PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
2002 | 07 | 3 |

Tytuł artykułu

Alternative methods of plant transformation - a short review

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
Several methods of transformation are currently available for delivering exogenous DNA to plant cells. Agrobacterium-mediated transformation, microprojectile bombardment and direct protoplast transformation are routinely used today. However, each of them has certain disadvantages, which led to research into the development of novel alternative systems such as infiltration, electroporation of cells and tissues, electrophoresis of embryos, microinjection, pollen-tube pathway, silicon carbide- and liposome-mediated transformation. The low efficiency of transformation is considered to be the main reason for the limited popularity of the alternative transformation methods, other than infiltration and silicon carbide-mediated transformation, which seem to be the most promising ones for practice.

Wydawca

-

Rocznik

Tom

07

Numer

3

Opis fizyczny

p.849-858

Twórcy

  • Agricultural University, Nowoursynowska 166, 02-787 Warsaw, Poland

Bibliografia

  • 1. Abdul-Baki, A. A., Saunders, J. A., Matthews, B. F. and Pitta relli, G. W. DNA uptake during electroporation of germinating pollen grains. Plant Sci. 70 (1990) 181-190.
  • 2. Ahokas, H. Transfection of germinating barley seed electrophoretically with exogenous DNA. Theor. Appl. Genet. 77 (1989) 469-472.
  • 3. Bechtold, N., Ellis, J. and Pelletier, G. In planta Agrobacterium-mediated gene transfer by infiltration of adult Arabidopsis thaliana plants. C. R. Acad. Sci. Paris, Life Sci. 316 (1993) 1194-1199.
  • 4. Brisibe, E. A, Gajdosava, A., Olsen, A. and Andersen, S. B. Cyto- differentiation and transformation of embryogenic callus lines derived from anther culture of wheat. J. Exp. Bot. 5l (2000) 187-196.
  • 5. Bullock, W., Dias, D., Bagnal, S., Cook, K., Teronde, S., Ritland, J., Spielbauer, D., Abbaraju, R., Christensen, J. and Heideman, N. A high effuciency maize "whisker" transformation system. Plant and Animal Genomes IX Conference, San Diego, CA, Jan 13-17, 2001. Abstr. 148.
  • 6. Chen, W. S., Chiu, C. C., Liu, H. Y., Lee, T. L., Cheng, J. T., Lin, C. C., Wu, Y. Y. and Chang, H. Y. Gene transfer via pollen-tybe pathway for anti-fusarium wilt in watermelon. Bioch. Mol. Biol. Intern. 46 (1998) 1201-1209.
  • 7. Chung, M. H., Chen, M. K. and Pan, S. M. Floral spray transformation can efficiently generate Arabidopsis transgenic plants. Transgen. Res. 9 (2000) 471-476.
  • 8. Clough, S. J. and Bent, A. F. Floral dip: a simplified method for Agrobacterium-mediated transformation of Arabidopsis thaliana. Plant J. 16 (1998) 735-743.
  • 9. Crossway, A., Oakes, J. W., Irvine, J. M., Ward, B., Knauf, V. C. and Shewmaker, C. K. Integration of foreign DNA following microinjection of tobacco mesophyll protoplasts. Mol. Gen. Genet. 202 (1986) 179-185.
  • 10. Dalton, S. J., Bettany, A. J. E., Timms, E. and Morris, P. Transgenic plants of Lolium multiflorum, Lolium perenne, Festuca arundinacea, and Agrostis stolonifera by silico carbide fibre-mediated transformation of cell suspensions. Plant Sci. 132 (1997) 31-43.
  • 11. D'Halluin, K., Bonne, E., Bossut, M., De Beuckeleer, M. and Leemans, J. Transgenic maize plants by tissue electroporation. The Plant Cell 4 (1992) 1495-1505.
