Metabolic effects of glyphosate on transgenic maize expressing a G2-EPSPS gene from Pseudomonas fluorescens
详细信息    查看全文
  • 作者:Yunjun Liu (1)
    Yuwen Zhang (1) (2)
    Yan Liu (1)
    Wei Lu (3)
    Guoying Wang (1)

    1. Institute of Crop Sciences
    ; Chinese Academy of Agricultural Sciences ; Zhongguancun South Street 12 ; Beijing ; 100081 ; China
    2. College of Agriculture and Biotechnology
    ; China Agricultural University ; Yuanmingyuan West Road 2 ; Beijing ; 100094 ; China
    3. Biotechnology Research Institute
    ; Chinese Academy of Agricultural Sciences ; Zhongguancun South Street 12 ; Beijing ; 100081 ; China
  • 关键词:Maize ; EPSPS ; Glyphosate ; tolerance ; Metabolite
  • 刊名:Journal of Plant Biochemistry and Biotechnology
  • 出版年:2015
  • 出版时间:April 2015
  • 年:2015
  • 卷:24
  • 期:2
  • 页码:233-241
  • 全文大小:1,838 KB
  • 参考文献:1. Barros, E, Lezar, S, Anttonen, MJ, Dijk, JP, Rohlig, RM, Kok, EJ, Engel, KH (2010) Comparison of two GM maize varieties with a near-isogenic non-GM variety using transcriptomics, proteomics and metabolomics. Plant Biotechnol J 8: pp. 436-451 CrossRef
    2. Bellaloui, N, Zablotowicz, RM, Reddy, KN, Abel, CA (2008) Nitrogen metabolism and seed composition as influenced by glyphosate application in glyphosate-resistant soybean. J Agric Food Chem 56: pp. 2765-2772 CrossRef
    3. Bellaloui, N, Reddy, KN, Zablotowicz, RM, Abbas, HK, Abel, CA (2009) Effects of glyphosate application on seed iron and root ferric (III) reductase in soybean cultivars. J Agric Food Chem 57: pp. 9569-9574 CrossRef
    4. Dun, BQ, Wang, XJ, Lu, W, Zhao, ZL, Hou, SN, Zhang, BM, Li, GY, Evans, TC, Xu, MQ, Lin, M (2007) Reconstitution of glyphosate resistance from a split 5-enolpyruvyl shikimate-3-phosphate synthase gene in Escherichia coli and transgenic tobacco. Appl Environ Microbiol 73: pp. 7997-8000 CrossRef
    5. Funke, T, Han, H, Healy-Fried, ML, Fischer, M, Schonbrunn, E (2006) Molecular basis for the herbicide resistance of Roundup Ready crops. Proc Natl Acad Sci U S A 103: pp. 13010-13015 CrossRef
    6. Funke, T, Yang, Y, Han, H, Healy-Fried, M, Olesen, S, Becker, A, Schonbrunn, E (2009) Structural basis of glyphosate resistance resulting from the double mutation Thr97 -鈥?鈥塈le and Pro101 -鈥?鈥塖er in 5-enolpyruvylshikimate-3-phosphate synthase from Escherichia coli. J Biol Chem 284: pp. 9854-9860 CrossRef
    7. Garcia-Villalba, R, Leon, C, Dinelli, G, Segura-Carretero, A, Fernandez-Gutierrez, A, Garcia-Canas, V, Cifuentes, A (2008) Comparative metabolomic study of transgenic versus conventional soybean using capillary electrophoresis-time-of-flight mass spectrometry. J Chromatogr A 1195: pp. 164-173 CrossRef
    8. Hernandez, A, Garcia-Plazaola, JI, Becerril, JM (1999) Glyphosate effects on phenolic metabolism of nodulated soybean (Glycine max L. merr.). J Agric Food Chem 47: pp. 2920-2925 CrossRef
    9. Howe, A, Gasser, C, Brown, S, Padgette, S, Hart, J, Parker, G, Fromm, M, Armstrong, C (2002) Glyphosate as a selective agent for the production of fertile transgenic maize (zea mays) plants. Mol Breeding 10: pp. 153-164 CrossRef
    10. Huang, HY, Pan, TM (2004) Detection of genetically modified maize MON810 and NK603 by multiplex and real-time polymerase chain reaction methods. J Agric Food Chem 52: pp. 3264-3268 CrossRef
    11. James, C (2010) Global status of commercialized biotech/GM crops: ISAAA Brief. ISAAA, Ithaca
    12. Liu, YG, Chen, Y (2007) High-efficiency thermal asymmetric interlaced PCR for amplification of unknown flanking sequences. Biotechniques 43: pp. 649-650 CrossRef
    13. Padgette, S, Kolacz, K, Delannay, X, Re, D, Lavallee, B, Tinius, C, Rhodes, W, Otero, Y, Barry, G, Eichholtz, D, Peschke, V, Nida, D, Taylor, N, Kishore, G (1995) Development, identification, and characterization of a glyphosate-tolerant soybeans line. Crop Sci 35: pp. 1451-1461 CrossRef
