数字农科院2.0

Silver nanoparticles amplify mercury toxicity in rice: Impacts on germination, growth, and cellular integrity

文献类型: 外文期刊

作者: Yu, Huijuan;Pei, Penggang;Wang, Chao;Sun, Tao;Chang, Jianwei;Wang, Xingru;Wu, Shihang;Hu, Zhipeng;Zhou, Xiaojia;Huang, Qingqing;Sun, Yuebing

作者机构:

关键词: Mercury (Hg);Silver nanoparticles (AgNPs);Synergistic toxicity;Rice;Seed germination

期刊名称: PLANT PHYSIOLOGY AND BIOCHEMISTRY

ISSN: 0981-9428

年卷期: 2025 年 229 卷

页码:

收录情况: SCIE(2025版)

摘要: This study investigates the synergistic co-effects of mercury (Hg) and silver nanoparticles (AgNPs) on rice seed germination and early seedling development. Hg were applied at concentrations of 0, 0.33, 1.65, and 8.25 mg kg-1 while AgNPs were administered at 0, 50, 100, and 500 mg kg-1. Results demonstrate that single low Hg concentrations enhanced germination rate from 79.63 % to 89.51 %, and stimulated alpha-amylase activity from 0.26 to 0.34 mu g g-1 FW min-1. Co-exposure with AgNPs significantly modulated these responses, particularly under 50 and 500 mg kg-1 AgNPs treatments where alpha-amylase activity reached from 0.26 to 0.49 and 0.25 mu g g-1 FW min-1, respectively. The combined treatment with high concentrations of both contaminants further substantially inhibited seedling growth, reducing plant height by 39 % and roots length by 13 %. AgNPs further enhanced Hg accumulation in plant tissues and intensified oxidative stress, as indicated by elevated peroxidase (POD) activity and malondialdehyde (MDA) levels. Ultrastructural and DNA damage analyses confirmed severe cellular disruption and dose-dependent genotoxicity. These findings provide critical insights into the synergistic toxicity mechanisms of Hg and AgNPs co-contamination in rice seedlings, with important implications for agricultural safety under heavy metal and nano-product combined contamination.

分类号:

  • 相关文献

[1]Performance, mechanism and environmental effect evaluation of thiol-functionalized montmorillonites for Hg-contaminated paddy soil remediation. Penggang Pei,Tao Sun,Yingming Xu,Yuebing Sun. 2024

[2]水稻淡褐斑叶突变体lbsll的遗传分析与基因定位. 奉保华,杨杨,施勇烽,林璐,陈洁,黄奇娜,魏彦林,HeiLEUNG,吴建利. 2012

[3]OsBTF3转基因水稻对病原茵侵染的反应和防卫基因的表达分析. 陈华民,吴茂森,何晨阳. 2012

[4]Seed-Soaking with Melatonin for the Improvement of Seed Germination, Seedling Growth, and the Antioxidant Defense System under Flooding Stress. Zeng, Hongli,Liu, Minghao,Wang, Xin,Liu, Ling,Wu, Huiyi,Chen, Xuan,Wang, Haodong,Shen, Quansheng,Chen, Guanghui,Wang, Yue. 2022

[5]The basic helix-loop-helix transcription factor gene, OsbHLH38, plays a key role in controlling rice salt tolerance. Du, Fengping,Wang, Yinxiao,Wang, Juan,Li, Yingbo,Zhang, Yue,Zhao, Xiuqin,Xu, Jianlong,Li, Zhikang,Zhao, Tianyong,Wang, Wensheng,Fu, Binying. 2023

[6]Melatonin Alleviates Low-Temperature Stress via ABI5-Mediated Signals During Seed Germination in Rice (Oryza sativa L.). Ruiqing Li,Meng Jiang,Yue Song,Huali Zhang. 2021

[7]OsNAC2 Is Involved in Multiple Hormonal Pathways to Mediate Germination of Rice Seeds and Establishment of Seedling. Jiangtao Yu,Chanjuan Mao,Qun Zhong,Xuefeng Yao,Peng Li,Chunming Liu,Feng Ming. 2021

