The Evolutionary Pattern of Glycosylation Sites in Influenza Virus (H5N1) Hemagglutinin and Neuraminidase

被引:36
作者
Chen, Wentian [1 ]
Zhong, Yaogang [1 ]
Qin, Yannan [1 ]
Sun, Shisheng [2 ]
Li, Zheng [1 ]
机构
[1] NW Univ Xian, Coll Life Sci, Lab Funct Glyc, Xian 710069, Peoples R China
[2] Johns Hopkins Univ, Dept Pathol, Div Clin Chem, Baltimore, MD USA
关键词
A VIRUS; ENDOPLASMIC-RETICULUM; ANTIGENIC SITES; MOLECULAR-BASIS; HONG-KONG; VIRULENCE; OUTBREAK; PROTEIN; RESISTANT; INFECTION;
D O I
10.1371/journal.pone.0049224
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Two glycoproteins, hemagglutinin (HA) and neuraminidase (NA), on the surface of influenza viruses play crucial roles in transfaunation, membrane fusion and the release of progeny virions. To explore the distribution of N-glycosylation sites (glycosites) in these two glycoproteins, we collected and aligned the amino acid sequences of all the HA and NA subtypes. Two glycosites were located at HA0 cleavage sites and fusion peptides and were strikingly conserved in all HA subtypes, while the remaining glycosites were unique to their subtypes. Two to four conserved glycosites were found in the stalk domain of NA, but these are affected by the deletion of specific stalk domain sequences. Another highly conserved glycosite appeared at the top center of tetrameric global domain, while the others glycosites were distributed around the global domain. Here we present a detailed investigation of the distribution and the evolutionary pattern of the glycosites in the envelope glycoproteins of IVs, and further focus on the H5N1 virus and conclude that the glycosites in H5N1 have become more complicated in HA and less influential in NA in the last five years.
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页数:11
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共 76 条
[61]   Positive selection for gains of N-linked glycosylation sites in hemagglutinin during evolution of H3N2 human influenza A virus [J].
Suzuki, Yoshiyuki .
GENES & GENETIC SYSTEMS, 2011, 86 (05) :287-294
[62]   MEGA4: Molecular evolutionary genetics analysis (MEGA) software version 4.0 [J].
Tamura, Koichiro ;
Dudley, Joel ;
Nei, Masatoshi ;
Kumar, Sudhir .
MOLECULAR BIOLOGY AND EVOLUTION, 2007, 24 (08) :1596-1599
[63]  
Tong SX, 2012, PNAS
[64]   Influenza genome diversity and evolution [J].
Tsai, Kun-Nan ;
Chen, Guang-Wu .
MICROBES AND INFECTION, 2011, 13 (05) :479-488
[65]   Structural biology of HIV [J].
Turner, BG ;
Summers, MF .
JOURNAL OF MOLECULAR BIOLOGY, 1999, 285 (01) :1-32
[66]   THE STRUCTURE OF THE COMPLEX BETWEEN INFLUENZA-VIRUS NEURAMINIDASE AND SIALIC-ACID, THE VIRAL RECEPTOR [J].
VARGHESE, JN ;
MCKIMMBRESCHKIN, JL ;
CALDWELL, JB ;
KORTT, AA ;
COLMAN, PM .
PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 1992, 14 (03) :327-332
[67]   Virus glycosylation: role in virulence and immune interactions [J].
Vigerust, David J. ;
Shepherd, Virginia L. .
TRENDS IN MICROBIOLOGY, 2007, 15 (05) :211-218
[68]  
Viswanathan K, 2010, PLOS ONE, V5
[69]   Interdependence of hemagglutinin glycosylation and neuraminidase as regulators of influenza virus growth: a study by reverse genetics [J].
Wagner, R ;
Wolff, T ;
Herwig, A ;
Pleschka, S ;
Klenk, HD .
JOURNAL OF VIROLOGY, 2000, 74 (14) :6316-6323
[70]   N-glycans attached to hemagglutinin in the head region and the stem domain control growth of influenza viruses by different mechanisms [J].
Wagner, R ;
Heuer, D ;
Wolff, T ;
Klenk, HD .
OPTIONS FOR THE CONTROL OF INFLUENZA IV, 2001, 1219 :375-382