiumtans Applications

机译:汞胁迫三元特里龙菌的晶体生理和生化反应的评估对银纳米粒子和阪内糖苷酸的山孢菌菌和阪内酮糖苷的应用

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摘要

Heavy metals are primarily generated and deposited in the environment, causing phytotoxicity. This work evaluated fenugreek plants’ morpho-physiological and biochemical responses under mercury stress conditions toward Ag nanoparticles and Sphingobacterium ginsenosidiumtans applications. The fabrication of Ag nanoparticles by Thymus vulgaris was monitored and described by UV/Vis analysis, FTIR, and SEM. The effect of mercury on vegetative growth was determined by measuring the root and shoots length, the number and area of leaves, the relative water content, and the weight of the green and dried plants; appraisal of photosynthetic pigments, proline, hydrogen peroxide, and total phenols content were also performed. In addition, the manipulation of Ag nanoparticles, S. ginsenosidiumtans, and their combination were tested for mercury stress. Here, Ag nanoparticles were formed at 420 nm with a uniform cuboid form and size of 85 nm. Interestingly, the gradual suppression of vegetal growth and photosynthetic pigments by mercury, Ag nanoparticles, and S. ginsenosidiumtans were detected; however, carotenoids and anthocyanins were significantly increased. In addition, proline, hydrogen peroxide, and total phenols content were significantly increased because mercury and S. ginsenosidiumtans enhance this increase. Ag nanoparticles achieve higher levels by the combination. Thus, S. ginsenosidiumtans and Ag nanoparticles could have the plausible ability to relieve and combat mercury’s dangerous effects in fenugreek.
机译:重金属主要产生并沉积在环境中,导致植物毒性。这项工作评估了汞胁迫条件下的芬格里克植物的形态生理和生化反应,朝向Ag纳米粒子和阪内杆菌酵母酸山磷酸盐的应用。通过UV / VIS分析,FTIR和SEM监测胸腺纳米粒子的Ag纳米粒子的制备。通过测量根和芽,叶片,相对含水量和绿色和干燥植物的重量来确定汞对营养生长的影响;还进行了光合色素,脯氨酸,过氧化氢和总酚含量的评估。此外,测试Ag纳米颗粒,吲哚醇糖苷,及其组合的操纵对汞应力进行了测试。这里,在420nm处形成Ag纳米颗粒,长立方体形式和85nm的尺寸。有趣的是,检测到汞,Ag纳米粒子和幼苗酸芽孢杆菌逐渐抑制植物生长和光合色素的逐渐抑制;然而,类胡萝卜素和花青素显着增加。此外,由于汞和S.吲哚醇鎓钙,脯氨酸,过氧化氢和总酚含量显着增加,因为汞和S.人参酸酯增强这种增加。 Ag纳米粒子通过组合实现较高的水平。因此,芽孢杆菌和Ag纳米颗粒可以具有可符合的能力,可释放和打击汞在葫芦巴中的危险作用。

著录项

  • 期刊名称 Plants
  • 作者单位
  • 年(卷),期 2021(10),7
  • 年度 2021
  • 页码 1349
  • 总页数 15
  • 原文格式 PDF
  • 正文语种
  • 中图分类
  • 关键词

    机译:纳米粒子;汞;酚类化合物;芬格里克;颜料;苯酚;
  • 入库时间 2022-08-21 12:34:26

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