| 1. |
1. Kapp, L. D., and Lorsch, J. R. (2004) The molecular mechanics of eukaryotic translation. Annu. Rev. Biochem.
73, 657–704.
|
| |
| 2. |
2. Zelenina, D. A., Kulaeva, O. I., Smirnyagina, E. V., Solovyev, A. G., Miroshnichenko, N. A., Fedorkin, O. N., et al. (1992)
Translation enhancing properties of the 5′-leader of potato virus X genomic RNA. FEBS Lett.
296, 267–270.
|
| |
| 3. |
3. Gallie, D. R. (2002) The 5′-leader of tobacco mosaic virus promotes translation through enhanced recruitment of eIF4F.
Nucleic Acids Res.
30, 3401–3411.
|
| |
| 4. |
4. Neeleman, L., Olsthoorn, R. C., Linthorst, H. J., and Bol, J. F. (2001) Translation of a non-polyadenylated viral RNA is
enhanced by binding of viral coat protein or polyadenylation of the RNA. Proc. Natl. Acad. Sci. USA
98, 14286–14291.
|
| |
| 5. |
5. Matsuda, D., and Dreher, T. W. (2004) The tRNA-like structure of Turnip yellow mosaic virus RNA is a 3′-translational enhancer.
Virology
321, 36–46.
|
| |
| 6. |
6. Neeleman, L., Linthorst, H. J., and Bol, J. F. (2004) Efficient translation of alfamovirus RNAs requires the binding of
coat protein dimers to the 3′ termini of the viral RNAs. J. Gen. Virol.
85, 231–240.
|
| |
| 7. |
7. Kneller Pettit, E. L., Rakotondrafara, A. M., and Miller, W. A. (2006) Cap-independent translation of plant viral RNAs.
Virus Res.
119, 63–75.
|
| |
| 8. |
8. Lax, S. R., Lauer, S. J., Browning, K. S., and Ravel, J. M. (1986) Purification and properties of protein synthesis initiation
and elongation factors from wheat germ. Methods Enzymol.
118, 109–128.
|
| |
| 9. |
9. Roberts, B. E., and Paterson, B. M. (1973) Efficient translation of TMV RNA and rabbit globin 9S RNA in a cell-free system
from commercial wheat germ. Proc. Natl. Acad. Sci. USA
70, 2330–2334.
|
| |
| 10. |
10. Pelham, H. R., and Jackson, R. J. (1976) An efficient mRNA-dependent translation system from reticulocyte lysates. Eur.
J. Biochem. 67, 247–256.
|
| |
| 11. |
11. Kozak, M. (1989) Context effects and inefficient initiation at non-AUG codons in eucaryotic cell-free translation systems.
Mol. Cell. Biol.
9, 5073–5080.
|
| |
| 12. |
12. Michel, Y. M., Poncet, D., Piron, M., Kean, K. M., and Borman, A. M. (2000) Cap-poly(A) synergy in mammalian cell-free
extracts. Investigation of the requirements for poly(A)-medi-ated stimulation of translation initiation. J. Biol. Chem.
275, 32268–32276.
|
| |
| 13. |
13. Turner, R., and Foster, G. D. (1998) In vitro transcription and translation. Methods Mol. Biol. 81, 293–299.
|
| |
| 14. |
14. Kozak, M. (1989) Circumstances and mechanisms of inhibition of translation by secondary structure in eucaryotic mRNAs.
Mol. Cell. Biol.
9, 5134–5142.
|
| |
| 15. |
15. Jackson, R. J., Hunt, S. L., Reynolds, J. E., and Kaminski, A. (1995) in “Cap-independent translation” (Sarnow, P., Ed.), Vol. 203, pp. 1–29, Springer-Verlag, Berlin Heidelberg.
|
| |
| 16. |
16. Zuker, M. (2003) Mfold web server for nucleic acid folding and hybridization prediction. Nucleic Acids Res.
31, 3406–3415.
|
| |
| 17. |
17. Gallie, D. R. (1991) The cap and poly(A) tail function synergistically to regulate mRNA translational efficiency. Genes Dev.
5, 2108–2116.
|
| |
| 18. |
18. Guo, L., Allen, E., and Miller, W. A. (2001) Base-pairing between untranslated regions facilitates translation of uncapped,
nonpolyadenylated viral RNA. Mol. Cell
7, 1103–1109.
|
| |
| 19. |
19. Joshi, C. P., Zhou, H., Huang, X., and Chiang, V. L. (1997) Context sequences of translation initiation codon in plants.
Plant Mol. Biol.
35, 993–1001.
|
| |
| 20. |
20. Ryabova, L. A., and Hohn, T. (2000) Ribosome shunting in the cauliflower mosaic virus 35S RNA leader is a special case
of reinitiation of translation functioning in plant and animal systems. Genes Dev.
14, 817–829.
|
| |
| 21. |
21. Chen, C. Y., and Sarnow, P. (1998) Internal ribosome entry sites tests with circular mRNAs. Methods Mol. Biol. 77, 355–363.
|
| |