Scientia Agricultura Sinica ›› 2013, Vol. 46 ›› Issue (1): 179-186.doi: 10.3864/j.issn.0578-1752.2013.01.021
• VETERINARY SCIENCE • Previous Articles Next Articles
TONG Chao, CHEN Ning, LIAO Xun, YUAN Xue-Mei, LI Xiao-Liang, FANG Wei-Huan
| [1]Liu L, Xia H, Wahlberg N, Belak S, Baule C. Phylogeny, classification and evolutionary insights into pestiviruses. Virology, 2009, 385(2):351-357.[2]Beer M, Reimann I, Hoffmann B, Depner K. Novel marker vaccines against classical swine fever. Vaccine, 2007, 25(30):5665-5670.[3]王琴. 猪瘟研究进展,中国兽药杂志, 2012, 47(9): 58-61.Wang Q. Research of the classical swine fever. Chinese Journal of Veterinary Drug, 2012, 47(9): 58-61. (in Chinese)[4]王琴. 猪瘟流行现状及中国猪瘟净化策略. 中国猪业, 2012(10): 45-47.Wang Q. Classical swine fever current situation and control strategies on resent China. China Swine Industry, 2012(10): 45-47. (in Chinese)[5]Tu C, Lu Z, Li H, Yu X, Liu X, Li Y, Zhang H, Yin. Z. Phylogenetic comparison of classical swine fever virus in China. Virus Research, 2001, 81(1-2): 29-37.[6]Luo T, Liao S, Wu X, Feng L, Yuan Z, Li H, Liang J, Meng X, Zhang H. Phylogenetic analysis of the E2 gene of classical swine fever virus from the Guangxi Province of southern China. Virus Genes, 2011, 42(3): 347-354.[7]Chen N, Hu H, Zhang Z, Shuai J, Jiang L, Fang W. Genetic diversity of the envelope glycoprotein E2 of classical swine fever virus: recent isolates branched away from historical and vaccine strains. Veterinary Microbiology, 2008. 127(3/4): 286-299.[8]Reimann I, Depner K, Trapp S, Beer M. An avirulent chimeric pestivirus with altered cell tropism protects pigs against lethal infection with classical swine fever virus. Virology, 2004, 322(1): 143-157.[9]van Gennip H G, van Rijn P A, Widjojoatmodjo M N, de Smit A J, Moormann R J. Chimeric classical swine fever viruses containing envelope protein E(RNS) or E2 of bovine viral diarrhoea virus protect pigs against challenge with CSFV and induce a distinguishable antibody response. Vaccine, 2000, 19(4/5): 447-459.[10]Kortekaas J, Vloet RP, Weerdmeester K, Ketelaar J, van Eijk M, Loeffen W L. Rational design of a classical swine fever C-strain vaccine virus that enables the differentiation between infected and vaccinated animals. Journal of Virological Methods, 2010, 163(2): 175-185.[11]Kortekaas J, Ketelaar J, Vloet R P, Loeffen W L. Protective efficacy of a Classical swine fever virus C-strain deletion mutant and ability to differentiate infected from vaccinated animals. Veterinary Microbiology, 2011, 147(1-2):11-18.[12]Reimann I, Depner K, Utke K, Leifer I, Lange E, Beer M. Characterization of a new chimeric marker vaccine candidate with a mutated antigenic E2-epitope. Veterinary Microbiology, 2010, 142(1-2):45-50.[13]Sun Y, Li H Y, Tian D Y, Han Q Y, Zhang X, Li N, Qiu H J. A novel alphavirus replicon-vectored vaccine delivered by adenovirus induces sterile immunity against classical swine fever. Vaccine, 2011, 29(46): 8364-8372.[14]Sun Y, Li N, Li H Y, Li M, Qiu H J. Enhanced immunity against classical swine fever in pigs induced by prime-boost immunization using an alphavirus replicon-vectored DNA vaccine and a recombinant adenovirus. Veterinary Immunology and Immunopathology, 2010, 137(1-2):20-27.