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2025-12-6 5:47:28
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SULLI C, Banik SS, Schilling J, Moser A, et al. Detection of proton movement directly across viral membranes to identify novel influenza M2 inhibitors. J Virol. 2013 Jul 24.  Abstract  
submitted by kickingbird at Jul, 30, 2013 from J Virol. 2013 Jul 24 (via http://www.ncbi.nlm.nih.gov/pubmed/23885079)
The influenza M2 protein is a well-validated yet underexploited proton-selective ion channel essential for influenza virus infectivity. Because M2 is a toxic viral ion channel, existing M2 inhibitors have ...

DU L, Li Y, Zhao G, Wang L, et al. Highly pathogenic avian influenza H5N1 mutants with air-transmissibility are susceptible to human and animal neutralizing antibodies. J Infect Dis. 2013 Jul 18..  Abstract  
submitted by kickingbird at Jul, 30, 2013 from J Infect Dis. 2013 Jul 18. (via http://www.ncbi.nlm.nih.gov/pubmed/23868877)
A laboratory-generated reassortant H5 hemagglutinin (HA)/H1N1 virus containing four mutations in H5N1 HA become airborne transmissible among mammals. Here we constructed 15 H5N1 pseudoviruses containing ...

NOH JY, Song JY, Hwang SY, Choi WS, et al. Viral load dynamics in adult patients with A(H1N1)pdm09 influenza. Epidemiol Infect. 2013 Jul 18:1-6.  Abstract  
submitted by kickingbird at Jul, 30, 2013 from Epidemiol Infect. 2013 Jul 18:1-6 (via http://www.ncbi.nlm.nih.gov/pubmed/23866846)
SUMMARY The dynamics of influenza A viral load in respiratory samples collected from adult A(H1N1)pdm09 influenza patients were investigated. Three respiratory specimens were obtained every 2-4 days and ...

L. Zhang et al.. Protection by Face Masks against Influenza A(H1N1)pdm09 Virus on Trans-Pacific Passenger Aircraft, 2009. EID Volume 19, Number 9 September 2013.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from EID Volume 19, Number 9 September 2013 (via http://wwwnc.cdc.gov/eid/article/19/9/12-1765_article.htm)
In response to several influenza A(H1N1)pdm09 infections that developed in passengers after they traveled on the same 2 flights from New York, New York, USA, to Hong Kong, China, to Fuzhou, China, we assessed ...

K. Shanmuganatham et al. Antigenic and Molecular Characterization of Avian Influenza A(H9N2) Viruses, Bangladesh. EID Volume 19, Number 9 September 2013.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from EID Volume 19, Number 9 September 2013 (via http://wwwnc.cdc.gov/eid/article/19/9/13-0336_article.htm)
Human infection with avian influenza A(H9N2) virus was identified in Bangladesh in 2011. Surveillance for influenza viruses in apparently healthy poultry in live-bird markets in Bangladesh during 2008–2011 ...

C. Xu et al. Monitoring Avian Influenza A(H7N9) Virus through National Influenza-like Illness Surveillance, China. EID Volume 19, Number 8 August 2013.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from EID Volume 19, Number 8 August 2013 (via http://wwwnc.cdc.gov/eid/article/19/8/13-0662_article.htm)
In China during March 4–April 28, 2013, avian influenza A(H7N9) virus testing was performed on 20,739 specimens from patients with influenza-like illness in 10 provinces with confirmed human cases: 6 (0.03%) ...

MIN JY, Santos C, Fitch A, Twaddle A, et al. Mammalian adaptation in the PB2 gene of avian H5N1 influenza virus. J Virol. 2013 Jul 17..  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Virol. 2013 Jul 17. (via http://www.ncbi.nlm.nih.gov/pubmed/23864613)
The substitution of glutamic acid (E) for lysine (K) at position 627 of the PB2 protein of avian H5N1 viruses has been identified as a virulence and host-range determinant for infection of mammals. Here, ...

BLUMENKRANTZ D, Roberts KL, Shelton H, Lycett S, e. The short stalk length of HPAI H5N1 influenza neuraminidase limits transmission of pandemic H1N1 virus in ferrets. J Virol. 2013 Jul 17.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Virol. 2013 Jul 17 (via http://www.ncbi.nlm.nih.gov/pubmed/23864615)
H5N1 influenza viruses pose a pandemic threat but have not acquired the ability to support sustained transmission between mammals in nature. The restrictions to transmissibility of avian influenza viruses ...

TE VELTHUIS AJ, Turrell L, Vreede FT, Fodor E, et. Uncoupling of influenza A virus transcription and replication through mutation of the unpaired adenosine in the vRNA promoter. J Virol. 2013 Jul 17..  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Virol. 2013 Jul 17. (via http://www.ncbi.nlm.nih.gov/pubmed/23864616)
Transcription and replication of the influenza A virus RNA genome are mediated by the viral RNA polymerase from a promoter consisting of the partially base-paired 3' and 5' termini of viral genome segments. ...

VIJAYKRISHNA D, Deng YM, Su YC, Fourment M, et al. The recent establishment of North American H10 lineage influenza viruses in Australian wild waterfowl and the evolution of Australian avian influenza viruses. J Virol. 2013 Jul 17.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Virol. 2013 Jul 17 (via http://www.ncbi.nlm.nih.gov/pubmed/23864623)
Influenza A H10N7 virus with a hemagglutinin gene of North American origin was detected in Australian chickens and poultry abattoir workers in New South Wales in 2010 and in chickens in Queensland on a ...

