Mutations in PB2 and HA are crucial for the increased virulence and transmissibility of H1N1 swine influenza virus in mammalian models

被引:10
作者
Hu, Junyi [1 ]
Hu, Zhe [1 ]
Wei, Yandi [1 ]
Zhang, Ming [2 ]
Wang, Senlin [1 ]
Tong, Qi [1 ]
Sun, Honglei [1 ]
Pu, Juan [1 ]
Liu, Jinhua [1 ]
Sun, Yipeng [1 ]
机构
[1] China Agr Univ, Coll Vet Med, Minist Agr, Key Lab Anim Epidemiol, 2 Yuanmingyuan West Rd, Beijing 100193, Peoples R China
[2] Univ Georgia, Dept Epidemiol & Biostat, Athens, GA 30602 USA
基金
中国国家自然科学基金;
关键词
Swine influenza virus; Mutation; Replication; Transmission; A VIRUS; ADAPTATION; POLYMERASE; HEMAGGLUTININ; COMPATIBILITY; REASSORTMENT; GENOME;
D O I
10.1016/j.vetmic.2021.109314
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Genetic analyses indicated that the pandemic H1N1/2009 influenza virus originated from a swine influenza virus (SIV). However, SIVs bearing the same constellation of genetic features as H1N1/2009 have not been isolated. Understanding the adaptation of SIVs with such genotypes in a new host may provide clues regarding the emergence of pandemic strains such as H1N1/2009. In this study, an artificial SIV with the H1N1/2009 genotype (rH1N1) was sequentially passaged in mice through two independent series, yielding multiple mouse-adapted mutants with high genetic diversity and increased virulence. These experiments were meant to mimic genetic bottlenecks during adaptation of wild viruses with rH1N1 genotypes in a new host. Molecular substitutions in the mouse-adapted variants mainly occurred in genes encoding surface proteins (hemagglutinin [HA] and neuraminidase [NA]) and polymerase proteins (polymerase basic 2 [PB2], polymerase basic 1 [PB1], polymerase acid [PA] proteins and nucleoprotein [NP]). The PB2D309N and HAL425M substitutions were detected at high frequencies in both passage lines and enhanced the replication and pathogenicity of rH1N1 in mice. Moreover, these substitutions also enabled direct transmission of rH1N1 in other mammals such as guinea pigs. PB2D309N showed enhanced polymerase activity and HAL425M showed increased stability compared with the wild-type proteins. Our findings indicate that if SIVs with H1N1/2009 genotypes emerge in pigs, they could undergo rapid adaptive changes during infection of a new host, especially in the PB2 and HA genes. These changes may facilitate the emergence of pandemic strains such as H1N1/2009.
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页数:9
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共 31 条
[1]   Pattern of mutation in the genome of influenza A virus on adaptation to increased virulence in the mouse lung: Identification of functional themes [J].
Brown, EG ;
Liu, H ;
Kit, LC ;
Baird, S ;
Nesrallah, M .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (12) :6883-6888
[2]   Influenza hemagglutinin is spring-loaded by a metastable native conformation [J].
Carr, CM ;
Chaudhry, C ;
Kim, PS .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1997, 94 (26) :14306-14313
[3]   A Single Amino Acid in the Stalk Region of the H1N1pdm Influenza Virus HA Protein Affects Viral Fusion, Stability and Infectivity [J].
Cotter, Christopher R. ;
Jin, Hong ;
Chen, Zhongying .
PLOS PATHOGENS, 2014, 10 (01)
[4]   Review: Influenza virus in pigs [J].
Crisci, Elisa ;
Mussa, Tufaria ;
Fraile, Lorenzo ;
Montoya, Maria .
MOLECULAR IMMUNOLOGY, 2013, 55 (3-4) :200-211
[5]   Influenza at the animal-human interface: a review of the literature for virological evidence of human infection with swine or avian influenza viruses other than A(H5N1) [J].
