Somatic Embryogenesis and Organogenesis of Biofuel Plant Cassava (Manihot esculenta Crantz) Chinese Cultivars

Article Preview

Abstract:

2, 4-D and picloram were compared for their ability to the induction of somatic embryogenesis in Chinese cassava (Manihot esculenta Crantz) cultivars SC5, SC6, SC7 and SC8. In all four cultivars tested, both 2, 4-D and picloram had the capacity to induce primary somatic embryos from axillary buds. And the two hormones were also suitable for subculture of somatic embryos of three cultivars SC5, SC6 and SC8. However both 2, 4-D and picloram can not keep the activity of somatic embryos of cultivar SC7. For organogenesis, cotyledon matured for 10~15 days were better than others.

You might also be interested in these eBooks

Info:

Periodical:

Advanced Materials Research (Volumes 512-515)

Pages:

558-561

Citation:

Online since:

May 2012

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2012 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] J. Liu, Q.J. Zheng, Q.X. Ma, K.K. Gadidasu and P. Zhang: Journal of Integrative Plant Biology Vol.53 (7) (2011), p.552–569.

Google Scholar

[2] S. Kunkeaw, T. Yoocha, S. Sraphet, A. Boonchanawiwat, O. Boonseng, D.A. Lightfoot, K. Triwitayakorn and S. Tangphatsornruang: Mol Breeding Vol. 27 (2011), p.67–75.

DOI: 10.1007/s11032-010-9414-4

Google Scholar

[3] M.A. El-Sharkawy: Plant Mol Biol Vol. 56 (2004), p.481–501.

Google Scholar

[4] S. Prochnik, P.R. Marri, B. Desany, P.D. Rabinowicz, C. Kodira, M. Mohiuddin, F. Rodriguez, C. Fauquet, J. Tohme, T. Harkins, D.S. Rokhsar and S. Rounsley: Tropical Plant Biol., published online 05 January (2012).

DOI: 10.1007/s12042-011-9088-z

Google Scholar

[5] H.J.J. Koehorst-van Putten, E. Sudarmonowati, M. Herman, I.J. Pereira-Bertram, A.M.A. Wolters, H. Meima, N. de Vetten, C.J.J.M. Raemakers and R.G.F. Visser: Transgenic Res Vol. 21 (2012), p.39–50.

DOI: 10.1007/s11248-011-9507-9

Google Scholar

[6] B. Boher and V. Verdier: Afr Crop Sci J. Vol. 2 (1994), p.505–509.

Google Scholar

[7] R.J. Hillocks and D.L. Jennings: Int J Pest Manag Vol. 49 (2003), p.225–234.

Google Scholar

[8] B.L. Patil and C.M. Fauquet: Mol Plant Pathol Vol.10 (2009), p.685–701

Google Scholar

[9] K. Reilly, D. Bernal, D.F. Cortés, R. Gómez-Vásquez, J. Tohme and J.R. Beeching: Plant Mol Biol Vol. 64(2007), p.187–203.

DOI: 10.1007/s11103-007-9144-0

Google Scholar

[10] Ceballos H, Okogbenin E, Pérez JC et al: Bradshaw JE (ed) Root and tuber crops, handbook of plant breeding, vol 7.Springer, New York, (2010), p.53–96.

Google Scholar

[11] E. Sofiari, C.J.J.M. Raemakers1, E.Kanju1, K.Danso1, A.M. van Lammeren, E. Jacobsen1 and R.G.F. Visser: Plant Cell, Tissue and Organ Culture Vol. 50 (1997) , p.45–56.

Google Scholar

[12] T. Feitosa1, J.L.P. Bastos, L.F.A. Ponte2, T.L. Jucá and F.A.P. Campos: Brazilian Archives of Biology and Technology, Vol.50(2) (2007), pp.201-206.

Google Scholar

[13] J.A. Stamp and G.G. Henshaw: Pflanzenphysiol. Vol. 105 (1982), p.183–187.

Google Scholar

[14] G.H. Ma, Q.S. Xu and Y.L. Xian: Journal of Tropical and Subtropical Botany, Vol. 7(1) (1999), pp.75-80

Google Scholar

[15] W.L. Zhu: Master's Degree Dissertation, South China University of Tropical Agriculture, Danzhou, Hainan, China, (2006).

Google Scholar

[16] Q.R. Yao: Doctor's Degree Dissertation, South China University of Tropical Agriculture, Danzhou, Hainan, China, (2007)

Google Scholar