NRT/PTR transporters are essential for translocation of glucosinolate defence compounds to seeds (original) (raw)

References

  1. Feeny, P. in Biochemical Interaction Between Plants and Insects (eds Wallace, J. W. & Mansel, R. L. ) 1–40 (Plenum, 1976)
    Book Google Scholar
  2. Halkier, B. A. & Gershenzon, J. Biology and biochemistry of glucosinolates. Annu. Rev. Plant Biol. 57, 303–333 (2006)
    Article CAS Google Scholar
  3. Nour-Eldin, H. & Halkier, B. Piecing together the transport pathway of aliphatic glucosinolates. Phyochemistry Rev. 8, 53–67 (2009)
    Article CAS Google Scholar
  4. McKey, D. Adaptive patterns in alkaloid physiology. Am. Nat. 108, 305–320 (1974)
    Article ADS Google Scholar
  5. Züst, T., Joseph, B., Shimizu, K. K., Kliebenstein, D. J. & Turnbull, L. A. Using knockout mutants to reveal the growth costs of defensive traits. Proc. Biol. Sci. 278, 2598–2603 (2011)
    Article Google Scholar
  6. Ohnmeiss, T. E. & Baldwin, I. T. Optimal defense theory predicts the ontogeny of an induced nicotine defense. Ecology 81, 1765–1783 (2000)
    Article Google Scholar
  7. Wink, M. Wounding-induced increase of quinolizidine alkaloid accumulation in lupin leaves. Z. Naturforschung 38, 905–909 (1983)
    Article Google Scholar
  8. Brown, P. D., Tokuhisa, J. G., Reichelt, M. & Gershenzon, J. Variation of glucosinolate accumulation among different organs and developmental stages of Arabidopsis thaliana. Phytochemistry 62, 471–481 (2003)
    Article CAS Google Scholar
  9. Townsend, B. J. & Llewellyn, D. J. Reduced terpene levels in cottonseed add food to fiber. Trends Biotechnol. 25, 239–241 (2007)
    Article CAS Google Scholar
  10. Mailer, R., McFadden, A., Ayton, J. & Redden, B. Anti-nutritional components, fibre, sinapine and glucosinolate content, in Australian canola (Brassica napus L.) meal. J. Am. Oil Chem. Soc. 85, 937–944 (2008)
    Article CAS Google Scholar
  11. Wu, S. & Chappell, J. Metabolic engineering of natural products in plants; tools of the trade and challenges for the future. Curr. Opin. Biotechnol. 19, 145–152 (2008)
    Article CAS Google Scholar
  12. Enneking, D. & Wink, M. in Proceedings of the Third International Food Legumes Research Conference, Linking Research and Marketing Opportunities for Pulses in the 21st Century (ed. Knight, R. ) 671–683 (Kluwer, 2000)
    Google Scholar
  13. Chen, S., Petersen, B. L., Olsen, C. E., Schulz, A. & Halkier, B. A. Long-distance phloem transport of glucosinolates in Arabidopsis. Plant Physiol. 127, 194–201 (2001)
    Article CAS Google Scholar
  14. Ellerbrock, B. L., Kim, J. H. & Jander, G. Contribution of glucosinolate transport to Arabidopsis defense responses. Plant Signal. Behav. 2, 282–283 (2007)
    Article Google Scholar
  15. Nour-Eldin, H. H., Norholm, M. H. & Halkier, B. A. Screening for plant transporter function by expressing a normalized Arabidopsis full-length cDNA library in Xenopus oocytes. Plant Methods 2, 17–25 (2006)
    Article Google Scholar
  16. Wang, Y. Y. & Tsay, Y. F. Arabidopsis nitrate transporter NRT1.9 is important in phloem nitrate transport. Plant Cell 23, 1945–1957 (2011)
    Article CAS Google Scholar
  17. Fan, S. C., Lin, C. S., Hsu, P. K., Lin, S. H. & Tsay, Y. F. The Arabidopsis nitrate transporter NRT1.7, expressed in phloem, is responsible for source-to-sink remobilization of nitrate. Plant Cell 21, 2750–2761 (2009)
    Article CAS Google Scholar
  18. Bednarek, P. et al. A glucosinolate metabolism pathway in living plant cells mediates broad-spectrum antifungal defense. Science 323, 101–106 (2009)
    Article ADS CAS Google Scholar
  19. Koroleva, O. A. et al. Identification of a new glucosinolate-rich cell type in Arabidopsis flower stalk. Plant Physiol. 124, 599–608 (2000)
    Article CAS Google Scholar
  20. Balbi, V. & Devoto, A. Jasmonate signalling network in Arabidopsis thaliana: crucial regulatory nodes and new physiological scenarios. New Phytol. 177, 301–318 (2008)
    Article CAS Google Scholar
  21. Foster, R., Williamson, C. S. & Lunn, J. Culinary oils and their health effects. Nutrition Bulletin 34, 4–47 (2009)
    Article Google Scholar
  22. Snowdon, R., Luhs, W. & Friedt, W. in Genome Mapping and Molecular Breeding in Plants (ed. Kole, C. ) 55–114 (Springer, 2007)
    Google Scholar
  23. Wittkop, B., Snowdon, R. & Friedt, W. Status and perspectives of breeding for enhanced yield and quality of oilseed crops for Europe. Euphytica 170, 131–140 (2009)
    Article Google Scholar
  24. Clarke, D. B. Glucosinolates, structures and analysis in food. Anal. Methods 2, 310–325 (2010)
    Article CAS Google Scholar
  25. Zhang, J. et al. Metabolite profiling of Arabidopsis seedlings in response to exogenous sinalbin and sulfur deficiency. Phytochemistry 72, 1767–1778 (2011)
    Article CAS Google Scholar
  26. Gottwald, J. R., Krysan, P. J., Young, J. C., Evert, R. F. & Sussman, M. R. Genetic evidence for the in planta role of phloem-specific plasma membrane sucrose transporters. Proc. Natl Acad. Sci. USA 97, 13979–13984 (2000)
    Article ADS CAS Google Scholar
  27. Vert, G. et al. IRT1, an Arabidopsis transporter essential for iron uptake from the soil and for plant growth. Plant Cell 14, 1223–1233 (2002)
    Article CAS Google Scholar
  28. Nour-Eldin, H. H., Hansen, B. G., Norholm, M. H. H., Jensen, J. K. & Halkier, B. A. Advancing uracil-excision based cloning towards an ideal technique for cloning PCR fragments. Nucleic Acids Res. 34, e122 (2006)
    Article Google Scholar
  29. Geu-Flores, F., Nour-Eldin, H. H., Nielsen, M. T. & Halkier, B. A. USER fusion: a rapid and efficient method for simultaneous fusion and cloning of multiple PCR products. Nucleic Acids Res. 35, e55 (2007)
    Article Google Scholar
  30. Nørholm, M. A mutant Pfu DNA polymerase designed for advanced uracil-excision DNA engineering. BMC Biotechnol. 10, 21–27 (2010)
    Article Google Scholar

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