Freidl, G. S. ;
Meijer, A. ;
de Bruin, E. ;
de Nardi, M. ;
Munoz, O. ;
Capua, I. ;
Breed, A. C. ;
Harris, K. ;
Hill, A. ;
Kosmider, R. ;
Banks, J. ;
von Dobschuetz, S. ;
Stark, K. ;
Wieland, B. ;
Stevens, K. ;
van der Werf, S. ;
Enouf, V. ;
van der Meulen, K. ;
van Reeth, K. ;
Dauphin, G. ;
Koopmans, M. .
EUROSURVEILLANCE, 2014, 19 (18) :8-26
[6]   Antigenic and Genetic Characteristics of Swine-Origin 2009 A(H1N1) Influenza Viruses Circulating in Humans [J].
Garten, Rebecca J. ;
Davis, C. Todd ;
Russell, Colin A. ;
Shu, Bo ;
Lindstrom, Stephen ;
Balish, Amanda ;
Sessions, Wendy M. ;
Xu, Xiyan ;
Skepner, Eugene ;
Deyde, Varough ;
Okomo-Adhiambo, Margaret ;
Gubareva, Larisa ;
Barnes, John ;
Smith, Catherine B. ;
Emery, Shannon L. ;
Hillman, Michael J. ;
Rivailler, Pierre ;
Smagala, James ;
de Graaf, Miranda ;
Burke, David F. ;
Fouchier, Ron A. M. ;
Pappas, Claudia ;
Alpuche-Aranda, Celia M. ;
Lopez-Gatell, Hugo ;
Olivera, Hiram ;
Lopez, Irma ;
Myers, Christopher A. ;
Faix, Dennis ;
Blair, Patrick J. ;
Yu, Cindy ;
Keene, Kimberly M. ;
Dotson, P. David, Jr. ;
Boxrud, David ;
Sambol, Anthony R. ;
Abid, Syed H. ;
George, Kirsten St. ;
Bannerman, Tammy ;
Moore, Amanda L. ;
Stringer, David J. ;
Blevins, Patricia ;
Demmler-Harrison, Gail J. ;
Ginsberg, Michele ;
Kriner, Paula ;
Waterman, Steve ;
Smole, Sandra ;
Guevara, Hugo F. ;
Belongia, Edward A. ;
Clark, Patricia A. ;
Beatrice, Sara T. ;
Donis, Ruben .
SCIENCE, 2009, 325 (5937) :197-201
[7]   STUDIES ON THE MECHANISM OF ADAPTATION OF INFLUENZA VIRUS TO MICE [J].
HIRST, GK .
JOURNAL OF EXPERIMENTAL MEDICINE, 1947, 86 (05) :357-366
[8]   Experimental adaptation of an influenza H5 HA confers respiratory droplet transmission to a reassortant H5 HA/H1N1 virus in ferrets [J].
Imai, Masaki ;
Watanabe, Tokiko ;
Hatta, Masato ;
Das, Subash C. ;
Ozawa, Makoto ;
Shinya, Kyoko ;
Zhong, Gongxun ;
Hanson, Anthony ;
Katsura, Hiroaki ;
Watanabe, Shinji ;
Li, Chengjun ;
Kawakami, Eiryo ;
Yamada, Shinya ;
Kiso, Maki ;
Suzuki, Yasuo ;
Maher, Eileen A. ;
Neumann, Gabriele ;
Kawaoka, Yoshihiro .
NATURE, 2012, 486 (7403) :420-+
[9]   Reassortment Complements Spontaneous Mutation in Influenza A Virus NP and M1 Genes To Accelerate Adaptation to a New Host [J].
Ince, William L. ;
Gueye-Mbaye, Aissatou ;
Bennink, Jack R. ;
Yewdell, Jonathan W. .
JOURNAL OF VIROLOGY, 2013, 87 (08) :4330-4338
[10]   Rank orders of mammalian pathogenicity-related PB2 mutations of avian influenza A viruses [J].
Lee, Chung-Young ;
An, Se-Hee ;
Choi, Jun-Gu ;
Lee, Youn-Jeong ;
Kim, Jae-Hong ;
Kwon, Hyuk-Joon .
SCIENTIFIC REPORTS, 2020, 10 (01)