Page 40 - Avian Virology: Current Research and Future Trends
P. 40
Avian Influenza Virus | 33
Lamb, R.A., Choppin, P.W., Chanock, R.M., and Lai, C.J. (1980). Mapping standardized, efficacious agricultural H5N1 vaccine by reverse genetics.
of the two overlapping genes for polypeptides NS1 and NS2 on RNA Virology 314, 580–590.
segment 8 of influenza virus genome. Proc. Natl. Acad. Sci. U.S.A. 77, Liu, Q., Mena, I., Ma, J., Bawa, B., Krammer, F., Lyoo, Y.S., Lang, Y.,
1857–1861. Morozov, I., Mahardika, G.N., Ma, W., et al. (2015a). Newcastle disease
Lamb, R.A., Lai, C.J., and Choppin, P.W. (1981). Sequences of mRNAs virus-vectored H7 and H5 live vaccines protect chickens from challenge
derived from genome RNA segment 7 of influenza virus: colinear and with H7N9 or H5N1 avian influenza viruses. J. Virol. 89, 7401–7408.
interrupted mRNAs code for overlapping proteins. Proc. Natl. Acad. Sci. Liu, T., Muller, J., and Ye, Z. (2002). Association of influenza virus
U.S.A. 78, 4170–4174. matrix protein with ribonucleoproteins may control viral growth and
Lamb, R.A., Zebedee, S.L., and Richardson, C.D. (1985). Influenza virus M2 morphology. Virology 304, 89–96.
protein is an integral membrane protein expressed on the infected-cell Liu, W.C., Lin, C.Y., Tsou, Y.T., Jan, J.T., and Wu, S.C. (2015b). Cross-reactive
surface. Cell 40, 627–633. neuraminidase-inhibiting antibodies elicited by immunization with
Latham, T., and Galarza, J.M. (2001). Formation of wild-type and chimeric recombinant neuraminidase proteins of H5N1 and Pandemic H1N1
influenza virus-like particles following simultaneous expression of Influenza A Viruses. J. Virol. 89, 7224–7234. https://doi.org/10.1128/
only four structural proteins. J. Virol. 75, 6154–6165. https://doi. JVI.00585-15
org/10.1128/JVI.75.13.6154-6165.2001 Lopez-Martinez, I., Balish, A., Barrera-Badillo, G., Jones, J., Nuñez-García,
Laudert, E., Sivanandan, V., and Halvorson, D. (1993). Effect of an H5N1 T.E., Jang, Y., Aparicio-Antonio, R., Azziz-Baumgartner, E., Belser, J.A.,
avian influenza virus infection on the immune system of mallard ducks. Ramirez-Gonzalez, J.E., et al. (2013). Highly pathogenic avian influenza
Avian Dis. 37, 845–853. A(H7N3) virus in poultry workers, Mexico, 2012. Emerging Infect. Dis.
Le, Q.M., Sakai-Tagawa, Y., Ozawa, M., Ito, M., and Kawaoka, Y. (2009). 19, 1531–1534. https://doi.org/10.3201/eid1909.130087
Selection of H5N1 influenza virus PB2 during replication in humans. J. Lucas, S.J., Barry, D.W., and Kind, P. (1978). Antibody production and
Virol. 83, 5278–5281. https://doi.org/10.1128/JVI.00063-09 protection against influenza virus in immunodeficient mice. Infect.
Lee, C.H., Byun, S.H., Lee, Y.J., and Mo, I.P. (2012). Genetic evolution of Immun. 20, 115–119.
the H9N2 avian influenza virus in Korean poultry farms. Virus Genes 45, Ludwig, S., Planz, O., Pleschka, S., and Wolff, T. (2003).
38–47. https://doi.org/10.1007/s11262-012-0737-6 Influenza-virus-induced signaling cascades: targets for antiviral therapy?
Lee, C.W., Senne, D.A., Linares, J.A., Woolcock, P.R., Stallknecht, D.E., Trends Mol. Med. 9, 46–52.
Spackman, E., Swayne, D.E., and Suarez, D.L. (2004). Characterization Luo, H., Wang, S., Yuan, T., Liu, J., Yao, L., Pan, X., Long, X., Wu, J., and Shen,
of recent H5 subtype avian influenza viruses from US poultry. Avian F. (2018). Clinical characteristics from co-infection with avian influenza
Pathol. 33, 288–297. https://doi.org/10.1080/0307945042000203407 A H7N9 and Mycoplasma pneumoniae: a case report. J. Med. Case Rep.
Lee, D.H., Torchetti, M.K., Winker, K., Ip, H.S., Song, C.S., and Swayne, D.E. 12, 77. https://doi.org/10.1186/s13256-018-1583-5
(2015). Intercontinental spread of Asian-origin H5N8 to North America Lupiani, B., and Reddy, S.M. (2009). The history of avian influenza.
through Beringia by migratory birds. J. Virol. 89, 6521–6524. https:// Comp. Immunol. Microbiol. Infect. Dis. 32, 311–323. https://doi.
doi.org/10.1128/JVI.00728-15 org/10.1016/j.cimid.2008.01.004
Lee, D.H., Bertran, K., Kwon, J.H., and Swayne, D.E. (2017). Evolution, Lvov, D.K., Shchelkanov, M.Y., Prilipov, A.G., Vlasov, N.A., Fedyakina, I.T.,
global spread, and pathogenicity of highly pathogenic avian influenza Deryabin, P.G., Alkhovsky, S.V., Grebennikova, T.V., Zaberezhny, A.D.,
H5Nx clade 2.3.4.4. J. Vet. Sci. 18, 269–280. https://doi.org/10.4142/ and Suarez, D.L. (2010). Evolution of highly pathogenic avian influenza
jvs.2017.18.S1.269 H5N1 virus in natural ecosystems of northern Eurasia (2005-08). Avian
Lei, F., and Shi, W. (2011). Prospective of genomics in revealing Dis. 54 (Suppl. 1), 483–495. https://doi.org/10.1637/8893-04250
transmission, reassortment and evolution of wildlife-borne avian 9-Review.1
influenza A (H5N1) Viruses. Curr. Genomics 12, 466–474. https://doi. Lyon, J.A., and Hinshaw, V.S. (1991). Replication of influenza A viruses in
org/10.2174/138920211797904052 an avian macrophage cell line. J. Gen. Virol. 72, 2011–2013. https://doi.