[15]Chen N, Tong C, Li D, Wan J, Yuan X, Li X, Peng J R, Fang W H. Antigenic analysis of classical swine fever virus E2 glycoprotein using pig antibodies identifies residues contributing to antigenic variation of the vaccine C-strain and group 2 strains circulating in China. Journal of Virology, 2010, 7(1): 378.[16]Chen N, Li D, Yuan X, Li X, Hu H, Zhu B, Wan X Y, Fang W H. Genetic characterization of E2 gene of classical swine fever virus by restriction fragment length polymorphism and phylogenetic analysis. Virus Genes, 2010, 40(3): 389-396.[17]袁雪梅, 陈宁, 陈宇, 王萍, 童超, 李得江, 万婧, 李肖梁, 方维焕. 两种荧光定量PCR方法检测猪瘟病毒的比较及应用. 中国动物传染病学报, 2010, 18(3): 66-72.Yuan X M, Chen N, Chen Y, Wang P, Tong C, Li D J, Wan J, Li X L, Fang W H. Comparison and application of Sybr green and Taqman based real time PCR assays for detection of classical swine fever virus. Chinese Journal of Animal Infectious Diseases, 2010, 18(3): 66-72. (in Chinese)[18]Becher P. Avalos Ramirez R, Orlich M, Cedillo Rosales S, König M, Schweizer M, Stalder H, Schirrmeier H, Thiel H J. Genetic and antigenic characterization of novel pestivirus genotypes: implications for classification. Virology, 2003, 311(1): 96-104.[19]Bouma A, de Smit A J, de Kluijver E P, Terpstra C, Moormann R J. Efficacy and stability of a subunit vaccine based on glycoprotein E2 of classical swine fever virus. Veterinary Microbiology, 1999, 66(2):101-114.[20]van Rijn P A, van Gennip H G, Moormann R J. An experimental marker vaccine and accompanying serological diagnostic test both based on envelope glycoprotein E2 of classical swine fever virus (CSFV). Vaccine, 1999, 17(5): 433-440.[21]van Rijn P A, Bossers A, Wensvoort G, Moormann R J. Classical swine fever virus (CSFV) envelope glycoprotein E2 containing one structural antigenic unit protects pigs from lethal CSFV challenge. Journal of General Virology, 1996, 77 (11): 2737-2745.[22]Risatti G R, Borca M V, Kutish G F, Lu Z, Holinka L G, French R A. The E2 glycoprotein of classical swine fever virus is a virulence determinant in swine. Journal of Virology, 2005, 79(6): 3787-3796.[23]Risatti G R, Holinka L G, Fernandez Sainz I, Carrillo C, Kutish G F, Lu Z. Mutations in the carboxyl terminal region of E2 glycoprotein of classical swine fever virus are responsible for viral attenuation in swine. Virology, 2007, 364(2): 371-382. |
| [1] | DONG Yu, WU Qian, FENG Xuan, ZHENG YinYing, CUI BaiMing. A Novel Plasmid pEA60 of Erwinia amylovora Enhances the Pathogenicity of Strains by Regulating the Synthesis of Virulence Factors [J]. Scientia Agricultura Sinica, 2026, 59(5): 996-1007. |
| [2] | CONG QiQi, ZHANG JingYi, MENG XiangLong, DAI PengBo, LI Bo, HU TongLe, WANG ShuTong, CAO KeQiang, WANG YaNan. Identification of Hypovirus in Apple Ring Rot Fungus Botryosphaeria dothidea and Detection of Virus-Carrying Status in China [J]. Scientia Agricultura Sinica, 2025, 58(3): 478-492. |
