Comparative Physiological and Transcriptomic Analyses Reveal the Toxic Effects of ZnO Nanoparticles on Plant Growth

被引:78
|
作者
Wan, Jinpeng [1 ,2 ]
Wang, Ruting [1 ,3 ]
Wang, Ruling [1 ]
Ju, Qiong [1 ]
Wang, Yibo [1 ,4 ]
Xu, Jin [1 ,4 ]
机构
[1] Chinese Acad Sci, Key Lab Trop Plant Resources & Sustainable Use, Xishuangbanna Trop Bot Garden, Mengla 666303, Yunnan, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100049, Peoples R China
[3] Puer Univ, Coll Agr & Forestry, Puer 665000, Yunnan, Peoples R China
[4] Tianshui Normal Univ, Coll Bioengn & Biotechnol, Gansu Key Lab Utilizat Agr Solid Waste Resources, Tianshui 741000, Gansu, Peoples R China
关键词
OXIDE NANOPARTICLES; COMPARATIVE PHYTOTOXICITY; ANATASE TIO2; ARABIDOPSIS; TOLERANCE; ZINC; CELLS; NPS;
D O I
10.1021/acs.est.8b06641
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Zinc oxide (ZnO) nanoparticles (nZnO) are among the most commonly used nanoparticles (NPs), and they have been shown to have harmful effects on plants. However, the molecular mechanisms underlying nZnO tolerance and root sensing of NP stresses have not been elucidated. Here, we compared the differential toxic effects of nZnO and Zn2+ toxicity on plants during exposure and recovery using a combination of transcriptomic and physiological analyses. Although both nZnO and Zn2+ inhibited primary root (PR) growth, nZnO had a stronger inhibitory effect on the growth of elongation zones, whereas Zn2+ toxicity had a stronger toxic effect on meristem cells. Timely recovery from stresses is critical for plant survival. Despite the stronger inhibitory effect of nZnO on PR growth, nZnO-exposed plants recovered from stress more rapidly than Zn2+-exposed plants upon transfer to normal conditions, and transcriptome data supported these results. In contrast to Zn2+ toxicity, nZnO induced endocytosis and caused microfilament rearrangement in the epidermal cells of elongation zones, thereby repressing PR growth. nZnO also repressed PR growth by disrupting cell wall organization and structure through both physical interactions and transcriptional regulation. The present study provides new insight into the comprehensive understanding and re-evaluation of NP toxicity in plants.
引用
收藏
页码:4235 / 4244
页数:10
相关论文
共 50 条
  • [21] Metabolomics combined with physiological and transcriptomic analyses reveal regulatory features associated with blueberry growth in different soilless substrates
    Yang, Haiyan
    Wu, Yaqiong
    Duan, Yongkang
    Zhang, Chunhong
    Huang, Zhengjin
    Wu, Wenlong
    Lyu, Lianfei
    Li, Weilin
    SCIENTIA HORTICULTURAE, 2022, 302
  • [22] Physiological and transcriptomic analyses reveal mechanistic insight into the adaption of marine Bacillus subtilis C01 to alumina nanoparticles
    Dashuai Mu
    Xiuxia Yu
    Zhenxing Xu
    Zongjun Du
    Guanjun Chen
    Scientific Reports, 6
  • [23] Physiological and transcriptomic analyses reveal mechanistic insight into the adaption of marine Bacillus subtilis C01 to alumina nanoparticles
    Mu, Dashuai
    Yu, Xiuxia
    Xu, Zhenxing
    Du, Zongjun
    Chen, Guanjun
    SCIENTIFIC REPORTS, 2016, 6
  • [24] Physiological, Metabolic, and Transcriptomic Analyses Reveal the Responses of Arabidopsis Seedlings to Carbon Nanohorns
    Sun, Liangliang
    Wang, Ruting
    Ju, Qiong
    Xu, Jin
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2020, 54 (07) : 4409 - 4420
  • [25] Transcriptomic and physiological analyses reveal that cytokinin is involved in the compound leaf development of alfalfa
    Mei, Hongyao
    Yan, Jiajun
    Jia, Xuexin
    Wang, Weilin
    Li, Shuangshuang
    Sun, Ruiqi
    Jiang, Hongjiao
    Xie, Lijun
    Zhou, Chuanen
    Bai, Shiqie
    Han, Lu
    FRONTIERS IN PLANT SCIENCE, 2025, 16
  • [26] Transcriptomic and physiological analyses reveal the acquisition of somatic embryogenesis potential in Agapanthus praecox
    Yue, Jianhua
    Dong, Yan
    Du, Changmei
    Shi, Yabing
    Teng, Yun
    SCIENTIA HORTICULTURAE, 2022, 305
  • [27] Physiological and Transcriptomic Analyses Reveal Commonalities and Specificities in Wheat in Response to Aluminum and Manganese
    Luo, Daozhen
    Xian, Chunnuan
    Zhang, Wenjie
    Qin, Ying
    Li, Qing
    Usman, Muhammad
    Sun, Shiheng
    Xing, Yongxiu
    Dong, Dengfeng
    CURRENT ISSUES IN MOLECULAR BIOLOGY, 2024, 46 (01) : 367 - 397
  • [28] Comparative physiological and transcriptomic analyses reveal key regulatory networks and potential hub genes controlling peanut chilling tolerance
    Zhang, He
    Jiang, Chunji
    Lei, Jingna
    Dong, Jiale
    Ren, Jingyao
    Shi, Xiaolong
    Zhong, Chao
    Wang, Xiaoguang
    Zhao, Xinhua
    Yu, Haiqiu
    GENOMICS, 2022, 114 (02)
  • [29] Comparative physiological and transcriptomic analyses reveal salt tolerance mechanisms of Zygosaccharomyces rouxii (vol 82, pg 59, 2019)
    Wang, Dingkang
    Hao, Zhiqiang
    Zhao, Jinsong
    Jin, Yao
    Huang, Jun
    Zhou, Rongqing
    Wu, Chongde
    PROCESS BIOCHEMISTRY, 2019, 84 : 230 - 231
  • [30] Comparative physiological, transcriptomic, and WGCNA analyses reveal the key genes and regulatory pathways associated with drought tolerance in Tartary buckwheat
    Meng, Heng-Ling
    Sun, Pei-Yuan
    Wang, Jia-Rui
    Sun, Xiao-Qian
    Zheng, Chuan-Zhi
    Fan, Ting
    Chen, Qing-Fu
    Li, Hong-You
    FRONTIERS IN PLANT SCIENCE, 2022, 13