[1] |
Chan, Y.-L., Chang, T.-H., Liao, C.-L. et al. The cellular antiviral protein viperin is attenuated by proteasome-mediated protein degradation in Japanese encephalitis virus-infected cells J. Virol., 82 (2008),pp. 10455-10464
|
[2] |
Crance, J.M., Scaramozzino, N., Jouan, A. et al. Interferon, ribavirin, 6-azauridine and glycyrrhizin: antiviral compounds active against pathogenic flaviviruses Antivir. Res., 58 (2003),pp. 73-79
|
[3] |
Deng, X., Shi, Z., Li, S. et al. Characterization of nonstructural protein 3 of a neurovirulent Japanese encephalitis virus strain isolated from a pig Virol. J., 8 (2011),p. 209
|
[4] |
Erlanger, T.E., Weiss, S., Keiser, J. et al. Past, present, and future of Japanese encephalitis Emerg. Infect. Dis., 15 (2009),pp. 1-7
|
[5] |
Harinasuta, C., Wasi, C., Vithanomsat, S. Southeast Asian J. Trop. Med. Public Health, 15 (1984),pp. 564-568
|
[6] |
Hsiao, N.W., Chen, J.W., Yang, T.C. et al. ISG15 over-expression inhibits replication of the Japanese encephalitis virus in human medulloblastoma cells Antivir. Res., 85 (2010),pp. 504-511
|
[7] |
Hummer, B.T., Li, X.L., Hassel, B.A. Role for p53 in gene induction by double-stranded RNA J. Virol., 75 (2001),pp. 7774-7777
|
[8] |
Laptenko, O., Prives, C. Transcriptional regulation by p53: one protein, many possibilities Cell Death Differ., 13 (2006),pp. 951-961
|
[9] |
Lin, R.-J., Liao, C.-L., Lin, E. et al. Blocking of the alpha interferon-induced Jak-Stat signaling pathway by Japanese encephalitis virus infection J. Virol., 78 (2004),pp. 9285-9294
|
[10] |
Marques, J.T., Rebouillat, D., Ramana, C.V. et al. Down-regulation of p53 by double-stranded RNA modulates the antiviral response J. Virol., 79 (2005),pp. 11105-11114
|
[11] |
Mirza, A., McGuirk, M., Hockenberry, T.N. et al. Human survivin is negatively regulated by wild-type p53 and participates in p53-dependent apoptotic pathway Oncogene, 21 (2002),pp. 2613-2622
|
[12] |
Muñoz-Fontela, C., Macip, S., Martínez-Sobrido, L. et al. Transcriptional role of p53 in interferon-mediated antiviral immunity J. Exp. Med., 205 (2008),pp. 1929-1938
|
[13] |
Muñoz-Fontela, C., Pazos, M., Delgado, I. et al. p53 serves as a host antiviral factor that enhances innate and adaptive immune responses to influenza A virus J. Immunol., 187 (2011),pp. 6428-6436
|
[14] |
Qiu, Y., Shen, Y., Li, X. et al. Polyclonal antibody to porcine p53 protein: a new tool for studying the p53 pathway in a porcine model Biochem. Biophys. Res. Commun., 377 (2008),pp. 151-155
|
[15] |
Rivas, C., Aaronson, S.A., Munoz-Fontela, C. Dual role of p53 in innate antiviral immunity Viruses, 2 (2010),pp. 298-313
|
[16] |
Solomon, T. Control of Japanese encephalitis–within our grasp? N. Engl. J. Med., 355 (2006),pp. 869-871
|
[17] |
Schoggins, J.W., Rice, C.M. Interferon-stimulated genes and their antiviral effector functions Curr. Opin. Virol., 1 (2011),pp. 519-525
|
[18] |
Takaoka, A., Hayakawa, S., Yanai, H. et al. Integration of interferon-alpha/beta signalling to p53 responses in tumour suppression and antiviral defence Nature, 424 (2003),pp. 516-523
|
[19] |
Ye, J., Zhu, B., Fu, Z.F. et al. Immune evasion strategies of flaviviruses Vaccine, 31 (2013),pp. 461-471
|
[20] |
Zhu, Z., Wei, J., Shi, Z. et al. Biochem. Biophys. Res. Commun., 436 (2013),pp. 204-211
|