| [3] | TONG ZhaoYang, LIU WenHua, ZHANG GuoXin, DONG ChunYan, ZHANG YanXia, XU XiaoWei, HE Dong, LIU HeChun, LI Yang, WANG FengTao, FENG Jing, YAO XiaoBo, LIU MeiJin, LIN RuiMing. The Relationship Between Occurrence of Hulless Barley Ear Rot and Population Migration of Grass Mite (Siteroptes spp.) [J]. Scientia Agricultura Sinica, 2025, 58(3): 493-506. |
| [4] | YANG WenJuan, GAO JiaCheng, WANG YanTing, LI Yan, GUO Ming, WANG JunCheng, MENG YaXiong, WANG HuaJun, SI ErJing. Function of Effector Pg00778 Regulation on the Pathogenicity of Pyrenophora graminea to Barley [J]. Scientia Agricultura Sinica, 2025, 58(15): 3020-3035. |
| [5] | DONG ZaiFang, DING TengTeng, SHAN YiXuan, LI HongLian, CHEN LinLin, XING XiaoPing. Autophagy-Related Gene FpAtg3 Involves in Growth and Pathogenicity of Fusarium pseudograminearum [J]. Scientia Agricultura Sinica, 2024, 57(6): 1080-1090. |
| [6] | ZHANG AiHong, YANG Fei, ZHAO YuanYe, ZHAO YiHan, DI DianPing, MIAO HongQin. Pathogenicity and Epidemic Risk of Barley Yellow Striate Mosaic Virus [J]. Scientia Agricultura Sinica, 2024, 57(23): 4686-4697. |
| [7] | WANG Yuan, DU MengDan, LI ZhengGang, SHE XiaoMan, YU Lin, LAN GuoBing, DING ShanWen, HE ZiFu, TANG YaFei. Identification of Pathogen Causing Tomato White Tip and Curl Leaf Disease and Its Pathogenicity in Guangdong Province [J]. Scientia Agricultura Sinica, 2024, 57(12): 2350-2363. |
| [8] | ZHANG Jian, ZHAO BinSen, FENG Hao, HUANG LiLi. Function and Mechanism Analysis of Vm-milRN7 Regulating the Pathogenicity of Valsa mali [J]. Scientia Agricultura Sinica, 2024, 57(10): 1930-1942. |
| [9] | GAO XiaoXiao, TU LiQin, YANG Liu, LIU YaNan, GAO DanNa, SUN Feng, LI Shuo, ZHANG SongBai, JI YingHua. Construction of an Infectious Clone of Tobacco Mild Green Mosaic Virus Isolate Infecting Pepper from Jiangsu Based on Genomic Clone [J]. Scientia Agricultura Sinica, 2023, 56(8): 1494-1502. |
| [10] | GONG AnDong, LEI YinYu, WU NanNan, LIU JingRong, SONG MengGe, ZHANG YiMei, YANG Guang, YANG Peng. The Effect of 3-Oxyacyl ACP Reductase Gene FgOAR1 on the Growth, Development and Pathogenicity of Fusarium graminearum [J]. Scientia Agricultura Sinica, 2023, 56(24): 4854-4865. |
| [11] | LI HuiXin, SONG WenPing, HAN ZongXi, LIU ShengWang. Isolation and Pathogenicity of Fowl Adenovirus Serotype 8a Strain [J]. Scientia Agricultura Sinica, 2023, 56(16): 3226-3236. |
| [12] | HUANG JiaQuan,LI Li,WU FengNian,ZHENG Zheng,DENG XiaoLing. Proliferation of Two Types Prophage of ‘Candidatus Liberibacter asiaticus’ in Diaphorina citri and their Pathogenicity [J]. Scientia Agricultura Sinica, 2022, 55(4): 719-728. |
| [13] | YANG ShiMan, XU ChengZhi, XU BangFeng, WU YunPu, JIA YunHui, QIAO ChuanLing, CHEN HuaLan. Amino Acid of 225 in the HA Protein Affects the Pathogenicities of H1N1 Subtype Swine Influenza Viruses [J]. Scientia Agricultura Sinica, 2022, 55(4): 816-824. |
| [14] | ZHANG JinLong,ZHAO ZhiBo,LIU Wei,HUANG LiLi. The Function of Key T3SS Effectors in Pseudomonas syringae pv. actinidiae [J]. Scientia Agricultura Sinica, 2022, 55(3): 503-513. |
| [15] | LI ZhengGang,TANG YaFei,SHE XiaoMan,YU Lin,LAN GuoBing,HE ZiFu. Molecular Characteristics and Pathogenicity Analysis of Youcai Mosaic Virus Guangdong Isolate Infecting Radish [J]. Scientia Agricultura Sinica, 2022, 55(14): 2752-2761. |
|
||