数字农科院2.0

Uridine diphosphate glucosyltransferases are involved in spinosad resistance in western flower thrips Frankliniella occidentalis (Pergande)

文献类型: 外文期刊

作者: Wang J.;Wan Y.;Zhang Y.;Yuan J.;Zheng X.;Cao H.;Qian K.;Feng J.;Tang Y.;Chen S.;Zhang Y.;Zhou X.;Liang P.;Wu Q.

作者机构:

关键词: Dose-dependent;Gene duplication;Pesticide resistance;UGT detoxification system;Upregulated gene expression

期刊名称: Journal of Hazardous Materials

ISSN: 0304-3894

年卷期: 2024 年 466 卷

页码:

收录情况: SCIE(2024版) ; ; EI(2024版)

摘要: Uridine diphosphate glucosyltransferases (UGTs) play crucial roles in the insect detoxification system and are associated with pesticide resistance. Our previous transcriptomic analysis of spinosad-susceptible (Ivf03) and resistant (NIL-R) Frankliniella occidentalis revealed numerous upregulated UGT genes in the NIL-R strain, suggesting their potential contribution to spinosad resistance. To investigate this hypothesis, here we conducted UGT activity assays and spinosad induction experiments, employing RNA interference (RNAi) techniques for gene function validation. We found significantly elevated UGT activity in the NIL-R strain compared to Ivf03, with 5-nitrouracil showing a substantial synergistic effect on the resistant strain. Eighteen UGT genes were identified in F. occidentalis, with gene expansion and duplication observed within families UGT466, 467, and 468. Ten out of the eighteen UGTs exhibited higher expression levels in NIL-R, specifically FoUGT466B1, FoUGT468A3, and FoUGT468A4 consistently being upregulated across nymphs, males, and females. RNAi-based functional validation targeting these three UGT genes led to increased susceptibility to spinosad in a life stage-, sex-, and dose-dependent manner. These results indicate that UGTs are indeed involved in spinosad resistance in F. occidentalis, and the effects are dependent on life stage, sex, and dose. Therefore, sustainable control for F. occidentalis resistance should always consider these differential responses. © 2024 Elsevier B.V.

分类号:

  • 相关文献

[1]Changes of Sex Pheromone Communication Systems Associated with Tebufenozide and Abamectin Resistance in Diamondback Moth, Plutella xylostella (L.). Dong, Shuang-Lin,Cao, Guang-Chun.

[2]Incomplete reproductive barriers and genomic differentiation impact the spread of resistance mutations between green- and red-colour morphs of a cosmopolitan mite pest. Xue, Wen-Xin,Sun, Jing-Tao,Witters, Johan,Vandenhole, Marilou,Dermauw, Wannes,Bajda, Sabina A.,Simma, Eba A.,Wybouw, Nicky,Villacis-Perez, Ernesto,Van Leeuwen, Thomas. 2023

[3]Editorial: Physiological events associated with pesticide-resistance. Xun Zhu,Feng Liu,Zhiguang Yuchi,Xin Yang,Muhammad Shakeel. 2023

[4]Global genomic signature reveals the evolution of fall armyworm in the Eastern hemisphere. Zhang, Lei,Li, Zaiyuan,Peng, Yan,Liang, Xinyue,Wilson, Kenneth,Chipabika, Gilson,Karangwa, Patrick,Uzayisenga, Bellancile,Mensah, Benjamin A.,Kachigamba, Donald L.,Xiao, Yutao. 2023

[5]The CYP392D8 gene is not directly associated with abamectin resistance, a case study in two highly resistant Tetranychus urticae strains. Xu, Dandan,Liao, Haojie,Li, Lingyun,Wu, Mingmei,Xie, Wen,Wu, Qingjun,Zhang, Youjun,Zhou, Xiaomao,Wang, Shaoli. 2022

[6]Biology of fall armyworm – an introduction. Elvira S. de Lange,Yutao Xiao,Leo W. Beukeboom. 2023

[7]Genome-wide analyses of glutathione S-transferase gene family and expression profiling among three haplotypes Aphis gossypii. Yaling Zhang,Muhammad Farhan,Hanjing Yang,Jun Zhao,Xiaoyan Ma,Shuai Zhang. 2025

