T-705 (Favipiravir) Induces Lethal Mutagenesis in Influenza A H1N1 Viruses In Vitro

被引:291
作者
Baranovich, Tatiana [1 ]
Wong, Sook-San [1 ]
Armstrong, Jianling [1 ]
Marjuki, Henju [1 ]
Webby, Richard J. [1 ]
Webster, Robert G. [1 ,2 ]
Govorkova, Elena A. [1 ]
机构
[1] St Jude Childrens Res Hosp, Dept Infect Dis, Memphis, TN 38105 USA
[2] Univ Tennessee, Dept Pathol, Memphis, TN USA
基金
美国国家卫生研究院;
关键词
LYMPHOCYTIC CHORIOMENINGITIS VIRUS; HEPATITIS-C VIRUS; ANTIVIRAL ACTIVITY; VIVO ACTIVITIES; RIBAVIRIN; RNA; REPLICATION; RESISTANCE; MUTATION; INFECTIONS;
D O I
10.1128/JVI.02346-12
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Several novel anti-influenza compounds are in various phases of clinical development. One of these, T-705 (favipiravir), has a mechanism of action that is not fully understood but is suggested to target influenza virus RNA-dependent RNA polymerase. We investigated the mechanism of T-705 activity against influenza A (H1N1) viruses by applying selective drug pressure over multiple sequential passages in MDCK cells. We found that T-705 treatment did not select specific mutations in potential target proteins, including PB1, PB2, PA, and NP. Phenotypic assays based on cell viability confirmed that no T-705-resistant variants were selected. In the presence of T-705, titers of infectious virus decreased significantly (P < 0.0001) during serial passage in MDCK cells inoculated with seasonal influenza A (H1N1) viruses at a low multiplicity of infection (MOI; 0.0001 PFU/cell) or with 2009 pandemic H1N1 viruses at a high MOI (10 PFU/cell). There was no corresponding decrease in the number of viral RNA copies; therefore, specific virus infectivity (the ratio of infectious virus yield to viral RNA copy number) was reduced. Sequence analysis showed enrichment of G -> A and C -> T transversion mutations, increased mutation frequency, and a shift of the nucleotide profiles of individual NP gene clones under drug selection pressure. Our results demonstrate that T-705 induces a high rate of mutation that generates a nonviable viral phenotype and that lethal mutagenesis is a key antiviral mechanism of T-705. Our findings also explain the broad spectrum of activity of T-705 against viruses of multiple families.
引用
收藏
页码:3741 / 3751
页数:11
相关论文
共 50 条
  • [21] Lemierre syndrome and influenza A (H1N1)
    Porquet-Bordes, V.
    Guillet, E.
    Cammas, B.
    Runel-Belliard, C.
    ARCHIVES DE PEDIATRIE, 2011, 18 (04): : 413 - 415
  • [22] Influenza A Virus (H1N1) Infection Induces Glycolysis to Facilitate Viral Replication
    Ren, Lehao
    Zhang, Wanju
    Zhang, Jing
    Zhang, Jiaxiang
    Zhang, Huiying
    Zhu, Yong
    Meng, Xiaoxiao
    Yi, Zhigang
    Wang, Ruilan
    VIROLOGICA SINICA, 2021, 36 (06) : 1532 - 1542
  • [23] Discordant antigenic drift of neuraminidase and hemagglutinin in H1N1 and H3N2 influenza viruses
    Sandbulte, Matthew R.
    Westgeest, Kim B.
    Gao, Jin
    Xu, Xiyan
    Klimov, Alexander I.
    Russell, Colin A.
    Burke, David F.
    Smith, Derek J.
    Fouchier, Ron A. M.
    Eichelberger, Maryna C.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2011, 108 (51) : 20748 - 20753
  • [24] Oseltamivir-Resistant Influenza Viruses A (H1N1), Norway, 2007-08
    Hauge, Siri H.
    Dudman, Susanne
    Borgen, Katrine
    Lackenby, Angie
    Hungnes, Olav
    EMERGING INFECTIOUS DISEASES, 2009, 15 (02) : 155 - 162
  • [25] Molecular characterization of H1N1 influenza A viruses from human cases in North America
    Wu Bin
    Wang ChengMin
    Dong GuoYing
    Luo Jing
    Zhao BaoHua
    He HongXuan
    CHINESE SCIENCE BULLETIN, 2009, 54 (13): : 2179 - 2192
  • [26] Synthesis of triterpenoid acylates: Effective reproduction inhibitors of influenza A (H1N1) and papilloma viruses
    O. B. Kazakova
    N. I. Medvedeva
    I. P. Baikova
    G. A. Tolstikov
    T. V. Lopatina
    M. S. Yunusov
    L. Zaprutko
    Russian Journal of Bioorganic Chemistry, 2010, 36 : 771 - 778
  • [27] Synthesis of triterpenoid acylates: Effective reproduction inhibitors of influenza A (H1N1) and papilloma viruses
    Kazakova, O. B.
    Medvedeva, N. I.
    Baikova, I. P.
    Tolstikov, G. A.
    Lopatina, T. V.
    Yunusov, M. S.
    Zaprutko, L.
    RUSSIAN JOURNAL OF BIOORGANIC CHEMISTRY, 2010, 36 (06) : 771 - 778
  • [28] In vitro anti-influenza A H1N1 effect of extract of Bupleuri Radix
    Su Wen
    Xu Huifu
    Huang Hao
    IMMUNOPHARMACOLOGY AND IMMUNOTOXICOLOGY, 2011, 33 (03) : 433 - 437
  • [29] The infection of turkeys and chickens by reassortants derived from pandemic H1N1 2009 and avian H9N2 influenza viruses
    Sun, Honglei
    Kong, Weili
    Liu, Litao
    Qu, Yi
    Li, Chong
    Shen, Ye
    Zhou, Yu
    Wang, Yu
    Wu, Sizhe
    Pu, Juan
    Liu, Jinhua
    Sun, Yipeng
    SCIENTIFIC REPORTS, 2015, 5
  • [30] Virulence and Genetic Compatibility of Polymerase Reassortant Viruses Derived from the Pandemic (H1N1) 2009 Influenza Virus and Circulating Influenza A Viruses
    Song, Min-Suk
    Pascua, Philippe Noriel Q.
    Lee, Jun Han
    Baek, Yun Hee
    Park, Kuk Jin
    Kwon, Hyeok-il
    Park, Su-Jin
    Kim, Chul-Joong
    Kim, Hyunggee
    Webby, Richard J.
    Webster, Robert G.
    Choi, Young Ki
    JOURNAL OF VIROLOGY, 2011, 85 (13) : 6275 - 6286