PASCUA PN, Song MS, Kwon HI, Lim GJ, et al. The homologous tripartite viral RNA polymerase of A/swine/Korea/CT1204/2009(H1N2) influenza virus synergistically drives efficient replication and promotes respiratory-droplet transmission in ferrets. J Virol. 2013 Jul 17..  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Virol. 2013 Jul 17. (via http://www.ncbi.nlm.nih.gov/pubmed/23864624)
We previously reported that A/swine/Korea/1204/2009(H1N2) virus was virulent and transmissible in ferrets in which the respiratory droplet'transmissible virus (CT-Sw/1204) had acquired simultaneous HAD225G ...

CHAVES SS, Aragon D, Bennett N, Cooper T, et al. Patients hospitalized with laboratory-confirmed influenza during the 2010-2011 influenza season: exploring disease severity by virus type and subtype. J Infect Dis. 2013 Jul 17..  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Infect Dis. 2013 Jul 17. (via http://www.ncbi.nlm.nih.gov/pubmed/23863950)
Background.?The 2010-11 influenza season was dominated by influenza A(H3N2) virus, but influenza A(H1N1)pdm09 (pH1N1) and B viruses co-circulated. This provided an opportunity to explore within-season ...

LI Y, Myers JL, Bostick DL, Sullivan CB, et al. Immune history shapes specificity of pandemic H1N1 influenza antibody responses. J Exp Med. 2013 Jul 15.  Abstract  
submitted by kickingbird at Jul, 29, 2013 from J Exp Med. 2013 Jul 15 (via http://www.ncbi.nlm.nih.gov/pubmed/23857983)
Human antibody responses against the 2009 pandemic H1N1 (pH1N1) virus are predominantly directed against conserved epitopes in the stalk and receptor-binding domain of the hemagglutinin (HA) protein. This ...

Qianyi Zhang,etc.,al. H7N9 Influenza Viruses Are Transmissible in Ferrets by Respiratory Droplet. Science DOI: 10.1126/science.1240532.  Abstract  
submitted by kickingbird at Jul, 20, 2013 from Science DOI: 10.1126/science.1240532 (via http://www.sciencemag.org/content/early/2013/07/17/science.1)
A newly emerged H7N9 virus has caused 132 human infections with 37 deaths in China since 18 February 2013. Control measures in H7N9 virus–positive live poultry markets have reduced the number of infections; ...

Zhou J, Wang D, Gao R, Zhao B, Song J, Qi X, Zhang. Biological features of novel avian influenza A (H7N9) virus. Nature. 2013 Jul 3.  Abstract  
submitted by kickingbird at Jul, 15, 2013 from Nature. 2013 Jul 3 (via http://www.nature.com)
Human infection associated with a novel reassortant avian influenza H7N9 virus has recently been identified in China. A total of 132 confirmed cases and 39 deaths have been reported. Most patients presented ...

Zhu H, Wang D, Kelvin DJ, Li L, Zheng Z, Yoon SW,. Infectivity, Transmission, and Pathology of Human-Isolated H7N9 Influenza Virus in Ferrets and Pigs. Science. 2013 Jul 12;341(6142):183-186..  Abstract  
submitted by kickingbird at Jul, 15, 2013 from Science. 2013 Jul 12;341(6142):183-186. (via http://www.ncbi.nlm.nih.gov/pubmed/23704376)
The emergence of the H7N9 influenza virus in humans in Eastern China has raised concerns that a new influenza pandemic could occur. Here, we used a ferret model to evaluate the infectivity and transmissibility ...

Zhu W, Yang S, Guo Y, Yang L, Bai T, Yu Z, Li X, L. Imported pigs may have introduced the first classical swine influenza viruses into Mainland China. Infect Genet Evol. 2013 Jul;17:142-6..  Abstract  
submitted by kickingbird at Jul, 15, 2013 from Infect Genet Evol. 2013 Jul;17:142-6. (via http://www.ncbi.nlm.nih.gov/pubmed/23567818)
Abstract OBJECTIVES: The first classical swine influenza A H1N1 viruses were isolated in Mainland China in 1991. To aid surveillance of swine influenza viruses as part of pandemic preparedness, we ...

WATANABE T, Tisoncik-Go J, Tchitchek N, Watanabe S. 1918 Influenza virus hemagglutinin (HA) and the viral RNA polymerase complex enhance viral pathogenicity, but only HA induces aberrant host responses in mice. J Virol. 2013 May;87(9):5239-54.  Abstract  
submitted by kickingbird at Jul, 14, 2013 from J Virol. 2013 May;87(9):5239-54 (via http://www.ncbi.nlm.nih.gov/pubmed/23449804)
The 1918 pandemic influenza virus was the most devastating infectious agent in human history, causing fatal pneumonia and an estimated 20 to 50 million deaths worldwide. Previous studies indicated a prominent ...

MASIC A, Pyo HM, Babiuk S, Zhou Y, et al. An eight-segment swine influenza virus harbouring H1 and H3 hemagglutinins is attenuated and protective against H1N1 and H3N2 subtypes in pigs. J Virol. 2013 Jul 10..  Abstract  
submitted by kickingbird at Jul, 14, 2013 from J Virol. 2013 Jul 10. (via http://www.ncbi.nlm.nih.gov/pubmed/23843633)
Swine influenza virus (SIV) infections continue to cause production losses in the agricultural industry in addition to being a human public health concern. The primary method to control SIV is through ...

ROBERTS KL, Leser GP, Ma C, Lamb RA, et al. The amphipathic helix of influenza A virus M2 protein is required for filamentous bud formation and scission of filamentous and spherical particles. J Virol. 2013 Jul 10.  Abstract  
submitted by kickingbird at Jul, 14, 2013 from J Virol. 2013 Jul 10 (via http://www.ncbi.nlm.nih.gov/pubmed/23843641)
Influenza virus assembles and buds at the infected-cell plasma membrane. This involves extrusion of the plasma membrane followed by scission of the bud, resulting in severing the nascent virion from its ...

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