Green copper nanoparticles from a native Klebsiella pneumoniae strain alleviated oxidative stress impairment of wheat plants by reducing the chromium bioavailability and increasing the growth.
Creators
- 1. Government College University, Faisalabad
- 2. Zhejiang University
- 3. COMSATS Institute of Information Technology
- 4. Bahauddin Zakariya University
Description
Abstract Chromium (Cr) concentration has been increasing substantially in the environment due to industrial and anthropogenic factors. Plants can absorb Cr and undergo unrestrained oxidation cascades, resulting in cell injury. The ameliorative role of biogenic copper nanoparticles to relieve wheat plants from Cr stress by supporting their growth is still unclear. The present work aims at the biosynthesis and characterization of copper nanoparticles (CuNPs) from a native Klebsiella pneumoniae strain, followed by assessment of wheat growth and physiological responses to CuNPs mixed in Cr-rich soil. The taxonomic rank of K. pneumoniae SN35 was established by the 16 S rRNA gene sequence analysis. The properties of biogenic CuNPs were elucidated by using UV–vis spectroscopy, FTIR, XRD, SEM, and TEM. It was found that 19.01–47.47 nm spherical shaped CuNPs were stabilized by different functional groups produced extracellularly by the strain SN35. The XRD data revealed the crystalline nature of CuNPs as a face-centered cubic structure. Different concentrations of CuNPs (0, 25, 50 and 100 mg kg−1 of soil) were added into the soil mixed with 3.5 mg kg−1 K2Cr2O7 and the pots were placed in a growth chamber for 30 days. The results revealed that the CuNPs, at 25 and 50 mg kg−1 of soil, augmented plant growth, biomass, and cellular antioxidants contents, whereas decreased the reactive oxygen species and Cr translocation from soil to roots and shoots as compared to control plants. Overall, the results revealed that the soil amendment of CuNPs could immobilize the Cr in the soil to prevent its translocation to the upper plant parts and support wheat growth by relieving cellular oxidative stress.
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Publication Details
Journal article
Journal:
Ecotoxicology and environmental safety
Publisher:
Elsevier BV
ISSN:
10902414
Volume:
192
Pages:
110303
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Funding
Financial Support
United Nations Educational, Scientific and Cultural Organization
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References
Venkatachalam . Zinc oxide nanoparticles (ZnONPs) alleviate heavy metal-induced ...
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Lv . Biosynthesis of copper nanoparticles using Shewanella loihica PV-4 with ant...
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Heath . Photoperoxidation in isolated chloroplasts: I. kinetics and stoichiometr...
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Zhang . Impact of copper nanoparticles and ionic copper exposure on wheat (Triti...
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