数字农科院2.0

Plant secretions and volatiles contribute to the evolution of bacterial antibiotic resistance in soil-crop system

文献类型: 外文期刊

作者: Li, Houyu;Yang, Qifan;Liu, Wei;Li, Ruolan;Zhang, Dandan;Zhang, Guilong;Xu, Yan

作者机构:

关键词: Antibiotic resistance;Plant;Secretions;Volatiles organic compounds

期刊名称: JOURNAL OF ENVIRONMENTAL SCIENCES

ISSN: 1001-0742

年卷期: 2025 年 152 卷

页码:

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

摘要: The exponential growth of antibiotic-resistant bacteria and antibiotic-resistant genes (ARGs) in soil-crop systems in recent years has posed a great challenge to ecological security and human health. While many studies have documented the residues of ARGs in soils and crops, but little is known about who drives the proliferation of ARGs in farming systems and what their underlying mechanisms are. Herein, we explored the occurrence and proliferating behavior of ARGs in soil-crop environments in terms of root secretions and plant volatiles. This review highlighted that plant root secretions and volatile organic compounds (VOCs) served as key substances mediating the development of antibiotic resistance in the soil-crop system. Still, there is controversy here as to plant root secretions promote the ARGs proliferation or inhibit. Some studies indicated that root secretions can suppress the colonization of ARGs, mainly attributed by the production of blunted metabolic enzymes and blocking of cellular exocytosis systems. Whereas the others have evidenced that root secretions can promote ARGs proliferation, primarily by altering the structure of microbial communities to influence species interactions and thus indirectly affect the proliferation of ARGs. Also, VOCs can act as molecular signals to convey antibiotic resistance information to their neighbors, which in turn drive the up-regulation of ARGs expression. Even so, the mechanism by which VOC-driven antibiotic resistance acquisition and proliferation need to be further probed. Overall, this review contributed to the development of products and technologies to impede the ARGs proliferation in agricultural environment. (c) 2024 The Research Center for Eco-Environmental Sciences, Chinese Academy of Sciences. Published by Elsevier B.V.

分类号:

  • 相关文献

[1]Peptide hormones in plants. Zhang, Zhenbiao,Han, Huibin,Zhao, Junxiang,Liu, Zhiwen,Deng, Lei,Wu, Liuji,Niu, Junpeng,Guo, Yongfeng,Wang, Guodong,Gou, Xiaoping,Li, Chao,Li, Chuanyou,Liu, Chun-Ming. 2025

[2]A novel simple extracellular leucine-rich repeat (eLRR) domain protein from rice (OsLRR1) enters the endosomal pathway and interacts with the hypersensitive-induced reaction protein 1 (OsHIR1). Zhou, Liang,Cheung, Ming-Yan,Zhang, Shi-Hong,Sun, Samuel Sai-Ming,Lam, Hon-Ming,Zhou, Liang,Cheung, Ming-Yan,Zhang, Shi-Hong,Sun, Samuel Sai-Ming,Lam, Hon-Ming,Zhang, Qi,Lei, Cai-Lin,Zhang, Shi-Hong.

[3]Advances and Developing Tendency of Water Use Efficiency in Plant Biology. Chen Zhao-bo,Chen Zhao-bo,Tang Jiao-wen,Zhang Fu. 2009

[4]Extended biotic ligand model for predicting combined Cu-Zn toxicity to wheat (Triticum aestivum L.): Incorporating the effects of concentration ratio, major cations and pH. Wang, Xuedong,Ji, Dongxue,Chen, Xiaolin,Li, Xiaoxiu,Ma, Yibing,Ma, Yibing,Yang, Junxing.

[5]Comparative life history characteristics of the mite predator Neoseiulus cucumeris (Oudemans) (Acari: Phytoseiidae) on mite and pollen diets. Sarwar, Muhammad.

[6]Plant biotechnology in China. Huang, JK,Rozelle, S,Pray, C,Wang, QF.

[7]Genetic dissection of silicon uptake ability in rice (Oryza sativa L.). Wu, Q. -S.,Wan, X. -Y.,Su, N.,Cheng, Z. -J.,Wang, J. -K.,Lei, C. -L.,Zhang, X.,Jiang, L.,Ma, J. -F.,Wan, J. -M..

