Alleviation of arsenic stress in pakchoi by foliar spraying of engineered nanomaterials.

Environ Sci Pollut Res Int

State Key Laboratory of Pollution Control and Resource Reuse, School of Environment, Nanjing University, Nanjing, 210023, China.

Published: August 2024

Addressing heavy metal contamination in leafy vegetables is critically important due to its adverse effects on human health. In this study, we investigated the inhibitory effects of foliar spraying with four nanoparticles (CeO, ZnO, SiO, and S NPs) on arsenic (As) stress in pakchoi (Brassica rapa var. Chinensis). The findings reveal that foliar application of ZnO NPs at 1 ~ 2.5 mg plant and CeO NPs at 5 mg plant significantly reduces As in shoots by 40.9 ~ 47.3% and 39.4%, respectively. Moreover, 5 mg plant CeO NPs increased plant height by 6.06% and chlorophyll a (Chla) content by 30.2% under As stress. Foliar spraying of CeO NPs at 0.2-5 mg plant also significantly enhanced superoxide dismutase (SOD) activity in shoots by 9.4 ~ 13.9%, lowered HO content by 42.4 ~ 53.25%, and increased root protein contents by 79 ~ 109.2%. CeO NPs regulate the As(III)/As(V) ratio, aiding in As efflux from roots and thereby reducing As toxicity to plants. In vitro digestion experiments reveal that the consumption of CeO NPs carries the lowest health risk of As. In addition, foliar spraying of ZnO NPs at 1 ~ 2.5 mg plant can suppress plant As uptake by modulating enzyme activity, reducing leaf damage, and enhancing chlorophyll content. The study demonstrates that high CeO NP concentrations and suitable ZnO NP concentrations can alleviate As toxicity in pakchoi, consequently reducing human health risks.

Download full-text PDF

Source
http://dx.doi.org/10.1007/s11356-024-34481-6DOI Listing

Publication Analysis

Top Keywords

ceo nps
20
foliar spraying
16
arsenic stress
8
stress pakchoi
8
human health
8
nps
8
zno nps
8
nps 1 ~ 25
8
1 ~ 25 plant
8
plant ceo
8

Similar Publications

In this work, cerium dioxide nanostructures were synthesized in an easy sonochemical way. CeO nanoparticles have received much attention in nanotechnology. CeONPs, exhibit biomimetic properties depending on their size, ratio of valency on their surface, and the ambient physico-chemical properties.

View Article and Find Full Text PDF

Colon cancer is a major global health threat. Early detection and treatment are crucial for improving survival rates. Conventional methods, like colonoscopies and CT scans, have limitations, emphasizing the need for innovative strategies.

View Article and Find Full Text PDF
Article Synopsis
  • The study investigates the toxicity of lanthanum, yttrium, and cerium oxides on the soil organism Enchytraeus crypticus, focusing on survival, reproduction, avoidance behavior, and DNA integrity.
  • The research finds that the bulk forms of LaO have more significant effects than their nanoparticle counterparts, while YO nanoparticles are more toxic overall, impacting reproduction and causing DNA damage at lower concentrations.
  • Results indicate that the toxicity of rare earth element oxides varies based on the type of element, concentration, exposure duration, and form, underscoring the need for careful risk assessment for soil ecosystems affected by these substances.
View Article and Find Full Text PDF

Alloy nanocatalysts exhibit enhanced activity, selectivity, and stability mainly due to their versatile phases and atomic structures. However, nanocatalysts' "real" functional structures may vary from their as-synthesized status due to the structural and chemical changes during the activation and reaction conditions. Herein, we studied the activated CuPd/CeO nanocatalysts under the CO oxidation reaction featuring an atomic-scale phase separation process, resulting in a notable "hysteresis" in catalyst performance.

View Article and Find Full Text PDF

Cerium oxide NPs (-CeO), with notable performance in various biological tests like redox activity, free radical scavenging, and biofilm inhibition, emerge as significant candidates to address issues in related areas. In this research, copper-decorated -CeO (Cu@-CeO) were first synthesized and then characterized using advanced techniques such as SEM-EDX, XRD, XPS, BET, and ICP-OES. The biochemical properties of the obtained Cu@-CeO nanostructure and its performance in polyethersulfone (PES) membranes were thoroughly investigated in this research study.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!