    14. Reddy, KN, Bellaloui, N, Zablotowicz, RM (2010) Glyphosate effect on shikimate, nitrate reductase activity, yield, and seed composition in corn. J Agric Food Chem 58: pp. 3646-3650 CrossRef
    15. Roessner, U, Wagner, C, Kopka, J, Trethewey, RN, Willmitzer, L (2000) Technical advance: simultaneous analysis of metabolites in potato tuber by gas chromatography鈥搈ass spectrometry. Plant J 23: pp. 131-142 CrossRef
    16. Schonbrunn, E, Eschenburg, S, Shuttleworth, WA, Schloss, JV, Amrhein, N, Evans, JN, Kabsch, W (2001) Interaction of the herbicide glyphosate with its target enzyme 5-enolpyruvylshikimate 3-phosphate synthase in atomic detail. Proc Natl Acad Sci U S A 98: pp. 1376-1380 CrossRef
    17. Steinrucken, HC, Amrhein, N (1980) The herbicide glyphosate is a potent inhibitor of 5-enolpyruvyl-shikimic acid-3-phosphate synthase. Biochem Biophys Res Commun 94: pp. 1207-1212 CrossRef
    18. Ulanov, A, Lygin, A, Duncan, D, Widholm, J, Lozovaya, V (2009) Metabolic effects of glyphosate change the capacity of maize culture to regenerate plants. J Plant Physiol 166: pp. 978-987 CrossRef
    19. Unver, T, Bakar, M, Shearman, RC, Budak, H (2010) Genome-wide profiling and analysis of Festuca arundinacea miRNAs and transcriptomes in response to foliar glyphosate application. Mol Genet Genomics 283: pp. 397-413 CrossRef
    20. Yang, L, Guo, J, Pan, A, Zhang, H, Zhang, K, Wang, Z, Zhang, D (2007) Event-specific quantitative detection of nine genetically modified maizes using one novel standard reference molecule. J Agric Food Chem 55: pp. 15-24 CrossRef
    21. Zhou, M, Xu, H, Wei, X, Ye, Z, Wei, L, Gong, W, Wang, Y, Zhu, Z (2006) Identification of a glyphosate-resistant mutant of rice 5-enolpyruvylshikimate 3-phosphate synthase using a directed evolution strategy. Plant Physiol 140: pp. 184-195 CrossRef
    22. Zhu, J, Patzoldt, WL, Shealy, RT, Vodkin, LO, Clough, SJ, Tranel, PJ (2008) Transcriptome response to glyphosate in sensitive and resistant soybean. J Agric Food Chem 56: pp. 6355-6363 CrossRef
  • 刊物主题:Life Sciences, general; Plant Biochemistry; Protein Science; Receptors; Cell Biology;
  • 出版者:Springer India
  • ISSN:0974-1275
文摘
Transgenic glyphosate-tolerant maize expressing 5-enolpyruvylshikimate-3-phosphate synthase (EPSPS) gene has been commercialized since 1996. However, it is not very clear how glyphosate treatment affects metabolite pathway in transgenic glyphosate-tolerant maize. Here, we obtained numerous of glyphosate-tolerant transgenic maize expressing a Pseudomonas fluorescens G2-EPSPS gene. The expression and integration site of G2-EPSPS in transgenic maize event Aro203, which can tolerate 3 folds of field usage of glyphosate, were investigated. Metabolite analysis was performed with Aro203 leaf samples using GC/MS method. The results showed that total 58 metabolites were identified. Over-expression of G2-EPSPS led to the increase of glutamate, malate, hydroxylamine and trehalose contents, but the decrease of glyoxylate, ribose and sucrose, compared to wild type plants. Twenty-two and 13 metabolites were up-regulated and down-regulated in non-transgenic maize by glyphosate treatments, respectively, whereas fewer metabolites (10 up-regulated and 4 down-regulated) were affected in transgenic maize. Glyphosate treatment significantly stimulated the accumulation of most amino acids but decreased lots of sugars in non-transgenic plants. The PCA analysis results showed that wild type plant cluster treated with glyphosate was clearly separated with other three clusters. The results in this study provide evidence to understand how genetic modification or glyphosate treatment affects the metabolite pathway in maize.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700