TY - JOUR
T1 - Seed nano-priming with multiple nanoparticles enhanced the growth parameters of lettuce and mitigated cadmium (Cd) bio-toxicity
T2 - An advanced technique for remediation of Cd contaminated environments
AU - Bano, Nabila
AU - Khan, Sangar
AU - Hamid, Yasir
AU - Bano, Faiza
AU - Khan, Abdul Ghaffar
AU - Asmat Ullah, Muhammad
AU - Li, Tingqiang
AU - Ullah, Habib
AU - Bolan, Nanthi
AU - Rinklebe, Jörg
AU - Shaheen, Sabry M.
N1 - Funding Information:
This research is financially supported by Zhejiang Provincial Science and Technology Plan Project ( 2022C02022 , 2022C02018 ), the National Natural Science Foundation of China ( 41977017 , 42107009 , 42177008 ), and the Fundamental Research Funds for the Central Universities .
Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/3/1
Y1 - 2024/3/1
N2 - Seed nano-priming can be used as an advanced technology for enhancing seed germination, plant growth, and crop productivity; however, the potential role of seed nano-priming in ameliorative cadmium (Cd) bio-toxicity under Cd stress has not yet been sufficiently investigated. Therefore, in this study we investigated the beneficial impacts of seed priming with low (L) and high (H) concentrations of nanoparticles including nSiO2 (50/100 mg L−1), nTiO2 (20/60 mg L−1), nZnO (50/100 mg L−1), nFe3O4 (100/200 mg L−1), nCuO (50/100 mg L−1), and nCeO2 (50/100 mg L−1) on lettuce growth and antioxidant enzyme activities aiming to assess their efficacy for enhancing plant growth and reducing Cd phytotoxicity. The results showed a significant increase in plant growth, biomass production, antioxidant enzyme activities, and photosynthetic efficiency in lettuce treated with nano-primed nSiH + Cd (100 mg L−1), nTiH + Cd (60 mg L−1), and nZnL + Cd (50 mg L−1) under Cd stress. Moreover, nano-priming effectively reduced the accumulation of reactive oxygen species (ROS) and malondialdehyde (MDA) in lettuce shoots. Interestingly, nano-primed nSiH + Cd, nTiH + Cd, and nZnL + Cd demonstrated efficient reduction of Cd uptake, less translocation factor of Cd with high tolerance index, ultimately reducing toxicity by stabilizing the root morphology and superior accumulation of critical nutrients (K, Mg, Ca, Fe, and Zn). Thus, this study provides the first evidence of alleviating Cd toxicity in lettuce by using multiple nanoparticles via priming strategy. The findings highlight the potential of nanoparticles (Si, Zn, and Ti) as stress mitigation agents for improved crop growth and yield in Cd contaminated areas, thereby offering a promising and advanced approach for remediation of Cd contaminated environments.
AB - Seed nano-priming can be used as an advanced technology for enhancing seed germination, plant growth, and crop productivity; however, the potential role of seed nano-priming in ameliorative cadmium (Cd) bio-toxicity under Cd stress has not yet been sufficiently investigated. Therefore, in this study we investigated the beneficial impacts of seed priming with low (L) and high (H) concentrations of nanoparticles including nSiO2 (50/100 mg L−1), nTiO2 (20/60 mg L−1), nZnO (50/100 mg L−1), nFe3O4 (100/200 mg L−1), nCuO (50/100 mg L−1), and nCeO2 (50/100 mg L−1) on lettuce growth and antioxidant enzyme activities aiming to assess their efficacy for enhancing plant growth and reducing Cd phytotoxicity. The results showed a significant increase in plant growth, biomass production, antioxidant enzyme activities, and photosynthetic efficiency in lettuce treated with nano-primed nSiH + Cd (100 mg L−1), nTiH + Cd (60 mg L−1), and nZnL + Cd (50 mg L−1) under Cd stress. Moreover, nano-priming effectively reduced the accumulation of reactive oxygen species (ROS) and malondialdehyde (MDA) in lettuce shoots. Interestingly, nano-primed nSiH + Cd, nTiH + Cd, and nZnL + Cd demonstrated efficient reduction of Cd uptake, less translocation factor of Cd with high tolerance index, ultimately reducing toxicity by stabilizing the root morphology and superior accumulation of critical nutrients (K, Mg, Ca, Fe, and Zn). Thus, this study provides the first evidence of alleviating Cd toxicity in lettuce by using multiple nanoparticles via priming strategy. The findings highlight the potential of nanoparticles (Si, Zn, and Ti) as stress mitigation agents for improved crop growth and yield in Cd contaminated areas, thereby offering a promising and advanced approach for remediation of Cd contaminated environments.
KW - Advanced remediation trials
KW - Antioxidant enzymes activity
KW - Nanoparticles
KW - Seed nano-priming
KW - Stress mitigation
KW - Toxic metals
UR - https://www.scopus.com/pages/publications/85183956138
U2 - 10.1016/j.envpol.2024.123300
DO - 10.1016/j.envpol.2024.123300
M3 - Article
C2 - 38199483
AN - SCOPUS:85183956138
SN - 0269-7491
VL - 344
JO - Environmental Pollution
JF - Environmental Pollution
M1 - 123300
ER -