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Expression analysis of Porcine Endogenous Retroviruses (PERVs) in Korean native pig organs

한국재래돼지의 장기조직에서 PERVs의 발현 특성 분석

  • Oh, Hyung-Gil (Department of Animal Science & Biotechnology, Chungnam National University) ;
  • Jung, Woo-Young (Department of Animal Science & Biotechnology, Chungnam National University) ;
  • Yu, Seung-Lan (Department of Animal Science & Biotechnology, Chungnam National University) ;
  • Lee, Jun-Heon (Department of Animal Science & Biotechnology, Chungnam National University)
  • 오형길 (충남대학교 동물자원생명과학과) ;
  • 정우영 (충남대학교 동물자원생명과학과) ;
  • 유성란 (충남대학교 동물자원생명과학과) ;
  • 이준헌 (충남대학교 동물자원생명과학과)
  • Received : 2011.02.06
  • Accepted : 2011.03.09
  • Published : 2011.03.30

Abstract

Pigs have anatomically and physiologically very similar to human and because of this, pigs are the possible xenotransplantation donors for human organs. PERVs (Porcine Endogenous Retroviruses) are known to be one of the possible obstacles for using porcine organs regardless of the immunological barriers. In order to understand the expression patterns of PERVs in Korean native pigs, we investigated PERV expressions in porcine liver, heart, spleen, and lung samples. After RNA extraction, two types of specific PERV envelope genes (ENV-A and ENV-B) were amplified using specific primers by RT-PCR. The results indicated that the variable PERV expressions were observed in inconsistent patterns among animals and tissues. The PERV expressions were verified with semi-quantitative real-time PCR with three replicates. Even though, these results confirm the previous findings that the PERVs were differentially expressed between animals and tissues. These results also give some valuable information for xenotransplantation when using the Korean native pigs as the organ donor.

