Aluminum nanoscales as hormetic response effectors in Fagopyrum esculentum seedlings

Authors

  • O.E. Smirnov Institute of Biology and Medicine of Taras Shevchenko National University of Kiev
  • L.-A. Karpets Institute of Biology and Medicine of Taras Shevchenko National University of Kiev
  • A.V. Zinchenko Institute of Biology and Medicine of Taras Shevchenko National University of Kiev
  • M.S. Kovalenko Institute of Biology and Medicine of Taras Shevchenko National University of Kiev
  • Ye.O. Konotop Institute of Biology and Medicine of Taras Shevchenko National University of Kiev
  • V.V. Schwartau Institute of Plant Physiology and Genetics of the NAS of Ukraine, Kiev

DOI:

https://doi.org/10.15407/dopovidi2019.02.090

Keywords:

Al nanoscales, buckwheat seedlings, colloidal solution, hormesis

Abstract

Aluminum (Al) nanoscales have been applied in many areas of production industries to produce cosmetic fillers, packaging materials, cutting tools, glass products, metal products, semiconductor materials, plastics, etc. Several studies have demonstrated the contradictory data for positive and negative effects of Al nanoscales on plants. The total length of seedlings grown for 21 days and the relative water content are used to determine the stimulating effects. In addition, the enhancement effect of Al nanoscales on photosynthetic pigments and the total phenolic and anthocyanin contents are determined. The growth stimulation and increase of the content of photosynthetic pigments are observed at the addition of 50 and 250 mg/L of Al nanoscales. Plant growth stimuli and the fixed bene ficial action of Al nanoscales on morphofunctional traits at physiological and biochemical levels are interpreted as the hormesis phenomenon.

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References

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Published

15.04.2024

How to Cite

Smirnov, O., Karpets, L.-A., Zinchenko, A., Kovalenko, M., Konotop, Y., & Schwartau, V. (2024). Aluminum nanoscales as hormetic response effectors in Fagopyrum esculentum seedlings . Reports of the National Academy of Sciences of Ukraine, (2), 90–95. https://doi.org/10.15407/dopovidi2019.02.090

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