  • 12. De la Pena, A., Lörz, H. and Schell, J. Transgenic rye plants obtained by injecting DNA into young floral tillers. Nature 235 (1987) 274-276.
  • 13. Dekeyser, R. A., Claes, B., De Rycke, R. M. U., Habets, M. E., Van Montagu, M. C. and Caplan, A. B. Transient gene expression in intact and organized rice tissues. The Plant Cell 2 (1990) 591-601.
  • 14. Deshayes, A., Herrera-Estrella, L. and Caboche, M. Liposome-mediated transformation of tobacco mesophyll protoplasts by an Escherichia coli plasmids. EMBO J. 4 (1985) 2731-2737.
  • 15. Frame, B. R., Drayton, P. R., Bagnall, S. V., Lewnau, C. J., Bullock, W. P., Wilson, H. M., Dunwell, J. M., Thompson, J. A. and Wang, K. Production of fertile transgenic maize plants by silicon carbide whisker-mediated transformation. Plant J. 6 (1994) 941-948.
  • 16. Griesbach, R. J. Chromosome-mediated transformation via microinjection. Plant Sci. 50 (1987) 69-77.
  • 17. Griesbach, R. J. and Hammond, J. An improved method for transforming plants through electrophoresis. Plant Sci. 102 (1994) 81-89.
  • 18. Holm, P. B., Olsen, O., Schnorf, M., Brinch-Pederse, H. and Knudsen, S. Transformation of barley by microinjection into isolated zygote protoplasts. Transgen. Res. 9 (2000) 21-32.
  • 19. Hu, C. Y. and Wang, L. In planta soybean transformation technologies developed in China: procedure, confirmation and field performance. In Vitro Cell. Dev. Biol.-Plant 35 (1999) 417-420.
  • 20. Jones-Villeneuve, E., Huang, B., Prudhome, I., , Bird, S., Kemble, R., Hattori, J. and Miki, B. Assessment of microinjection for introducing DNA into uninuclear microspores of rapeseed. Plant Cell Tissue Org. Cult. 40 (1995) 97-100.
  • 21. Kaeppler, H., Gu, W., Somers, D. A., Rines, H. W. and Cockburn, A. F. Silicon carbide fiber-mediated DNA delivery into plany cells. Plant Cell Rep. 9 (1990) 415-418.
  • 22. Kaeppler, H., Somers, D. A., Rines, H. W. and Cockburn, A. F. Silicon carbide fiber-mediated stable transformation of plant cells. Theor. Appl. Genet. 84 (1992) 560-566.
  • 23. Klein, T. M., Kornstein, L. and Sanford, J. C. Genetic transformation of maize cells by particle bombardment. Plant Physiol. 91 (1989) 440-444.
  • 24. Knoblauch, M., Hibberd, J. M., Gray, J. C. and van Bel, A. J. E. A galinstan expansion femtisyringe allows microijection of prokaryotes and eukaryotic organelles. Nature Biotech. 17 (1999) 906-909.
  • 25. Lörz, H., Paszkowski, J., Dierks-Ventling, C. and Potrykus, I. Isolation and characterization of cytoplasts and miniprotoplasts derived from protoplasts of cultured cells. Physiol. Plant 53 (1981) 385-391.
  • 26. Laursen, C. M., Krzyzek, R. A., Flick, C. E. and Anderson, P. C. Production of fertile transgenic maize by electroporation of suspension culture cells. Plant Mol. Biol. 24 (1994) 51-61.
  • 27. Liu, F., Cao, M. Q. and Li, Y. In planta transformation of pakchoi (Brassica campestris L. ssp. chinensis) by infiltration of adult plants with Agrobacterium. Acta Hort. 467 (1998) 187-192.
  • 28. Luo, Z. X. and Wa, R. A simple method for the transformation of rice via pollen-tube pathway. Plant Mol. Biol. Report 6 (1988) 165-174.
  • 29. Morikawa, H. and Yamada, Y. Capillary microinjection into protoplasts and intranuclear localization of injected materials. Plant Cell Physiol. 26 (1985) 229-236.