[8]Genome-wide association studies identified OsTMF as a gene regulating rice seed germination under salt stress. Lifeng Liu,Yanling Ma,Heng Zhao,Lin Guo,Yan Guo,Chun Ming Liu. 2024

[9]Epitranscriptome profiles reveal participation of the RNA methyltransferase gene OsMTA1 in rice seed germination and salt stress response. Yingbo Li,Ming Yin,Juan Wang,Xiuqin Zhao,Jianlong Xu,Wensheng Wang,Binying Fu. 2025

[10]Comparative Transcriptome and Hormonal Analysis Reveals the Mechanisms of Salt Tolerance in Rice. Dingsha Jin,Yanchao Xu,Asif Iqbal,Yuqing Liu,Yage Zhang,Youzhen Lin,Liqiong Tang,Xinhua Wang,Junjie Wang,Mengshu Huang,Peng Xu,Xiaoning Wang. 2025

[11]Joint toxic mechanism of clothianidin and prochloraz in the earthworm (Eisenia fetida). Xinju Liu,Fangzhao Jia,Lu Lv,Liangang Mao,Tianfen Chu,Yanhua Wang. 2024

[12]Mitochondrial Small Heat Shock Protein M.ediates Seed Germination Via T hermal Sensing. Zhu, Shuijin,Ruan, Yong-Ling,Guan, Xueying,Wang, Luyao,Wang, Luyao,Ma, Wei,Zhang, Tianzhen,Ruan, Yong-Ling,Pan, Ronghui,Liu, Fengjun,Ma, Wei,Li, Jie,Li, Jie,Ma, Hongyu,Guan, Xueying,Hu, Jin,Chen, Xiaoya,Zhang, Tianzhen. 2019

[13]QTL mapping of coleorhiza length in maize (Zea mays L.) under two germination environmental conditions. Jiang, Xuwen,Tian, Baohua,Zhang, Weimin,Wang, Guoying,Wang, Jianhua,Jiang, Xuwen,Tian, Baohua,Zhang, Weimin,Wang, Guoying,Wang, Jianhua,Wang, Guoying. 2011

[14]Validation of reference genes for real-time quantitative PCR normalization in soybean developmental and germinating seeds. Li, Qing,Fan, Cheng-Ming,Zhang, Xiao-Mei,Fu, Yong-Fu. 2012

[15]Variation in temperature requirements for germination and early seedling root development in Chamaecrista rotundifolia and three allied species. Xu, MG,McDonald, CK,Liu, CJ,Hacker, JB. 2000

[16]Effects of rhizobacteria on the respiration and growth of Cerasus sachalinensis Kom. seedlings. Qin, Sijun,Zhou, Wenjie,Li, Zhixia,Lyu, Deguo,Li, Zhixia. 2016

[17]Transcriptome analysis of the germinated seeds identifies low-temperature responsive genes involved in germination process in Ricinus communis. Wang, Xin,Wang, Lijun,Yan, Xingchu,Wang, Lei,Tan, Meilian,Geng, Xinxin,Wei, Wenhui,Wang, Xin.

[18]Phenotypic and genotypic changes in rapeseed after 18 years of storage and regeneration. Wu, XM,Wu, NF,Qian, XZ,Li, RG,Huang, FH,Zhu, L. 1998

[19]Effects of litter, seed position, and water availability on establishment of seedlings for two semiarid grass species. Liu, Guixia,Wan, Liqiang,He, Feng,Tong, Zongyong,Li, Xianglin,Liu, Guixia,Liu, Zhongkuan.

[20]A putative maize zinc-finger protein gene, ZmAN13, participates in abiotic stress response. Xuan, Ning,Jin, Ying,Zhang, Hongwei,Wang, Guoying,Xie, Yuanhong,Liu, Yunjun,Wang, Guoying.

作者其他论文 更多>>