[8]Potential pesticide substrates of an insect ABCC transporter. Chen, Jinli,Wang, Dong,Liu, Wei,Zhou, Yuanyuan,Yang, Qing. 2025

[9]Potential role of the TuCCE50 gene in abamectin resistance in field populations of Tetranychus urticae Koch. Tian, Tian,Wang, Ke,Zhang, Yan,Guo, Zhaojiang,Zhang, Youjun,Wang, Shaoli. 2025

[10]The pattern of Phosphate transporter 1 genes evolutionary divergence in Glycine max L.. Fan, Chengming,Wang, Xu,Xiao, Chaowen,Jiang, Ying,Zhang, Xiaomei,Fu, Yong-Fu,Hu, Ruibo,Wang, Yahui,Zheng, Changying. 2013

[11]Molecular evolution of the rice miR395 gene family. Guddeti, S,Zhang, DC,Li, AL,Leseberg, CH,Kang, H,Li, XG,Zhai, WX,Johns, MA,Mao, L.

[12]The expression and phylogenetic analysis of four AP3-like paralogs in the stamens, carpels, and single-whorl perianth of the paleoherb Asarum caudigerum. Zhao, Yin-He,Peng, Seng,Li, Cheng-Yun,Zhao, Yin-He,Peng, Seng,Li, Cheng-Yun,Larson-Rabin, Zachary,Li, De-Zhu,Wang, Guo-Ying.

[13]Rapid evolution and complex structural organization in genomic regions harboring multiple prolamin genes in the polyploid wheat genome. Gao, Shuangcheng,Gu, Yong Qiang,Wu, Jiajie,Coleman-Derr, Devin,Huo, Naxin,Crossman, Curt,Jia, Jizeng,Zuo, Qi,Ren, Zhenglong,Anderson, Olin D.,Kong, Xiuying.

[14]Molecular evolution of two duplicated CDPK genes CPK7 and CPK12 in grass species: A case study in wheat (Tridcum aestivum L.). Geng, Shuaifeng,Tang, Lichuan,Zhang, Rongzhi,Sun, Minghui,Guo, Hanzi,Kong, Xiuying,Li, Aili,Mao, Long,Geng, Shuaifeng,Tang, Lichuan,Zhang, Rongzhi,Sun, Minghui,Guo, Hanzi,Kong, Xiuying,Li, Aili,Mao, Long,Geng, Shuaifeng,Zhao, Yongliang,Tang, Lichuan. 2011

[15]Functional opsin retrogene in nocturnal moth. Xiao, Haijun,Wu, Kongming,Xu, Pengjun,Feuda, Roberto,Lu, Bin,Graham, Robert I.. 2016

[16]Duplication of acetylcholinesterase gene in diamondback moth strains with different sensitivities to acephate. Shi, Xueyan,Song, Dunlun,Liang, Pei,Gao, Xiwu,Zhang, Youjun,Li, Jianhong,Liu, Yong,Li, Ming,Matsumura, Masaya,Sanada-Morimura, Sachiyo,Minakuchi, Chieka,Tanaka, Toshiharu,Miyata, Tadashi. 2014

[17]Gene Duplication Analysis Reveals No A.ncient Whole Genome Duplication B ut Extensive Small-Scale Duplications During Genome Evolution And Adaptation Of Schistosoma Mansoni. Wang, S,Zhu, XQ,Cai, XP. 2017

[18]A recent burst of gene duplications in Triticeae. Xiaoliang Wang,Xueqing Yan,Yiheng Hu,Liuyu Qin,Daowen Wang,Jizeng Jia,Yuannian Jiao. 2022

[19]Exploring the SiCCT Gene Family and Its Role in Heading Date in Foxtail Millet. Li, Congcong,Ma, Jian,Wang, Genping,Li, Haiquan,Wang, Hailong,Wang, Guoliang,Jiang, Yanmiao,Liu, Yanan,Liu, Guiming,Liu, Guoqing,Cheng, Ruhong,Wang, Huan,Wei, Jianhua,Yao, Lei. 2022

[20]6mA DNA Methylation on Genes in Plants Is Associated with Gene Complexity, Expression and Duplication. Yue Zhang,Qian Zhang,Xingyu Yang,Xiaofeng Gu,Jinming Chen,Tao Shi. 2023

作者其他论文 更多>>