tetano
Editor, Senior Moderator
Virology. 2014 Dec 30;476C:233-239. doi: 10.1016/j.virol.2014.11.031. [Epub ahead of print]
[h=1]Adaptive amino acid substitutions enhance the virulence of a reassortant H7N1 avian influenza virus isolated from wild waterfowl in mice.[/h] Yu Z[SUP]1[/SUP], Sun W[SUP]2[/SUP], Li X[SUP]3[/SUP], Chen Q[SUP]4[/SUP], Chai H[SUP]5[/SUP], Gao X[SUP]2[/SUP], Guo J[SUP]2[/SUP], Zhang K[SUP]2[/SUP], Wang T[SUP]2[/SUP], Feng N[SUP]2[/SUP], Zheng X[SUP]2[/SUP], Wang H[SUP]2[/SUP], Zhao Y[SUP]2[/SUP], Qin C[SUP]6[/SUP], Huang G[SUP]2[/SUP], Yang S[SUP]2[/SUP], Hua Y[SUP]5[/SUP], Zhang X[SUP]7[/SUP], Gao Y[SUP]8[/SUP], Xia X[SUP]9[/SUP].
[h=3]Author information[/h]
[h=3]Abstract[/h] H7 avian influenza viruses (AIVs) have caused a number of human infections, highlighting the pandemic potential of them. However, the factors that promote their replication in mammals remain poorly understood. Here, we generated mouse-adapted variants of a reassortant H7N1 virus to identify adaptive changes that confer enhanced virulence in mammals. The mouse lethal doses (MLD[SUB]50[/SUB]) of the variants were reduced >10,000-fold compared to the parental virus. Adapted variants displayed enhanced replication kinetics in vitro and vivo, and were capable of replicating in multiple organs. Analysis of the variant virus genomes revealed amino acid changes in the PB2 (E627K), HA (H3 numbering; E114K, G205E, and G218E), and NA (S350N) proteins. Notably, some amino acid changes have been identified in natural H7 isolates. Our results implicate a number of amino acid substitutions that collectively enhance the ability of a wild bird-origin H7N1 AIV to replicate and cause severe disease in mice.
Copyright ? 2014 Elsevier Inc. All rights reserved.
[h=4]KEYWORDS:[/h] Adaptation; Avian influenza virus; H7N1; Mice; Wild waterfowl
PMID: 25555151 [PubMed - as supplied by publisher]
http://www.ncbi.nlm.nih.gov/pubmed/25555151
[h=1]Adaptive amino acid substitutions enhance the virulence of a reassortant H7N1 avian influenza virus isolated from wild waterfowl in mice.[/h] Yu Z[SUP]1[/SUP], Sun W[SUP]2[/SUP], Li X[SUP]3[/SUP], Chen Q[SUP]4[/SUP], Chai H[SUP]5[/SUP], Gao X[SUP]2[/SUP], Guo J[SUP]2[/SUP], Zhang K[SUP]2[/SUP], Wang T[SUP]2[/SUP], Feng N[SUP]2[/SUP], Zheng X[SUP]2[/SUP], Wang H[SUP]2[/SUP], Zhao Y[SUP]2[/SUP], Qin C[SUP]6[/SUP], Huang G[SUP]2[/SUP], Yang S[SUP]2[/SUP], Hua Y[SUP]5[/SUP], Zhang X[SUP]7[/SUP], Gao Y[SUP]8[/SUP], Xia X[SUP]9[/SUP].
[h=3]Author information[/h]
[h=3]Abstract[/h] H7 avian influenza viruses (AIVs) have caused a number of human infections, highlighting the pandemic potential of them. However, the factors that promote their replication in mammals remain poorly understood. Here, we generated mouse-adapted variants of a reassortant H7N1 virus to identify adaptive changes that confer enhanced virulence in mammals. The mouse lethal doses (MLD[SUB]50[/SUB]) of the variants were reduced >10,000-fold compared to the parental virus. Adapted variants displayed enhanced replication kinetics in vitro and vivo, and were capable of replicating in multiple organs. Analysis of the variant virus genomes revealed amino acid changes in the PB2 (E627K), HA (H3 numbering; E114K, G205E, and G218E), and NA (S350N) proteins. Notably, some amino acid changes have been identified in natural H7 isolates. Our results implicate a number of amino acid substitutions that collectively enhance the ability of a wild bird-origin H7N1 AIV to replicate and cause severe disease in mice.
Copyright ? 2014 Elsevier Inc. All rights reserved.
[h=4]KEYWORDS:[/h] Adaptation; Avian influenza virus; H7N1; Mice; Wild waterfowl
PMID: 25555151 [PubMed - as supplied by publisher]
http://www.ncbi.nlm.nih.gov/pubmed/25555151