Characterization of a Siberian virus isolated from a patient with progressive chronic tick-borne encephalitis
Gritsun T. S., Frolova T. V., Zhankov A. I. et al. Characterization of a Siberian virus isolated from a patient with progressive chronic tick-borne encephalitis // J. Virol. - 2003. - Vol. 77, N 1. - P. 25-36.
BioEdit: A user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT
Hall T. A. BioEdit: a user-friendly biological sequence alignment editor and analysis program for Windows 95/98/NT // Nucl. Acids Symp. Ser. - 1999. - Vol. 41. - P. 95-98.
Distribution and characterization of tick-borne encephalitis viruses from Siberia and far-eastern Asia
Hayasaka D., Ivanov L., Leonova G. et al. Distribution and characterization of tick-borne encephalitis viruses from Siberia and far-eastern Asia // J. Gen. Virol. - 2001. - Vol. 82. -P. 1319-1328.
Prediction of protein antigenic determinants from amino acid sequences
Hopp T. P., Woods K. R. Prediction of protein antigenic determinants from amino acid sequences // Proc. Natl. Acad Sci. USA. - 1981. - Vol. 78. - P. 3824-3828.
Characterization of tick-borne encephalitis virus that caused the lethal meningoencephalitis in human in Mongolia
30 March Ulaanbaatar, 2009
Khasnatlnov M. A., Danchlnova G. A., Unursaikhan U. et al. Characterization of tick-borne encephalitis virus that caused the lethal meningoencephalitis in human in Mongolia // The International conference "Zoonotic infectious diseases and tourism": Reports. 30 March 2009. Ulaanbaatar, 2009. - P. 88-94.
Change in phenotype of tick-borne encephalitis virus following passage in Ixodes ricinus ticks and associated amino acid substitution in the envelope protein
Labuda M., Jiang W. R., Kaluzova M. et al. Change in phenotype of tick-borne encephalitis virus following passage in Ixodes ricinus ticks and associated amino acid substitution in the envelope protein // Virus Res. - 1994. - Vol. 31. - P. 305-315.
Antigenic structure of the flavivirus envelope protein e at the molecular level, using tick-borne encephalitis virus as a model
Mandl C. W., Gulkhoo F., Holzmann H. et al. Antigenic structure of the flavivirus envelope protein E at the molecular level, using tick-borne encephalitis virus as a model // J. Virol. -1989. - Vol. 63. - P. 564-571.
Adaptation of tick-borne encephalitis virus to BHK-21 cells results in the formation of multiple heparan sulfate binding sites in the envelope protein and attenuation in vivo
Mandl C. W., Kroschewskl H., Allison S. L. et al. Adaptation of tick-borne encephalitis virus to BHK-21 cells results in the formation of multiple heparan sulfate binding sites in the envelope protein and attenuation in vivo // J. Virol. - 2001. - Vol. 75. - P. 5627-5637.
The envelope glycoprotein from tick-borne encephalitis virus at 2A resolution
Rey F. A-, Heinz F. X., Mandl C. et al. The envelope glycoprotein from tick-borne encephalitis virus at 2A resolution. // Nature. - 1995. - Vol. 375. - P. 291-298.
Eds. B. Frields, M. D. Knipe.Philadelphia; New York
Rice C. Flaviviridae: the viruses and their replication // Fields virology / Eds. B. Frields, M. D. Knipe. - Philadelphia; New York, 1996. - P. 931-960.
Microevolution of tick-borne encephalitis virus in course of host alternation
Romanova L., Gmyl A. P., Dzhivanian T. I. et al. Microevolution of tick-borne encephalitis virus in course of host alternation // Virology. - 2007. - Vol. 362. - P. 75-84.