[8]Mutation of the rice narrow leaf1 gene, which encodes a novel protein, affects vein patterning and polar auxin transport. Qi, Jing,Bu, Qingyun,Li, Shuyu,Chen, Qian,Sun, Jiaqiang,Liang, Wenxing,Zhou, Yihua,Chu, Chengcai,Chen, Jinfeng,Chen, Mingsheng,Li, Chuanyou,Qian, Qian,Qi, Jing,Li, Shuyu,Chen, Qian,Liang, Wenxing,Li, Xugang,Ren, Fugang,Palme, Klaus,Li, Xugang,Ren, Fugang,Palme, Klaus,Zhao, Bingran.

[9]Isolation and identification of a gene in response to rice blast disease in rice. Zheng, XW,Chen, XW,Zhang, XH,Lin, ZZ,Shang, JJ,Xu, JC,Zhai, WX,Zhu, LH.

[10]Composition of the volatiles from intact and mechanically pierced tea aphid-tea shoot complexes and their attraction to natural enemies of the tea aphid. Han, BY,Chen, ZM.

[11]Typical Azole Biocides in Biosolid-Amended Soils and Plants Following Biosolid Applications. Chen, Zhi-Feng,Ying, Guang-Guo,Lai, Hua-Jie,Chen, Feng,Pan, Chang-Gui,Ma, Yi-Bing.

[12]Isolation and characterization of a cDNA encoding a papain-like cysteine protease from alfalfa. Yan, Longfeng,Han, Jianguo,Sun, Yan,Yan, Longfeng,Yang, Qingchuan,Kang, Junmei,Liu, Zhipeng,Wu, Mingsheng.

[13]Cytoskeletal inhibitors suppress the stomatal opening of Vicia faba L. induced by fusicoccin and IAA. Huang, RF,Wang, XC,Lou, CH.

[14]Comparison of whole system of carbon and nitrogen accumulation between two maize hybrids differing in leaf senescence. He, P,Osaki, M,Takebe, M,Shinano, T.

[15]DTH8 suppresses flowering in rice, influencing plant height and yield potential simultaneously. Wei, Xiangjin,Xu, Junfeng,Guo, Hongnian,Jiang, Ling,Chen, Saihua,Yu, Chuanyuan,Zhou, Zhenling,Wan, Jianmin,Wei, Xiangjin,Hu, Peisong,Zhai, Huqu,Wan, Jianmin.

[16]RNAi-mediated plant protection against aphids. Yu, Xiu-Dao,Sun, Yong-Wei,Ma, You-Zhi,Xia, Lan-Qin,Yu, Xiu-Dao,Liu, Zong-Cai,Huang, Si-Liang,Chen, Zhi-Qin,Duan, Peng-Fei.

[17]Arsenic transformation and volatilization during incineration of the hyperaccumulator Pteris vittata L.. Yan, Xiu-Lan,Chen, Tong-Bin,Liao, Xiao-Yong,Huang, Ze-Chun,Nie, Can-Jun,Xie, Hua,Pan, Jia-Rong,Hu, Tian-Dou.

[18]Population-specific quantitative trait loci mapping for functional stay-green trait in rice (Oryza sativa L.). Fu, Jin-Dong,Yan, Yong-Feng,Kim, Moon Young,Lee, Suk-Ha,Lee, Byun-Woo,Fu, Jin-Dong,Kim, Moon Young,Lee, Suk-Ha,Lee, Suk-Ha.

[19]A C-Terminal Proline-Rich Sequence Simultaneously Broadens the Optimal Temperature and pH Ranges and Improves the Catalytic Efficiency of Glycosyl Hydrolase Family 10 Ruminal Xylanases. Li, Zhongyuan,Xue, Xianli,Zhao, Heng,Yang, Peilong,Luo, Huiying,Huang, Huoqing,Yao, Bin,Li, Zhongyuan,Zhao, Junqi.

[20]Determination of Polychlorinated Biphenyl Enantiomers in Lotus Root and Sediment by Chiral Gas Chromatography-Mass Spectrometry. Dai Shou-Hui,Zhao Hua-Lin,Wang Min,Chai Ting-Ting,Yang Shu-Ming,Qiu Jing,Dai Shou-Hui,Zhao Hua-Lin,Wang Min,Chai Ting-Ting,Yang Shu-Ming,Qiu Jing,Wong, Charles S.. 2012

作者其他论文 更多>>