Scientia Agricultura Sinica ›› 2013, Vol. 46 ›› Issue (20): 4362-4369.doi: 10.3864/j.issn.0578-1752.2013.20.020

• ANIMAL SCIENCE·VETERINARY SCIENCERE·SOURCE INSECT • Previous Articles     Next Articles

Advances in Study of Molecular Epidemiology of Porcine Epidemic Diarrhea Virus in China

 SHI  Biao-2, DONG  Shi-Juan-1, ZHU  Yu-Min-1, YU  Rui-Song-1, LI  Zhen-1   

  1. 1.Institute of Animal Science and Veterinary Medicine/ Shanghai Key Laboratory of Agricultural Genetics and Breeding, Shanghai Academy of Agricultural Sciences,Shanghai 201106
    2.Research Management Office, Shanghai Academy of Agricultural Sciences,Shanghai 201106
  • Received:2013-04-16 Online:2013-10-15 Published:2013-08-08

Abstract: Porcine epidemic diarrhea (PED) caused heavy economic losses to Chinese pig industry in 2010 and 2011. It was postulated that new variants of porcine epidemic diarrhea virus (PEDV) had played a major role because the vaccine made from previous strains failed to provide efficient protection for infected piglets. This review summarized the investigations on molecular epidemics of PEDV in this period of time in China and made a phylogenetic analysis with published complete genomic sequences. The analysis provided further evidence for the existence a novel genotype PEDV, which was not clustered with Chinese 1986 strains and European CV777 strain. The growing genetic difference between prevailing and vaccine strains should be the cause of vaccination failure as well as high death rate of piglets. Complete genomic sequence analysis showed the length difference of their polymerase (1ab) as well as their spike (S) genes. S gene had the highest mutation rate among the subgenomes, especially within a relatively short period of time. The analysis also implied that the new strains could evolve from domestic strains. Severe PED problem was reported early in 2006, therefore the 2010 to 2012 outbreak of PED could be the result of accumulation of pathogen mutations and adaptation, which also suggested, the importance of evolution surveillance of pathogens by national network.

Key words: porcine epidemic diarrhea , virus , molecular epidemiology

[1]Pensaert M B, de Bouck P A. New coronavirus-like particles associated with diarrhea in swine. Arch Virology, 1978, 58:243-247.

[2]宣华,邢德坤,王殿瀛,朱维正,赵凤玉,巩怀俊,费恩阁. 应用猪胎肠单层细胞培养猪流行性腹泻病毒的研究. 中国人民解放军兽医大学学报, 1984, 4(3):202-208.

Xuan H, Xing D K, Wang D Y, Zhu W Z, Zhao F Y, Gong H J, Fei E G. Culture of porcine epidemic diarrhea virus with porcine embryo monolayer cells. Chinese Journal of Veterinary Science, 1984, 4(3); 202-208. (in Chinese)

[3]马思齐,王明,冯力,李伟杰. 猪传染性胃肠炎与猪流行性腹泻二联氢氧化铝细胞灭活疫苗的研究.中国畜禽传染病, 1995, 6:23-27.

Ma S Q, Wang M, Feng L, Li W J. Development of bi-combined killed vaccine with aluminium hydroxide as adjuvant against transmissible gastroenteritis virus and porcine epidemic diarrhea virus. Chinese Journal of Preventive Veterinary Medicine, 1995, 6: 23-27. (in Chinese)

[4]佟有恩,冯力,李伟杰,朱远茂,王明,马思奇. 猪传染性胃肠炎与猪流行性腹泻病毒二联弱毒疫苗的研究. 中国预防兽医学报,1999, 21(6): 406-410.

Tong Y E, Feng L, Li W J, Zhu Y M, Wang M, Ma S Q. Deveopment of Bi-combined attenuated vaccine against transmissible gastroenteritis virus and porcine epidemic diarrhea virus. Chinese Journal of Preventive Veterinary Medicine, 1999, 21(6): 406-410. (in Chinese)

[5]Chen J F, Sun D B, Wang C B, Shi H Y, Cui X V C, Liu S W, Qiu H J, Feng L. Molecular characterization and phylogenetic analysis of membrane protein genes of porcine epidemic diarrhea virus isolates in China. Virus Genes, 2008, 36: 355-364.

[6]Sun R Q, Cai R J, Chen Y Q, Liang P S, Chen D K, Song C X. Outbreak of porcine epidemic diarrhea in suckling piglets, China. Emerging Infectious Diseases, 2012, 18 (1): 161-163.

[7]Fan H Y, Zhang J, Ye Y Tong T Z, Xie K S, Liao M. Complete genome sequence of a novel porcine epidemic diarrhea virus in south China. Journal of Virology, 2012, 86 (18): 10248-10249.

[8]Luo Y W, Zhang J, Deng X B, Ye Y, Liao M, Fan H Y. Complete genome sequence of a highly prevalent isolate of porcine epidemic diarrhea virus in South China. Journal of Virology, 2012, 86 (17) : 9551.

