Changes in the Genome of the Tick-Borne Encephalitis Virus during Cultivation

被引:0
作者
Ternovoi, V. A. [1 ]
Ponomareva, E. P. [1 ]
Protopopova, E. V. [1 ]
Tupota, N. L. [1 ]
Mikryukova, T. P. [1 ]
Loktev, V. B. [1 ]
机构
[1] State Res Ctr Virol & Biotechnol Vector, Koltsov 630559, Novosibirsk Obl, Russia
关键词
tick-borne encephalitis virus; viral genome; 3'-untranslated region; nucleotide substitutions; adaptive substitutions; reverse mutation; cell culture; mouse; MESSENGER-RNA; FLAVIVIRUSES; REPLICATION; REGION; INTERFERON; ADAPTATION; EVOLUTION; VARIANTS; 5'UTRS; MUTANT;
D O I
10.1134/S0026893324020146
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The tick-borne encephalitis virus (TBEV) strain C11-13 (GenBank acc. no. OQ565596) of the Siberian genotype was previously isolated from the brain of a deceased person. TBEV C11-13 variants obtained at passages 3 and 8 in SPEV cells were inoculated into the brains of white mice for subsequent passages. Full genome sequences of all virus variants were analyzed by high-throughput sequencing. A total of 41 single nucleotide substitutions were found to occur mainly in the genes for the nonstructural proteins NS3 and NS5 (GenBank MF043953, OP902894, and OP902895), and 12 amino acid substitutions were identified in the deduced protein sequences. Reverse nucleotide and amino acid substitutions were detected after three passages through mouse brains. The substitutions restored the primary structures that were characteristic of the isolate C11-13 from a human patient and changed during the eight subsequent passages in SPEV cells. In addition, the 3 '-untranslated region (3 '-UTR) of the viral genome increased by 306 nt. The Y3 and Y2 3'-UTR elements were found to contain imperfect L and R repeats, which were probably associated with inhibition of cellular XRN1 RNase and thus involved in the formation of subgenomic flaviviral RNAs (sfRNAs). All TBEV variants showed high-level reproduction in both cell cultures and mouse brains. The genomic changes that occurred during successive passages of TBEV are most likely due to its significant genetic variability, which ensures its efficient reproduction in various hosts and its broad distribution in various climatic zones.
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收藏
页码:266 / 278
页数:13
相关论文
共 51 条
  • [1] Functional analysis of dengue virus cyclization sequences located at the 5′ and 3′UTRs
    Alvarez, Diego E.
    Filomatori, Claudia V.
    Gamarnik, Andrea V.
    [J]. VIROLOGY, 2008, 375 (01) : 223 - 235
  • [2] [Anonymous], 1996, GUIDE CARE USE LAB A, V2nd, P56, DOI DOI 10.17226/5140
  • [3] Flaviviral RNAs: weapons and targets in the war between virus and host
    Bidet, Katell
    Garcia-Blanco, Mariano A.
    [J]. BIOCHEMICAL JOURNAL, 2014, 462 : 215 - 230
  • [4] Japanese encephalitis virus non-coding RNA inhibits activation of interferon by blocking nuclear translocation of interferon regulatory factor 3
    Chang, Ruey-Yi
    Hsu, Ta-Wen
    Chen, Yen-Lin
    Liu, Shu-Fan
    Tsai, Yi-Jer
    Lin, Yun-Tong
    Chen, Yi-Shiuan
    Fan, Yi-Hsin
    [J]. VETERINARY MICROBIOLOGY, 2013, 166 (1-2) : 11 - 21
  • [5] RNA structures that resist degradation by Xrn1 produce a pathogenic Dengue virus RNA
    Chapman, Erich G.
    Moon, Stephanie L.
    Wilusz, Jeffrey
    Kieft, Jeffrey S.
    [J]. ELIFE, 2014, 3
  • [6] The Structural Basis of Pathogenic Subgenomic Flavivirus RNA (sfRNA) Production
    Chapman, Erich G.
    Costantino, David A.
    Rabe, Jennifer L.
    Moon, Stephanie L.
    Wilusz, Jeffrey
    Nix, Jay C.
    Kieft, Jeffrey S.
    [J]. SCIENCE, 2014, 344 (6181) : 307 - 310
  • [7] Tick-borne virus diseases of human interest in Europe
    Charrel, RN
    Attoui, H
    Butenko, AM
    Clegg, JC
    Deubel, V
    Frolova, TV
    Gould, EA
    Gritsun, TS
    Heinz, FX
    Labuda, M
    Lashkevich, VA
    Loktev, V
    Lundkvist, A
    Lvov, DV
    Mandl, CW
    Niedrig, M
    Papa, A
    Petrov, VS
    Plyusnin, A
    Randolph, S
    Süss, J
    Zlobin, VI
    de Lamballerie, X
    [J]. CLINICAL MICROBIOLOGY AND INFECTION, 2004, 10 (12) : 1040 - 1055
  • [8] Chausov E.V., 2011, Probl. Osobo Opasnykh Infekts, V4, P44, DOI [10.21055/0370-1069-2011-4(110)-44-48, DOI 10.21055/0370-1069-2011-4(110)-44-48]
  • [9] Variability of the Tick-Borne Encephalitis Virus Genome in the 5′ Noncoding Region Derived from Ticks Ixodes persulcatus and Ixodes pavlovskyi in Western Siberia
    Chausov, Eugene V.
    Ternovoi, Vladimir A.
    Protopopova, Elena V.
    Kononova, Julia V.
    Konovalova, Svetlana N.
    Pershikova, Natalia L.
    Romanenko, Vladimir N.
    Ivanova, Nadezda V.
    Bolshakova, Natalia P.
    Moskvitina, Nina S.
    Loktev, Valery B.
    [J]. VECTOR-BORNE AND ZOONOTIC DISEASES, 2010, 10 (04) : 365 - 375
  • [10] A new subtype of eastern tick-borne encephalitis virus discovered in Qinghai-Tibet Plateau, China
    Dai, Xiaoyi
    Shang, Guobao
    Lu, Shan
    Yang, Jing
    Xu, Jianguo
    [J]. EMERGING MICROBES & INFECTIONS, 2018, 7