Ngo et al, The Protein Folding Problem and Tertiary Structure Prediction, Mertz et al (eds), Birkhauser, Boston, 1994. |
Mercer et al., Wide type human p53 is antiproliferative in SV40-transformed hamster cells, Oncogene, vol. 5, pp. 973-980 (1990). |
Shaw et al., Induction of apoptosis by wild-type p53 in human colon tumor-derived cell line, Proc. Natl. Acad. Sci., vol. 89, pp. 4495-4499 (1992). |
Baker et al., Suppression of Human Colorectal Carcinoma Cells Growth by Wild-Type p53, Science, vol. 249, pp. 912-915 (1990). |
Nicholson et al., “Localization of the herpes simplex virus type 1 major capside protein VP5 to the cell nucleus requires the abundant scaffolding protein VP22a,” Journal of General Virology, vol. 75, No. 5, pp. 1091-1099 (1994). |
Elliott et al., “VP16 interacts via its activation domain with VP22, a tegument protein of herpes simplex virus, and is relocated to a novel macromolecular assembly in coexperessing cells,” Journal of Virology, vol. 69(12), pp. 7932-7941 (1995). |
Elliott & O'Hare, “Intercellular Trafficking and Protein Delivery by a Herpesvirus Structural Protein,” Cell, vol. 88, pp. 223-233 (1997). |
Leslie, J.et al., “Overexpression of the Herpes Simplex Virus Type 1 Tegument Protein VP22 Increases Its Incorporation into Virus Particles,” Virology, 220:60-68, 1996. |