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NS2B/NS3 protease: allosteric effect of mutations associated with the pathogenicity of tick-borne encephalitis virus
Authors:Ulyana V Potapova  Sergey I Feranchuk  Vladimir V Potapov  Nina V Kulakova  Ilya G Kondratov  Galina N Leonova
Institution:1. Limnological Institute, Siberian Branch of the Russian Academy of Sciences , 3, Ulan-Batorskaya St., Irkutsk , 664033 , Russian Federation potapova@lin.irk.ru;3. United Institute of Informatics Problems of the National Academy of Sciences of Belarus , 6, Surganova Str., Minsk , 220012 , Republic of Belarus;4. Limnological Institute, Siberian Branch of the Russian Academy of Sciences , 3, Ulan-Batorskaya St., Irkutsk , 664033 , Russian Federation;5. Research Institute of Epidemiology and Microbiology, Siberian Branch of Russian Academy of Medical Sciences , Selskaya Str., 1, Vladivostok , 690087 , Russian Federation
Abstract:The sequences of the protease domain of the tick-borne encephalitis (TBE) virus NS3 protein have two amino acid substitutions, 16 R→K and 45 S→F, in the highly pathogenic and poorly pathogenic strains of the virus, respectively. Two models of the NS2B-NS3 protease complex for the highly pathogenic and poorly pathogenic strains of the virus were constructed by homology modeling using the crystal structure of West Nile virus NS2B-NS3 protease as a template; 20?ns molecular dynamic simulations were performed for both models, the trajectories of the dynamic simulations were compared, and the averaged distance between the two models was calculated for each residue. Conformational differences between two models were revealed in the identified pocket. The different conformations of the pocket resulted in different orientations of the NS2B segment located near the catalytic triad. In the model of the highly pathogenic TBE virus the identified pocket had a more open conformation compared to the poorly pathogenic model. We propose that conformational changes in the active protease center, caused by two amino acid substitutions, can influence enzyme functioning and the virulence of the virus.
Keywords:flaviviral protease  amino acid substitution  pathogenicity  conformational analysis  molecular dynamic
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