  • 30. Mu, H. M., Liu, S. J., Zhou, W. J., Wen, Y. X., Zhang, W. J. and Wei, R. X. Transformation of wheat with insecticide gene of arrowhead proteinase inhibitors by pollen tube pathway and analysis of transgenic plants. I Chuan Hsueh Pao (Chinese) 26 (1999) 634-642.
  • 31. Nadolska-Orczyk, A., Orczyk, W. and Przetakiewicz, A. Agrobacterium-mediated transformation of cereals - from technique development to its application. Acta Physiol. Plant. 22 (2000) 77-88.
  • 32. Nagatani, N., Honda, H., Shimada, T. and Kobayashi, T. DNA delivery into rice cells and transformation using silicon carbide whiskers. Biotechnol. Techniq. 11 (1997) 781-786.
  • 33. Neuhaus, G., Spangeberg, G., Mittelsten-Scheid, O. and Schweizer, H. G. Transgenic rape seed plants obtained by microinjection of DNA into microspre derived embryoids. Theor. Appl. Genet. 75 (1987) 30-36.
  • 34. Newell, C. A. Plant transformation technology. Development and application. Mol. Biotech. 16 (2000) 53-65.
  • 35. Patnaik, D. and Khurana, P. Wheat biotechnology - A minireview. Electr. J. Biotech. 4 (2001).
  • 36. Petolino, J. F., Hopkins, N. L., Kosegi, B. D. and Skokut, M. Whisker- mediated transformation of embryogenic callus of maize. Plant Cell Rep. 19 (2000) 781-786.
  • 37. Sabri, N., Pellisier, B. and Teissie, J. Ascorbate increases electro-transformation efficiency of intact maize cells. Anal. Bioch. 264 (1998) 284-286.
  • 38. Schnorf, M., Neuhaus-Url, G., Galli, A., Lida, S., Potrykus, I. and Neuhaus, G. An improvement method for transformation of plant cells by microinjection; molecular and genetic analysis. Transgen. Res. 1 (1991) 23-30.
  • 39. Serik, O., Ainur I., Murat, K., Tetsuo M. and Masaki, I. Silicon carbide fiber-mediated DNA delivery into cells of wheat (Triticum aestivum L.) mature embryos. Plant Cell Rep. 16 (1996) 133-136.
  • 40. Songstad, D. D., Somers, D. A. and Griesbach, R. J. Advances in alternative DNA delivery techniques. Plant Cell Tissue Org. Cult. 40 (1995) 1-15.
  • 41. Sorokin, A. P., Ke, X. Y., Chen, D. F. and Elliot, M. C. Production of fertile wheat plants via tissue electroporation. Plant Sci. 156 (2000) 227-233.
  • 42. Tjokrokusumo, D., Heinrich, T., Wylie, S., Potter, R. and McComb, J. Vacuum infiltration of Petunia hybrida pollen with Agrobacterium tumefaciens to achieve plant transformation. Plant Cell Rep. 19 (2000) 792-797.
  • 43. Vasil, I. K. Molecular improvement of cereals. Plant Mol. Biol. 25 (1994) 925-937.
  • 44. Wang, K., Drayton, P., Frame, B., Dunwell, J., Thompson, J. A. Whisker-mediated plant transformation: an alternative technology. In Vitro Cell Dev. Biol. 31 (1995) 101-104.
  • 45. Ye, G. N., Stone, D., Pang, S. Z., Creely, W., Gonzalez, K. and Hinchee, M. Arabidopsis ovule is the target for Agrobacterium in planta vacuum infiltration transformation. Plant J. 19 (1999) 249-257.
  • 46. Zaghmout, O. M. F. and Trolinder, N. Simple and efficient method for directly electroporating plasmid DNA into wheat callus cells. Nucl. Acid Res. 21 (1993) 1048.
  • 47. Zhu, Z., Sun, B., Liu, C., Xiao, G. and Li, X. Transformation of wheat protoplasts mediated by cationic liposome and regeneration of transgenic plantlets. Chin. J. Biotech. 9 (1993) 257-261.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-article-01844a85-2689-4e0e-8091-1017f63487fa
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.