» Articles » PMID: 23740978

N-linked Glycosylation of the Hemagglutinin Protein Influences Virulence and Antigenicity of the 1918 Pandemic and Seasonal H1N1 Influenza A Viruses

Overview
Journal J Virol
Date 2013 Jun 7
PMID 23740978
Citations 58
Authors
Affiliations
Soon will be listed here.
Abstract

The hemagglutinin (HA) protein is a major virulence determinant for the 1918 pandemic influenza virus; however, it encodes no known virulence-associated determinants. In comparison to seasonal influenza viruses of lesser virulence, the 1918 H1N1 virus has fewer glycosylation sequons on the HA globular head region. Using site-directed mutagenesis, we found that a 1918 HA recombinant virus, of high virulence, could be significantly attenuated in mice by adding two additional glycosylation sites (asparagine [Asn] 71 and Asn 286) on the side of the HA head. The 1918 HA recombinant virus was further attenuated by introducing two additional glycosylation sites on the top of the HA head at Asn 142 and Asn 172. In a reciprocal experimental approach, deletion of HA glycosylation sites (Asn 142 and Asn 177, but not Asn 71 and Asn 104) from a seasonal influenza H1N1 virus, A/Solomon Islands/2006 (SI/06), led to increased virulence in mice. The addition of glycosylation sites to 1918 HA and removal of glycosylation sites from SI/06 HA imposed constraints on the theoretical structure surrounding the glycan receptor binding sites, which in turn led to distinct glycan receptor binding properties. The modification of glycosylation sites for the 1918 and SI/06 viruses also caused changes in viral antigenicity based on cross-reactive hemagglutinin inhibition antibody titers with antisera from mice infected with wild-type or glycan mutant viruses. These results demonstrate that glycosylation patterns of the 1918 and seasonal H1N1 viruses directly contribute to differences in virulence and are partially responsible for their distinct antigenicity.

Citing Articles

Viral entry mechanisms: the role of molecular simulation in unlocking a key step in viral infections.

Valerio M, Buga C, Melo M, Soares C, Lousa D FEBS Open Bio. 2024; 15(2):269-284.

PMID: 39402013 PMC: 11788750. DOI: 10.1002/2211-5463.13908.


Global Prevalence and Hemagglutinin Evolution of H7N9 Avian Influenza Viruses from 2013 to 2022.

Liu Q, Zeng H, Wu X, Yang X, Wang G Viruses. 2023; 15(11).

PMID: 38005891 PMC: 10674656. DOI: 10.3390/v15112214.


Fusion Protein Consisting of Hemagglutinin Small Subunit and Truncated Nucleoprotein as a Universal Influenza Vaccine Candidate: Starting In-Silico Evaluation Toward Expression.

Morshedi F, Nazeri E, Saleh M, Farahmand B J Pharm Bioallied Sci. 2023; 15(1):57-62.

PMID: 37313538 PMC: 10259740. DOI: 10.4103/jpbs.JPBS_114_18.


Characterization of Influenza A(H1N1)pdm09 Viruses Isolated in the 2018-2019 and 2019-2020 Influenza Seasons in Japan.

Soga T, Duong C, Pattinson D, Sakai-Tagawa Y, Tokita A, Izumida N Viruses. 2023; 15(2).

PMID: 36851749 PMC: 9968111. DOI: 10.3390/v15020535.


Breathing and Tilting: Mesoscale Simulations Illuminate Influenza Glycoprotein Vulnerabilities.

Casalino L, Seitz C, Lederhofer J, Tsybovsky Y, Wilson I, Kanekiyo M ACS Cent Sci. 2023; 8(12):1646-1663.

PMID: 36589893 PMC: 9801513. DOI: 10.1021/acscentsci.2c00981.


References
1.
Cherry J, Lipman D, Nikolskaya A, Wolf Y . Evolutionary dynamics of N-glycosylation sites of influenza virus hemagglutinin. PLoS Curr. 2009; 1:RRN1001. PMC: 2762648. DOI: 10.1371/currents.rrn1001. View

2.
Kawaoka Y, Webster R . Sequence requirements for cleavage activation of influenza virus hemagglutinin expressed in mammalian cells. Proc Natl Acad Sci U S A. 1988; 85(2):324-8. PMC: 279540. DOI: 10.1073/pnas.85.2.324. View

3.
Jayaraman A, Koh X, Li J, Raman R, Viswanathan K, Shriver Z . Glycosylation at Asn91 of H1N1 haemagglutinin affects binding to glycan receptors. Biochem J. 2012; 444(3):429-35. PMC: 3374573. DOI: 10.1042/BJ20112101. View

4.
Maurizi C . Why was the 1918 influenza pandemic so lethal? The possible role of a neurovirulent neuraminidase. Med Hypotheses. 1985; 16(1):1-5. DOI: 10.1016/0306-9877(85)90034-9. View

5.
Igarashi M, Ito K, Yoshida R, Tomabechi D, Kida H, Takada A . Predicting the antigenic structure of the pandemic (H1N1) 2009 influenza virus hemagglutinin. PLoS One. 2010; 5(1):e8553. PMC: 2797400. DOI: 10.1371/journal.pone.0008553. View