[9]Chen F, Pan Y F, Zhang X B, Tian X Y, Wang D D, Zhou Q F, Song Y H, Bi Y Z. 2012.Complete genome sequence of a variant porcine epidemic diarrhea virus strain isolated in China. Journal of Virology, 86 (22) : 12448.

[10]Zhao M, Sun Z, Zhang Y, Wang G, Wang H, Yang F, Tian F, Jiang S. Complete genome sequence of a Vero cell-adapted isolate of porcine epidemic diarrhea virus in eastern China. Journal of Virology, 2012,86 (24): 13858-13859.

[11]Li B, Liu H, He K, Guo R, Ni Y, Du L, Wen L, Zhang X, Yu Z, Zhou  J, Mao A, Lv L, Hu Y, Yu Y, Zhu H, Wang X. Complete genome sequence of a recombinant porcine epidemic diarrhea virus strain from eastern China. Genome Announc, 2013. 1(2): e0010513.

[12]Chen J F, Wang C B, Shi H Y, Qiu H J, Liu S W, Shi D, Zhang X, Feng L. Complete genome sequence of a Chinese virulent porcine epidemic diarrhea virus strain. Journal of Virology, 2011, 85 (21): 11538-11539.

[13]Chen J F, Liu X Z, Shi D, Shi H Y, Zhang X, Li F. Complete genome sequence of a porcine epidemic diarrhea virus variant. Journal of Virology, 2012, 86(6):3408.

[14]Pan Y F, Tian X Y, Li W, Zhou Q F, Wang D D, Bi Y Z, Chen F, Song Y H. Isolation and characterization of variant porcine epidemic diarrhea virus in China. Virology Journal, 2012, 9 :195.

[15]Wang X M, Niu B B, Yan H, Gao D S, Yang X, Chen L, Chang H T, Zhao J, Wang C Q, Genetic properties of endemic Chinese porcine epidemic diarrhea virus strains isolated since 2010, Arch Virology, 2013, DO 10.1007/s00705-013-1767-7.

[16]Wei Z Y. Lu W H, Li Z L, Mo J Y, Zeng X D, Zeng Z L, Sun B L, Chen F, Xie Q M. Complete genome sequence of novel porcine epidemic diarrhea virus strain GD-1 in China. Journal of Virology, 2012, 86(24) : 13824.

[17]Zhou Y J, Wu Y L, Zhu J P, Tong W, Yu H, Jiang Y F, Tong G Z. Journal of Virology, 2012, 86(24) : 13862.

[18]Bi J, Zeng S L, Xiao S B, Chen H C, Fang L R. Complete genome sequence of porcine epidemic diarrhea virus strain AJ1102 isolated from a suckling piglet with acute diarrhea in China. Journal of Virology, 2012, 86 (19) :10910.

[19]Gao Y Y, Kou Q W, Ge X N, Zhou L, Guo X, Yang H C. Phylogenetic analysis of porcine epidemic diarrhea virus field strains prevailing recently in China. Arch Virology, 2013, 158(3):711-715.

[20]Park S J, Kim H K, Song D S, Moon H J, Park B K. Molecular characterization and phylogenetic analysis of porcine epidemic diarrhea virus (PEDV) field isolates in Korea. Arch Virology, 2011,156:577-585.

[21]Li Z, Chen F, Yuan Y, Zeng X, Wei Z, Zhu L, Sun B, Xie Q, Cao Y, Xue C, Ma J, Bee Y. Sequence and phylogenetic analysis of nucleocapsid genes of porcine epidemic diarrhea virus strains in China. Arch Virology, 2013,158(6):1267-1273.

[22]Li Z, Zhu L, Ma J,Zhou Q, Song Y, Sun B, Chen R, Xie Q, Bee Y. Molecular characterization and phylogenetic analysis of porcine epidemic diarrhea virus field strains in South China. Virus Genes, 2012, 45(1):181-185.

[23]Li W, Li H, Liu Y, Pan Y, Deng F, Song Y, Tang X, He Q. New variants of porcine epidemic diarrhea virus, China, 2011. Emerging Infectious Diseases, 2012, 18(8): 1350-1353.

[24]Ge F, Yang D, Ju H, Wang J, Liu J, Liu P, Zhou J. Epidemiological survey of porcine epidemic diarrhea virus in swine farms in Shanghai, China. Arch Virology, 2013. DOI 10.1007/s00705-013-1722-7.

[25]Yang X, Huo J, Chen L, Zheng F, Chang H, Zhao J, Wang X, Wang Q. Genetic variation analysis of reemerging porcine epidemic diarrhea virus prevailing in central China from 2010 to 2011. Virus Genes, 2013, 46(2):337-344.

[26]Yang W, Li G X, Ren Y D, Siqingaowa S, Ren X F. Phylogeny and expression of the nucleocapsid gene of porcine epidemic diarrhea virus. Acta Veterinaria Hungarica, 2013, 61(2):257-269.

[27]Chen J F, Wang C B, Shi H Y, Qiu H J, Liu S W, Chen X J, Zhang Z B, Feng L. Molecular epidemiology of porcine epidemic diarrhea virus in China. Arch Virology, 2010, 155: 1471-1476.
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