Keywords

References

  1. Akiyoshi D, Denaro M, Zhu H, Greenstein J, Banerjee P, Fishman J. 1998. Identification of a full-length cDNA for an endogenous retrovirus of miniature swine. J. Virol. 72: 4503-4507.
  2. Clemenceau B, Lalain S, Martignat L, Sai P. 1999. Porcine endogenous retroviral mRNAs in pancreas and a panel of tissues from specific pathogen-free pigs. Diabetes Metab. 25: 518-525.
  3. Deacon T, Schumacher J, Dinsmore J, Thomas C, Palmer P, Kott S, Edge A, Penny D, Kassissieh S, Dempsey P, Isacson O. 1997. Histological evidence of fetal pig neural cell survival after transplantation into a patient with Parkinson's disease. Nat. Med. 3: 350-353. https://doi.org/10.1038/nm0397-350
  4. Dieckhoff B, Kessler B, Jobst D, Kues W, Petersen B, Pfeifer A, Kurth R, Niemann H, Wolf E, Denner J. 2009. Distribution and expression of porcine endogenous retroviruses in multi-transgenic pigs generated for xenotransplantation. Xenotransplantation. 16: 64-73. https://doi.org/10.1111/j.1399-3089.2009.00515.x
  5. Denner J. 2010. Recombinant porcine endogenous retroviruses (PERV-A/C): a new risk for xenotransplantation? Xenotransplantation. 17: 120-120. https://doi.org/10.1111/j.1399-3089.2010.00573_21.x
  6. Fujimura T, Miyagawa S, Takahagi Y, Shigehisa T, Murakami H. 2008. Prevalence of porcine endogenous retroviruses in domestic, minature and genetically modified pigs in Japan. Transplant Proc. 40: 594-595. https://doi.org/10.1016/j.transproceed.2008.01.052
  7. Harrison I, Takeuchi Y, Bartosch B, Stoye J. 2004. Determinants of high titer in recombinant porcine endogenous retroviruses. J. Virol. 78: 13871-13879. https://doi.org/10.1128/JVI.78.24.13871-13879.2004
  8. Jung WY, Kim JE, Jung KC, Jin DI, Moran C, Park EW, Jeon JT, Lee JH. 2010. Comparison of PERV genomic locations between Asian and European pigs. Anim. Genet. 41: 89-92. https://doi.org/10.1111/j.1365-2052.2009.01953.x
  9. Klymiuk N, Muller M, Brem G, Aigner B. 2006. Phylogeny, recombination and expression of porcine endogenous retrovirus c2 nucleotide sequences. J. Virol. 87: 977-986. https://doi.org/10.1099/vir.0.81552-0
  10. Lee JH, Webb GC, Allen RDM, Moran C. 2002. Characterizing and mapping porcine endogenous retroviruses in Westran pigs. J. Virol. 76: 5548-5556. https://doi.org/10.1128/JVI.76.11.5548-5556.2002
  11. Le Tissier P, Stoye J, Takeuchi Y, Patience C, Weiss R. 1997. Two sets of human-tropic retrovirus. Nature. 389: 681-682. https://doi.org/10.1038/39489
  12. Li Z, Ping Y, Shengfu L, Youping L, Jingqiu C, Hong B. 2006. The lack of inhibition of porcine endogenous retrovirus by small interference RNA designed from the long terminal regions. Transplant. proc. 38: 2258-2260. https://doi.org/10.1016/j.transproceed.2006.06.099
  13. Livak K, Schmittgen T. 2001. Analysis of relative gene expression data using real-time quantitative PCR and the 2 (-Delta Delta C(T)) Method. Methods. 25: 402-408. https://doi.org/10.1006/meth.2001.1262
  14. Lee JH, Moran C. 2001. Current status of xenotransplantation - a review. Asian-Australas. J. Anim. Sci. 14: 1497- 1504.
  15. Martin U, Steinhoff G, Kiessig V, Chikobava M, Anssar M, Morschheuser T, Lapin B, Haverich A. 1998. Porcine endogenous retrovirus (PERVs) was not transmitted from transplanted porcine endothelial cells to baboons in vivo. Transplant Int. 11: 247-251. https://doi.org/10.1111/j.1432-2277.1998.tb00965.x
  16. Martin U, Kiessig V, Blusch J, Haverich A, von der Helm K, Herden T, Steinhoff G. 1998. Expression of pig endogenous retrovirus by primary porcine endothelial cells and infection of human cells. Lancet. 352: 666-667. https://doi.org/10.1016/S0140-6736(98)22035-6
  17. Paradis K, Langford G, Long Z, Heneine W, Sandstrom P, Switzer W, Chapman L, Lockey C, Onions D, Otto E. 1999. Search for cross-species transmission of porcine endogenous retrovirus in patients treated with living pig tissue. Science. 285: 1236-1241. https://doi.org/10.1126/science.285.5431.1236
  18. Patience C, Takeuchi Y, Weiss RA. 1997. Infection of human cells by an endogenous retrovirus of pigs. Nat. Med. 3: 282-286. https://doi.org/10.1038/nm0397-282
  19. Rogel-Gaillard C, Bourgeaux N, Billault A, Vaiman M, Chardon P. 1999. Construction of a swine BAC library: application to the characterization and mapping of porcine type C endoviral elements. Cytogenet. Cell Genet. 85: 205-11. https://doi.org/10.1159/000015294
  20. Rogel-Gaillard C, Hayes H, Bourgeaux N, Chardon P. 2001. Assignment of two new loci for gamma 1 porcine (c1 PERV) to pig chromosome bands 2q21 and 11q12 by in situ hybridization. Cytogenet. Cell Genet. 95: 112-113. https://doi.org/10.1159/000057028
  21. Ramsoondar J, Vaught T, Ball S, Mendicino M, Monahan J, Jobst P, Vance A, Duncan J, Wells K, Ayares D. 2009. Production of transgenic pigs that express porcine endogenous retrovirus small interfering RNAs. Xenotransplantation. 16: 164-180. https://doi.org/10.1111/j.1399-3089.2009.00525.x
  22. Tacke S, Specke O, Stephan E, Seibold K, Bodusch K, Denner J. 2000. Porcine endogenous retrovirus: diagnostic assays and evidence for immunosuppressive properties. Transplant. proc. 32: 1166. https://doi.org/10.1016/S0041-1345(00)01169-6
  23. Van der Laan L, Lockey C, Griffeth B, Frasier F, Wilson, Onions D, Hering B, Long Z, Otto E, Torbett B, Salomon D. 2000. Infection by porcine endogenous retrovirus after islet xenotransplantation in SCID mice. Nature 407: 90-94. https://doi.org/10.1038/35024089
  24. Valdes-Gonzalez R, Dorantes LM, Bracho-Blanchet E, Rodriguez-Ventura A, White DJG. 2010. No evidence of porcine endogenous retrovirus in patients with type 1 diabetes after long-term porcine islet xenotransplantation. J. Med. Virol. 82: 331-334. https://doi.org/10.1002/jmv.21655
  25. Weiss R. 1998. Transgenic pigs and virus adaptation. Nature 391: 327-328. https://doi.org/10.1038/34772
  26. Wilson C, Wong S, Van Brocklin M, Federspiel M. 2000. Extended analysis of the in vitro tropism of porcine endogenous retrovirus. J. Virol. 74: 49-56. https://doi.org/10.1128/JVI.74.1.49-56.2000