shRNA-triggered RNAi inhibits expression of NDV NP gene in chicken embryo fibroblast

YUE Hua1, YANG Falong1, TANG Cheng1, LI Dingfei2, FU Anjing3, MA Li4

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Front. Biol. ›› 2008, Vol. 3 ›› Issue (4) : 433-438. DOI: 10.1007/s11515-008-0080-4

shRNA-triggered RNAi inhibits expression of NDV NP gene in chicken embryo fibroblast

  • YUE Hua1, YANG Falong1, TANG Cheng1, LI Dingfei2, FU Anjing3, MA Li4
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Abstract

RNA interference (RNAi) technology is a powerful tool for identifying gene functions. Chicken embryo fibroblast (CEF) is an ideal model for studying the interaction between avian viruses and their hosts. To establish a methodological platform for RNAi studies in CEF, three plasmid vectors expressing short hairpin RNAs (shRNAs) targeted against the Newcastle disease virus (NDV) NP gene were constructed. One of them, ndv1, was proven effective on blocking viral replication in CEF and chicken embryos. Four hours prior to infection with NDV, the CEF was transfected with the plasmids by Silent-fect. An unrelated shRNA sequence (HK) was used in mock transfection. The expression of a potent shRNA resulted in up to 2.3, 21.1 and 9.8 fold decreases in NP gene expression at 3, 6 and 9 h post infection in CEF, respectively. The ndv1 was able to completely inhibit the replication of the virus in CEF within 48 post infection. Furthermore, the pathological changes in CEF caused by NDV were delayed, and the degree of pathological changes was lighter compared with the mock transfection in the presence of ndv1. When the complex of shRNA-Silent-fect and NDV was co-injected into the allantoic cavity of 10-day-old embryonated eggs with 105 or 106 ELD50 NDV, NDV replication was decreased by 94.14% and 62.15% after 17 h, respectively. These findings suggest that the newly synthesized NP protein is critical for NDV transcription and replication and provide a basis for identifying the functions of viral genes and screening for effective siRNAs against viruses in CEF and chicken embryo by RNAi.

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YUE Hua, YANG Falong, TANG Cheng, LI Dingfei, FU Anjing, MA Li. shRNA-triggered RNAi inhibits expression of NDV NP gene in chicken embryo fibroblast. Front. Biol., 2008, 3(4): 433‒438 https://doi.org/10.1007/s11515-008-0080-4

