A transgene for high methionine protein is posttranscriptionally regulated by methionine

Author:

Bagga Suman,Potenza Carol,Ross Jamie,Martin Melinda N.,Leustek Thomas,Sengupta-Gopalan Champa

Publisher

Springer Science and Business Media LLC

Subject

Plant Science,Biotechnology,Cell Biology,Clinical Biochemistry,Developmental Biology

Reference41 articles.

1. Avraham, T.; Badani, H.; Galili, S.; Amir, R. Enhanced levels of methionine and cysteine in transgenic alfalfa (Medicago sativa L.) plants overexpressing the Arabidopsis cystathionine γ-synthase gene. Plant Biotechnol. J. 3: 71–79; 2005.

2. Bagga, S.; Adams, H.; Kemp, J. D.; Sengupta-Gopalan, C. Accumulation of the 15 kD zein protein in novel protein bodies in transgenic tobacco. Plant Physiol. 107: 13–23; 1995.

3. Bagga, S.; Armendaris, A.; Klypina, N.; Ray, I.; Ghoshroy, S.; Endress, M.; Sutton, D.; Kemp, J. D.; Sengupta-Gopalan, C. Genetic engineering ruminal stable high methionine protein in the foliage of alfalfa. Plant Sci. 166: 273–283; 2004.

4. Bagga, S.; Rodriguez, F.; Kemp, J. D.; Sengupta-Gopalan, C. Co-expression of the maize β- and δ-zein genes results in stable accumulation of the δ-zein in ER derived protein bodies formed by the β-zein. Plant Cell 9: 1683–1696; 1997b.

5. Bagga, S.; Temple, S. J.; Kemp, J. D.; Sengupta-Gopalan, C. A genetic engineering approach for improving protein quality of forage legumes. In: Tewari, K. K.; Singhal, G. S., eds. Plant Molecular Biology and Biotechnology. Narosa Publishing House; 1997a:305–319.

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