数字农科院2.0

Effect Mechanism of Low-level PFOS Isomers to A. thaliana Leaves Using High-throughput Untargeted Metabolomics

文献类型: 外文期刊

作者: Wang, Hao;Zhang, Yue;Zhao, Liuqing;He, Zeying;Zhang, Jingran;Liu, Bingjie;Liu, Xiaowei;Zhang, Yanwei

作者机构:

关键词: L-Perfluorooctane sulfonate(L-PFOS);Perfluoro-3-methylheptanesulfonate(P3MHpS);Phytotoxicity;Metabolomics;Glucosinolate

期刊名称: CHEMICAL RESEARCH IN CHINESE UNIVERSITIES

ISSN: 1005-9040

年卷期: 2023 年

页码:

收录情况: SCIE(2023版) ; ; CSCD(2023-2024年度) ; ; 科技核心(2023版)

摘要: The ecotoxicity of perfluorooctane sulfonate(PFOS) to plants has been reported, but the lack of study on the effect of PFOS isomers is of concern. In this paper, the effect mechanism of Arabidopsis thaliana(A. thaliana) against two different concentrations of L-PFOS or perfluoro-3-methylheptanesulfonate (P3MHpS) was investigated via metabolomics. The metabolism of Arabidopsis thaliana leaves was investigated via the metabolomics strategy and statistical analysis. And 41 biomarkers for L-PFOS and 32 biomarkers for P3MHpS were found and identified. There was no significant difference of saccharides between L-PFOS and P3MHpS. More amino acids were affected by P3MHpS than by L-PFOS in high-level exposure group, while the opposite phenomenon was observed in low-level exposure group. More phytohormones were affected by L-PFOS than by P3MHpS in the high-level exposure group, however, the elevated level of indole phytohormones was significantly higher by P3MHpS than by L-PFOS. The level of up-regulation of (poly)phenols in L-PFOS group was significantly higher than that in P3MHpS group. The affected aliphatic glucosinolate metabolism was firstly observed with higher up-regulation induced by L-PFOS than by P3MHpS. New insight of phytotoxicity of PFOS isomers to plants was provided.

分类号:

  • 相关文献

[1]Metabolic disturbance in lettuce (Lactuca sativa) plants triggered by imidacloprid and fenvalerate. Yuxue Zhang,Lin Huang,Lijuan Liu,Xiaochuang Cao,Chengliang Sun,Xianyong Lin. 2022

[2]Foliar cadmium uptake, transfer, and redistribution in Chili: A comparison of foliar and root uptake, metabolomic, and contribution. Xiaoxue Ouyang,Jie Ma,Yong Liu,Pan Li,Rongfei Wei,Qiusheng Chen,Liping Weng,Yali Chen,Yongtao Li. 2023

[3]Persistence of algal toxicity induced by polystyrene nanoplastics at environmentally relevant concentrations. Mingqi Yao,Li Mu,Ziwei Gao,Xiangang Hu. 2023

[4]Aromatic Glucosinolate Biosynthesis Pathway in Barbarea vulgaris and its Response to Plutella xylostella Infestation. Liu, Tongjin,Zhang, Xiaohui,Yang, Haohui,Qiu, Yang,Wang, Haiping,Shen, Di,Song, Jiangping,Li, Xixiang,Agerbirk, Niels,Agerbirk, Niels. 2016

[5]Associative Transcriptomics Study Dissects the Genetic Architecture of Seed Glucosinolate Content in Brassica napus. Lu, Guangyuan,Harper, Andrea L.,Bancroft, Ian,Lu, Guangyuan,Trick, Martin,Morgan, Colin,Fraser, Fiona,O'Neill, Carmel.

[6]VARIATION OF SULFORAPHANE LEVELS IN BROCCOLI (BRASSICA OLERACEA VAR. ITALICA) DURING FLOWER DEVELOPMENT AND THE ROLE OF GENE AOP2. Li, Zhansheng,Liu, Yumei,Fang, Zhiyuan,Yang, Limei,Zhuang, Mu,Zhang, Yangyong,Sun, Peitian,Zhao, Wen.