References

1. Agrawal N, Dasaradhi P V N, Mohmmed A, Malhotra P, Bhatnagar R K, Mukherjee S K (2003). RNA Interference: biology, mechanism,and applications. Microbiol Mol Biol Rev, 67(4): 657–685. doi:10.1128/MMBR.67.4.657-685.2003
2. Barik S (2004). Control of nonsegmented negative-strand RNA virus replicationby siRNA. Virus Res, 102(1): 27–35. doi:10.1016/j.virusres.2004.01.012
3. Bitko V, Barik S (2001). Phenotypicsilencing of cytoplasmic genes using sequence-specific double-strandedshort interfering RNA and its application in the reverse geneticsof wild type negative-strand RNA viruses. BMC Microbiol, 1: 34. doi: 10.1186/1471-2180-1-34
4. Brummelkamp T R, Bernards R, Agami R (2002). A system for stable expression ofshort interfering RNAs in mammalian cells. Science, 296(5567): 550–553. doi:10.1126/science.1068999
5. Caplen N J (2003). RNAi as a gene therapy approach. Expert Opin Biol Ther, 3(4): 575–586. doi:10.1517/14712598.3.4.575
6. Curran J, Homann H, Buchholz C, Rochat S, Neubert W, Kolakofsky D (1993). The hypervariable C-terminal tail of the Sendai paramyxovirusnucleocapsid protein is required for template function but not forRNA encapsidation. J Virol, 67(7): 4358–4364
7. Curran J, Marq J B, Kolakofsky D (1995). An N-terminal domain of the Sendaiparamyxovirus P protein acts as a chaperone for the NP protein duringthe nascent chain assembly step of genome replication. J Virol, 69(2): 849–855
8. Elbashir S M, Harborth J, Lendeckel W, Yalcin A, Weber K, Tuschl T (2001). Duplexes of 21-nucleotide RNAs mediate RNA interferencein cultured mammalian cells. Nature, 411(6836): 494–498. doi:10.1038/35078107
9. Haasnoot J, Cupac D, Berkhout B (2003). Inhibition of virus replication byRNA interference. J Biomed Sci, 10(6): 607–616
10. Hannon G J (2002). RNA interference. Nature, 418(6894): 244–251. doi:10.1038/418244a
11. Heminway B R, Yu Y, Galinski M S (1994). Paramyxovirus mediated cell fusionrequires co-expression of both the fusion and hemagglutinin-neuraminidaseglycoproteins. Virus Res, 31(1): 1–16. doi:10.1016/0168-1702(94)90066-3
12. Heminway B R, Yu Y, Tanaka Y, Perrine K G, Gustafson E, Bernstein J M, Galinski M S (1994). Analysis of respiratory syncytial virus F, G, and SHproteins in cell fusion. Virology, 200(2): 801–805. doi:10.1006/viro.1994.1245
13. Horikami S M, Curran J, Kolakofsky D, Moyer S A (1992). Complexes of Sendai virus NP-P and P-L proteins are required fordefective interfering particle genome replication in vitro. J Virol, 66(8): 4901–4908
14. Lamb R A, Kolakofsky D (1996). Paramyxoviridae:the viruses and their replication. In: : Fields B N, Knipe D M, Howley P M, eds. Fields virology, 3rd ed.Philadelphia, PA: Lippincott-RavenPublishers. 1177–1204
15. Li D F, Yue H, Fu A J, Ma L, Huang X (2005). The Influence onthe four kinds of cells by adding RNAiFectTM and super-fect.J Southwest Univ Nationalities: Natural Science Edition, 31(Supl.): 53–56 (in Chinese)
16. Li H, Li W X, Ding S W (2002). Induction and suppression of RNAsilencing by an animal virus. Science, 296(5571): 1319–1321. doi:10.1126/science.1070948
17. Liu H L, Lu C P, Zhu W Y (2005). RNA Interference against avian infectiousbronchitis virus. Virol Sin, 20(3): 272–275 (in Chinese)
18. Livak K J, Schmittgen T D (2001). Analysisof relative gene expression data using real-time quantitative PCRand the 2 (-Delta Delta C (T)) method. Methods, 25(4): 402–408. doi:10.1006/meth.2001.1262
19. Myers T M, Smallwood S, Moyer S A (1999). Identification of nucleocapsid proteinresidues required for Sendai virus nucleocapsid formation and genomereplication. J Gen Virol, 80(Pt6): 1383–1391
20. Pickford A S, Cogoni C (2003). RNA-mediatedgene silencing. Cell Mol Life Sci, 60(5): 871–882
21. Saleh M C, Van Rij R P, Andino R (2004). RNA silencing in viral infections:insights from poliovirus. Virus Res, 102(1): 11–17. doi:10.1016/j.virusres.2004.01.010
22. Ui-Tei K, Naito Y, Takahashi F, Haraguchi T, Ohki-Hamazaki H, Juni A, Ueda R, Saigo K (2004). Guidelines for theselection of highly effective siRNA sequences for mammalian and chickRNA interference. Nucleic Acids Res, 32(3): 3936–3948. doi:10.1093/nar/gkh247
23. Vance V, Vaucheret H (2001). RNA silencingin plants-defense and counter defense. Science, 292(5525): 2277–2280. doi:10.1126/science.1061334
24. Yin Zhen, Liu Jing- Hua (1997). AnimalVirology, 2nd ed. Beijing: Science Press
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