Antigenic and immunogenic properties of truncated VP28 protein of white spot syndrome virus in Procambarus clarkii

被引:18
作者
Du, Hua-Hua [1 ]
Hou, Chong-Lin [1 ,2 ]
Wu, Xiao-Guo [1 ]
Xie, Rong-hui [3 ]
Wang, Yi-Zhen [1 ]
机构
[1] Zhejiang Univ, Feed Sci Inst, Coll Anim Sci, Hangzhou 310058, Zhejiang, Peoples R China
[2] Anim Husb & Vet Bur Jiande Dist Hangzhou, Jiande 311600, Peoples R China
[3] Zhejiang Prov Ctr Dis Prevent & Control, Hangzhou 310029, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
White spot syndrome virus; VP28; Antigenicity; Crayfish; Procambarus clarkii; WSSV; ENVELOPE PROTEINS; PENAEUS-MONODON; WSSV; INFECTION; PROTECTION; SHRIMP; IDENTIFICATION; DETERMINANTS; ANTIBODIES; CRAYFISH;
D O I
10.1016/j.fsi.2012.11.007
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Previous studies identify VP28 envelope protein of white spot syndrome virus (WSSV) as its main antigenic protein. Although implicated in viral infectivity, its functional role remains unclear. In the current study, we described the production of polyclonal antibodies to recombinant truncated VP28 proteins including deleted N-terminal (rVP28 Delta N), C-terminal (rVP28 Delta C) and middle (rVP28 Delta M). In antigenicity assays, antibodies developed from VP28 truncations lacking the N-terminal or middle regions showed significantly lowered neutralization of WSSV in crayfish, Procambarus clarkii. Further immunogenicity analysis showed reduced relative percent survival (RPS) in crayfish vaccinating with these truncations before challenge with WSSV. These results indicated that N-terminal (residues 1-27) and middle region (residues 35-95) were essential to maintain the neutralizing linear epitopes of VP28 and responsible in eliciting immune response. Thus, it is most likely that these regions are exposed on VP28, and will be useful for rational design of effective vaccines targeting VP28 of WSSV. (c) 2012 Elsevier Ltd. All rights reserved.
引用
收藏
页码:332 / 338
页数:7
相关论文
共 25 条
  • [1] Amend D.F., 1981, DEV BIOL STAND, V49, P447
  • [2] The SWISS-MODEL workspace: a web-based environment for protein structure homology modelling
    Arnold, K
    Bordoli, L
    Kopp, J
    Schwede, T
    [J]. BIOINFORMATICS, 2006, 22 (02) : 195 - 201
  • [3] BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
  • [4] Natural and experimental infection of white spot syndrome virus (WSSV) in benthic larvae of mud crab Scylla serrata
    Chen, LL
    Lo, CF
    Chiu, YL
    Chang, CF
    Kou, GH
    [J]. DISEASES OF AQUATIC ORGANISMS, 2000, 40 (02) : 157 - 161
  • [5] Pathogenicity of a baculovirus infection causing white spot syndrome in cultured penaeid shrimp in Taiwan
    Chou, HY
    Huang, CY
    Wang, CH
    Chiang, HC
    Lo, CF
    [J]. DISEASES OF AQUATIC ORGANISMS, 1995, 23 (03) : 165 - 173
  • [6] DeLano W.L., 2002, The PyMOL molecular graphics system
  • [7] Effect of hyperthermia on the replication of white spot syndrome virus (WSSV) in Procambarus clarkii
    Du, Hua-Hua
    Li, Wei-Fen
    Xu, Zi-Rong
    Kil, Zong-Su
    [J]. DISEASES OF AQUATIC ORGANISMS, 2006, 71 (02) : 175 - 178
  • [8] Improvement in a simple method for isolating white spot syndrome virus (WSSV) from the crayfish Procambarus clarkii
    Du, Huahua
    Fu, Linglin
    Xu, Yaxiang
    Kil, Zongsu
    Xu, Zirong
    [J]. AQUACULTURE, 2007, 262 (2-4) : 532 - 534
  • [9] Increased resistance to white spot syndrome virus in Procambarus clarkii by injection of envelope protein VP28 expressed using recombinant baculovirus
    Du, Huahua
    Xu, Zirong
    Wu, Xiaofeng
    Li, Weifen
    Dai, Wei
    [J]. AQUACULTURE, 2006, 260 (1-4) : 39 - 43
  • [10] A SEMIEMPIRICAL METHOD FOR PREDICTION OF ANTIGENIC DETERMINANTS ON PROTEIN ANTIGENS
    KOLASKAR, AS
    TONGAONKAR, PC
    [J]. FEBS LETTERS, 1990, 276 (1-2): : 172 - 174