Foliar Application of Zinc Oxide Nanoparticles Alleviates Phenanthrene and Cadmium-Induced Phytotoxicity in Lettuce: Regulation of Plant–Rhizosphere–Microbial Long Distance

IF 11.3 1区 环境科学与生态学 Q1 ENGINEERING, ENVIRONMENTAL 环境科学与技术 Pub Date : 2024-12-20 DOI:10.1021/acs.est.4c07881
Manman Cao, Wenxiao Lv, Fei Wang, Shuai Ma, Huanhuan Geng, Junhong Li, Ziqi Gao, Qing Xu, Jing Guo, Wenjun Leng, Ke Chen, Zhiqiang Tan, Peng Zhang, Ke Sun, Baoshan Xing
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Abstract

Foliar application of beneficial nanoparticles exhibits potential in mitigating combined stresses from heavy metals and polycyclic aromatic hydrocarbons (PAHs) in crops, necessitating a comprehensive understanding of plant–rhizosphere–microbial processes to promote sustainable nanotechnology in agriculture. Herein, we investigated the mitigating mechanisms of foliar application of zinc oxide nanoparticles (nZnO) on lettuce growth under phenanthrene (Phe) and cadmium (Cd) costress. Compared to Phe + Cd treatment, low (L-nZnO) and high (H-nZnO) concentration of nZnO increased fresh biomass (27.2% and 8.42%) and root length (20.4% and 39.6%) and decreased MDA (35.0% and 40.0%) and H2O2 (29.0% and 15.6%) levels. L-nZnO and H-nZnO decreased Cd in roots (26.8% and 41.8%) and enhanced Zn in roots (19.9% and 107%), stems (221% and 2510%), and leaves (233% and 1500%), suggesting the long-distance migration of Zn from leaves to roots and subsequently regulating the metabolic pathways and microbial communities. Metabolomics revealed that nZnO modulated leaf glycerophospholipid metabolism and amino acid pathways and promoted rhizosphere soil carbon and phosphorus metabolism. Additionally, nZnO enriched the plant-growth-promoting, extreme, and stress-resistant bacteria in roots and leaves and heavy-metal-resistant and PAH-degrading bacteria in rhizosphere soil. These findings underscore the promising nanostrategy of nZnO to benefit plant growth in soil cocontaminated with heavy metals and PAHs.

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叶面施用氧化锌纳米颗粒减轻菲和镉对生菜的毒性:植物-根际-微生物远距离调控
叶面施用有益纳米颗粒在减轻作物重金属和多环芳烃(PAHs)的综合胁迫方面具有潜力,因此有必要全面了解植物-根际-微生物过程,以促进可持续的纳米技术在农业中的应用。本文研究了叶面施用氧化锌纳米颗粒(nZnO)对菲(Phe)和镉(Cd)胁迫下生菜生长的缓解机制。与Phe + Cd处理相比,低(L-nZnO)和高(H-nZnO)浓度的nZnO分别增加了新鲜生物量(27.2%和8.42%)和根长(20.4%和39.6%),降低了MDA(35.0%和40.0%)和H2O2(29.0%和15.6%)水平。L-nZnO和H-nZnO分别降低了根中Cd含量(26.8%和41.8%),提高了根、茎和叶中Zn含量(19.9%和107%)、茎和叶中Zn含量(221%和2510%)和叶中Zn含量(233%和1500%),表明Zn通过叶片向根的长距离迁移,调节了代谢途径和微生物群落。代谢组学研究表明,nZnO调节叶片甘油磷脂代谢和氨基酸途径,促进根际土壤碳磷代谢。此外,nZnO还能丰富根、叶中植物促生、极端和抗逆性细菌以及根际土壤中抗重金属和降解多环芳烃的细菌。这些发现强调了在重金属和多环芳烃共同污染的土壤中,nZnO纳米策略有利于植物生长的前景。
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来源期刊
环境科学与技术
环境科学与技术 环境科学-工程:环境
CiteScore
17.50
自引率
9.60%
发文量
12359
审稿时长
2.8 months
期刊介绍: Environmental Science & Technology (ES&T) is a co-sponsored academic and technical magazine by the Hubei Provincial Environmental Protection Bureau and the Hubei Provincial Academy of Environmental Sciences. Environmental Science & Technology (ES&T) holds the status of Chinese core journals, scientific papers source journals of China, Chinese Science Citation Database source journals, and Chinese Academic Journal Comprehensive Evaluation Database source journals. This publication focuses on the academic field of environmental protection, featuring articles related to environmental protection and technical advancements.
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