[7]Comparative analysis of MYB28 homologs and development of a MYB28-specific marker in Brassica napus L.. Long, Yan,Zhang, Jinwen,Wang, Jiao,Pei, Xinwu,Long, Yan,Wang, Jing,Wang, Yanyan.

[8]De novo Transcriptome Analysis of Sinapis alba in Revealing the Glucosinolate and Phytochelatin Pathways. Zhang, Xiaohui,Liu, Tongjin,Duan, Mengmeng,Song, Jiangping,Li, Xixiang. 2016

[9]Glucosinolates or erucic acid, which one contributes more to volatile flavor of fragrant rapeseed oil?. Qiang Liang,Wei Xiong,Qi Zhou,Cheng Cui,Xia Xu,Ling Zhao,Pu Xuan,Yingzheng Yao. 2023

[10]Effects of nanocarbon solution treatment on the nutrients and glucosinolate metabolism in broccoli. Li Z.,Liu G.,He H.,Liu Y.,Han F.,Liu W.. 2022

[11]Physiological and transcriptome analyses of Chinese cabbage in response to drought stress. Lin Chen,Chao Li,Jiahao Zhang,Zongrui Li,Qi Zeng,Qingguo Sun,Xiaowu Wang,Limin Zhao,Lugang Zhang,Baohua Li. 2024

[12]Identification of volatile and flavor metabolites in three varieties of broccoli sprouts. Yu Xia,Ming Yue Li,Syed Abdul Wadood,Han Jun Hong,Yi Liu,Yu Xuan Luo,Yi Yan Wang,Hong Yan Liu,Ren You Gan. 2024

[13]Transcriptome reveals the role of ELONGATED HYPOCOTYL 5 in the regulation of glucosinolate metabolism in broccoli. Wenzheng Gao,Guangmin Liu,Shangxiang Lai,Hongju He,Yumei Liu,Fengqing Han,Yafei He,Zhansheng Li. 2025

[14]Progresses and Prospects on Glucosinolate Detection in Cruciferous Plants. Xuaner Li,Dongna Wen,Yafei He,Yumei Liu,Fengqing Han,Jialin Su,Shangxiang Lai,Mu Zhuang,Fuxing Gao,Zhansheng Li. 2024

[15]An alternative splicing caused by a natural variation in BnaC02.VTE4 gene affects vitamin E and glucosinolate content in rapeseed (Brassica napus L.). Wang, Furong,Kuang, Lieqiong,Xiao, Zelin,Tian, Ze,Wang, Xinfa,Wang, Hanzhong,Dun, Xiaoling. 2025

[16]Phytotoxicity mechanisms of two coumarin allelochemicals from Stellera chamaejasme in lettuce seedlings. Yan, Zhiqiang,Wang, Dandan,Jin, Hui,Li, Xiuzhuang,Yang, Xiaoyan,Guo, Hongru,He, Xiaofeng,Pan, Le,Ren, Xia,Guo, Kai,Qin, Bo,Cui, Haiyan,Zhang, Denghong,Sun, Yuhe.

[17]The importance of soil solution chemistry to nickel toxicity on barley root elongation. Zhang, Xiaoqing,Huang, Zhanbin,Wei, Dongpu,Li, Bo,Ma, Yibing. 2013

[18]Toxicity and bio-effects of CuO nanoparticles on transgenic Ipt-cotton. Nhan Le Van,Rui, Yukui,Shang, Jianying,Liu, Shutong,Liu, Liming,Nhan Le Van,Trung Nguyen Quang,Rui, Yukui,Cao, Weidong. 2016

[19]The Effects of Fe2O3 Nanoparticles on Physiology and Insecticide Activity in Non-Transgenic and Bt-Transgenic Cotton. Le Van Nhan,Rui, Yukui,Liu, Liming,Le Van Nhan,Ma, Chuanxin,Rui, Yukui,Deng, Yingqing,Xing, Baoshan,Cao, Weidong. 2016

[20]Refining a biotic ligand model for nickel toxicity to barley root elongation in solution culture. Li, Bo,Ma, Yibing,Zhang, Xuan,Wang, Xuedong,Zhang, Xuan,Wang, Xuedong.

作者其他论文 更多>>