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零价铁基纳米材料对绿豆的植物毒性:种子萌发和幼苗生长实验

Phytotoxicity of Zero-Valent Iron-Based Nanomaterials in Mung Beans: Seed Germination and Seedling Growth Experiments.

作者信息

Wu Huan, Li Sha, He Yu, Zhou Bin, Zeng Guoming, Huang Yuanyuan, Sun Da

机构信息

Intelligent Construction Technology Application Service Center, Chongqing City Vocational College, Chongqing 402160, China.

National & Local Joint Engineering Research Center for Ecological Treatment Technology of Urban Water Pollution, College of Life and Environmental Science, Wenzhou University, Wenzhou 325035, China.

出版信息

Toxics. 2025 Mar 27;13(4):250. doi: 10.3390/toxics13040250.

Abstract

The extensive utilization of nano-zero-valent iron (nZVI) and its engineered derivatives has prompted significant environmental concerns, particularly regarding their phytotoxicological impacts, which remain inadequately characterized. This investigation systematically evaluated the phytotoxicological responses induced by nZVI, Chlorella vulgaris biochar (BC), and Chlorella vulgaris biochar loaded with nano-zero-valent iron (BC/nZVI) on mung bean seed germination and subsequent seedling development. The experimental data revealed that both the nZVI and BC/nZVI treatments significantly suppressed the germination indices, including germination rate, radicle and plumule elongation, and biomass accumulation, with nZVI demonstrating the most pronounced inhibitory effects. During the vegetative growth phases, nZVI exposure substantially impaired plant morphogenesis, manifested through reduced vertical growth, diminished fresh and dry biomass production, and the onset of premature foliar chlorosis, necrosis, desiccation, and, ultimately, plant mortality. A comparative analysis indicated that the BC/nZVI composites exhibited less severe photosynthetic inhibition relative to pristine nZVI. Biochemical assays demonstrated that nZVI exposure elicited the substantial upregulation in antioxidant enzyme activities, including superoxide dismutase (SOD), catalase (CAT), and peroxidase (POD), concomitant with abnormal ferric ion accumulation in root tissues. Notably, BC/nZVI composites demonstrated the partial mitigation of these physiological disturbances. These empirical findings underscore that excessive iron bioavailability from nZVI induces substantial phytotoxicological stress, while BC matrix incorporation provides the partial amelioration of these adverse effects on seedling ontogeny.

摘要

纳米零价铁(nZVI)及其工程衍生物的广泛应用引发了重大的环境问题,尤其是其植物毒理学影响,目前仍未得到充分表征。本研究系统评估了nZVI、小球藻生物炭(BC)和负载纳米零价铁的小球藻生物炭(BC/nZVI)对绿豆种子萌发及后续幼苗发育的植物毒理学响应。实验数据表明,nZVI和BC/nZVI处理均显著抑制了萌发指标,包括发芽率、胚根和胚芽伸长以及生物量积累,其中nZVI的抑制作用最为明显。在营养生长阶段,nZVI暴露严重损害了植物形态发生,表现为垂直生长减少、鲜重和干重产量降低,以及叶片过早出现黄化、坏死、干燥,最终导致植物死亡。对比分析表明,BC/nZVI复合材料相对于原始nZVI表现出较轻的光合抑制。生化分析表明,nZVI暴露导致抗氧化酶活性大幅上调,包括超氧化物歧化酶(SOD)、过氧化氢酶(CAT)和过氧化物酶(POD),同时根组织中铁离子异常积累。值得注意的是,BC/nZVI复合材料部分缓解了这些生理紊乱。这些实证结果强调,nZVI中过量的铁生物有效性会引发严重的植物毒理学应激,而BC基质的掺入可部分改善这些对幼苗个体发育的不利影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b55a/12031036/6d529320d964/toxics-13-00250-g001.jpg

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