Li, J., Zu Dohna, H., Cardona, C.J., Miller, J., and Carpenter, T.E. (2011). org/10.1099/0022-1317-72-8-2011
Emergence and genetic variation of neuraminidase stalk deletions in MacDonald, M.R., Xia, J., Smith, A.L., and Magor, K.E. (2008). The duck
avian influenza viruses. PLOS ONE 6, e14722. https://doi.org/10.1371/ toll like receptor 7: genomic organization, expression and function. Mol.
journal.pone.0014722 Immunol. 45, 2055–2061.
Li, Q., Sun, X., Li, Z., Liu, Y., Vavricka, C.J., Qi, J., and Gao, G.F. (2012). Makarova, N.V., Kaverin, N.V., Krauss, S., Senne, D., and Webster,
Structural and functional characterization of neuraminidase-like R.G. (1999). Transmission of Eurasian avian H2 influenza virus to
molecule N10 derived from bat influenza A virus. Proc. Natl. Acad. Sci. shorebirds in North America. J. Gen. Virol. 80, 3167–3171. https://doi.
U.S.A. 109, 18897–18902. https://doi.org/10.1073/pnas.1211037109 org/10.1099/0022-1317-80-12-3167
Li, S., Min, J.-Y., Krug, R.M., and Sen, G.C. (2006). Binding of the influenza Makarova, N.V., Ozaki, H., Kida, H., Webster, R.G., and Perez, D.R. (2003).
A virus NS1 protein to PKR mediates the inhibition of its activation by Replication and transmission of influenza viruses in Japanese quail.
either PACT or double-stranded RNA. Virology 349, 13–21. Virology 310, 8–15.
Li, W., Chen, H., Sutton, T., Obadan, A., and Perez, D.R. (2014a). Interactions Malik Peiris, J.S. (2009). Avian influenza viruses in humans. Rev. Sci. Tech.
between the influenza A virus RNA polymerase components and 28, 161–173.
retinoic acid-inducible gene I. J. Virol. 88, 10432–10447. https://doi. Mansell, A., Smith, R., Doyle, S.L., Gray, P., Fenner, J.E., Crack, P.J.,
org/10.1128/JVI.01383-14 Nicholson, S.E., Hilton, D.J., O’Neill, L.A., and Hertzog, P.J. (2006).
Li, Y., Chen, S., Zhang, X., Fu, Q., Zhang, Z., Shi, S., Zhu, Y., Gu, M., Peng, Suppressor of cytokine signaling 1 negatively regulates Toll-like receptor
D., and Liu, X. (2014b). A 20-amino-acid deletion in the neuraminidase signaling by mediating Mal degradation. Nat. Immunol. 7, 148–155.
stalk and a five-amino-acid deletion in the NS1 protein both contribute Manzoor, R., Igarashi, M., and Takada, A. (2017). Influenza A virus M2
to the pathogenicity of H5N1 avian influenza viruses in mallard ducks. protein: roles from ingress to Egress. Int. J. Mol. Sci. 18, E2649.
PLOS ONE 9, e95539. https://doi.org/10.1371/journal.pone.0095539 Mao, H., Tu, W., Qin, G., Law, H.K., Sia, S.F., Chan, P.L., Liu, Y., Lam, K.T.,
Lian, L., Ciraci, C., Chang, G., Hu, J., and Lamont, S.J. (2012). Zheng, J., Peiris, M., et al. (2009). Influenza virus directly infects human
NLRC5 knockdown in chicken macrophages alters response to natural killer cells and induces cell apoptosis. J. Virol. 83, 9215–9222.
LPS and poly (I:C) stimulation. BMC Vet. Res. 8, 23. https://doi. https://doi.org/10.1128/JVI.00805-09
org/10.1186/1746-6148-8-23 Mao, H., Tu, W., Liu, Y., Qin, G., Zheng, J., Chan, P.L., Lam, K.T., Peiris,
Lin, D., Lan, J., and Zhang, Z. (2007). Structure and function of the NS1 J.S., and Lau, Y.L. (2010). Inhibition of human natural killer cell activity
protein of influenza A virus. Acta Biochim. Biophys. Sin. 39, 155–162. by influenza virions and hemagglutinin. J. Virol. 84, 4148–4157. https://
Liu, M., He, S., Walker, D., Zhou, N., Perez, D.R., Mo, B., Li, F., Huang, X., doi.org/10.1128/JVI.02340-09
Webster, R.G., and Webby, R.J. (2003a). The influenza virus gene pool in Marazzi, I., Ho, J.S., Kim, J., Manicassamy, B., Dewell, S., Albrecht, R.A.,
a poultry market in South central china. Virology 305, 267–275. Seibert, C.W., Schaefer, U., Jeffrey, K.L., Prinjha, R.K., et al. (2012).
Liu, M., Wood, J.M., Ellis, T.M., Krauss, S., Seiler, J.P., Johnson, C., Hoffmann, Suppression of the antiviral response by an influenza histone mimic.
E., Humberd, J., Hulse, D., Zhang, Y., et al. (2003b). Preparation of a Nature 483, 428–433. https://doi.org/10.1038/nature10892