[1] |
Aigner, B., Renner, S., Kessler, B. et al. Transgenic pigs as models for translational biomedical research J. Mol. Med., 88 (2010),pp. 653-664
|
[2] |
Bode, G., Clausing, P., Gervais, F. et al. The utility of the minipig as an animal model in regulatory toxicology J. Pharmacol. Toxicol. Methods, 62 (2010),pp. 196-220
|
[3] |
Bohenzky, R.A., LeFebvre, R.B., Berns, K.I. Sequence and symmetry requirements within the internal palindromic sequences of the adeno-associated virus terminal repeat Virology, 166 (1988),pp. 316-327
|
[4] |
Brevini, T.A., Antonini, S., Pennarossa, G. et al. Recent progress in embryonic stem cell research and its application in domestic species Reprod. Domest. Anim., 43 (2008),pp. 193-199
|
[5] |
Chen, F., Pruett-Miller, S.M., Huang, Y. et al. High-frequency genome editing using ssDNA oligonucleotides with zinc-finger nucleases Nat. Methods, 8 (2011),pp. 753-755
|
[6] |
Christian, M., Cermak, T., Doyle, E.L. et al. Targeting DNA double-strand breaks with TAL effector nucleases Genetics, 186 (2010),pp. 757-761
|
[7] |
Du, Y., Kragh, P.M., Zhang, Y. et al. Piglets born from handmade cloning, an innovative cloning method without micromanipulation Theriogenology, 68 (2007),pp. 1104-1110
|
[8] |
Ellis, B.L., Hirsch, M.L., Porter, S.N. et al. Zinc-finger nuclease-mediated gene correction using single AAV vector transduction and enhancement by food and drug administration-approved drugs Gene Ther (2012)
|
[9] |
Fattah, F.J., Lichter, N.F., Fattah, K.R. et al. Proc. Natl. Acad. Sci. USA, 105 (2008),pp. 8703-8708
|
[10] |
Grompe, M., Al-Dhalimy, M., Finegold, M. et al. Loss of fumarylacetoacetate hydrolase is responsible for the neonatal hepatic dysfunction phenotype of lethal albino mice Genes Dev., 7 (1993),pp. 2298-2307
|
[11] |
Guilbault, C., Saeed, Z., Downey, G.P. et al. Cystic fibrosis mouse models Am. J. Respir. Cell Mol. Biol., 36 (2007),pp. 1-7
|
[12] |
Hauschild, J., Petersen, B., Santiago, Y. et al. Efficient generation of a biallelic knockout in pigs using zinc-finger nucleases Proc. Natl. Acad. Sci. USA, 108 (2011),pp. 12013-12017
|
[13] |
Hickey, R.D., Lillegard, J.B., Fisher, J.E. et al. Efficient production of Fah-null heterozygote pigs by chimeric adeno-associated virus-mediated gene knockout and somatic cell nuclear transfer Hepatology, 54 (2011),pp. 1351-1359
|
[14] |
Hirata, R., Chamberlain, J., Dong, R. et al. Targeted transgene insertion into human chromosomes by adeno-associated virus vectors Nat. Biotechnol., 20 (2002),pp. 735-738
|
[15] |
Hirata, R.K., Russell, D.W. Design and packaging of adeno-associated virus gene targeting vectors J. Virol., 74 (2000),pp. 4612-4620
|
[16] |
Inoue, N., Hirata, R.K., Russell, D.W. High-fidelity correction of mutations at multiple chromosomal positions by adeno-associated virus vectors J. Virol., 73 (1999),pp. 7376-7380
|
[17] |
Keefer, C.L., Pant, D., Blomberg, L. et al. Challenges and prospects for the establishment of embryonic stem cell lines of domesticated ungulates Anim. Reprod. Sci., 98 (2007),pp. 147-168
|
[18] |
Klymiuk, N., Mundhenk, L., Kraehe, K. et al. J. Mol. Med. (Berl), 90 (2011),pp. 597-608
|
[19] |
Kohli, M., Rago, C., Lengauer, C. et al. Facile methods for generating human somatic cell gene knockouts using recombinant adeno-associated viruses Nucleic Acids Res., 32 (2004),p. e3
|
[20] |
Kragh, P.M., Nielsen, A.L., Li, J. et al. Hemizygous minipigs produced by random gene insertion and handmade cloning express the Alzheimer's disease-causing dominant mutation APPsw Transgenic Res., 18 (2009),pp. 545-558
|
[21] |
Kuzmuk, K.N., Schook, L.B.
|
[22] |
Lai, L., Prather, R.S. Production of cloned pigs by using somatic cells as donors Cloning Stem Cells, 5 (2003),pp. 233-241
|
[23] |
Lai, L., Kolber-Simonds, D., Park, K.W. et al. Production of alpha-1,3-galactosyltransferase knockout pigs by nuclear transfer cloning Science, 295 (2002),pp. 1089-1092
|
[24] |
Lindblad, B., Lindstedt, S., Steen, G. On the enzymic defects in hereditary tyrosinemia Proc. Natl. Acad. Sci. USA, 74 (1977),pp. 4641-4645
|
[25] |
Linden, R.M., Ward, P., Giraud, C. et al. Site-specific integration by adeno-associated virus Proc. Natl. Acad. Sci. USA, 93 (1996),pp. 11288-11294
|
[26] |
Liu, X., Yan, Z., Luo, M. et al. Targeted correction of single-base-pair mutations with adeno-associated virus vectors under nonselective conditions J. Virol., 78 (2004),pp. 4165-4175
|
[27] |
Luo, Y., Bolund, L., Sorensen, C.B. Transgenic Res., 21 (2011),pp. 671-676
|
[28] |
Luo, Y., Li, J., Liu, Y. et al. Transgenic Res., 20 (2011),pp. 975-988
|
[29] |
Luo, Y., Lin, L., Bolund, L. et al. Genetically modified pigs for biomedical research J. Inherit. Metab. Dis (2012)
|
[30] |
Miller, D.G., Petek, L.M., Russell, D.W. Human gene targeting by adeno-associated virus vectors is enhanced by DNA double-strand breaks Mol. Cell Biol., 23 (2003),pp. 3550-3557
|
[31] |
Miller, J.C., Tan, S., Qiao, G. et al. A TALE nuclease architecture for efficient genome editing Nat. Biotechnol., 29 (2011),pp. 143-148
|
[32] |
Miyawaki, K., Yamada, Y., Yano, H. et al. Glucose intolerance caused by a defect in the entero-insular axis: a study in gastric inhibitory polypeptide receptor knockout mice Proc. Natl. Acad. Sci. US A, 96 (1999),pp. 14843-14847
|
[33] |
Muzyczka, N. Use of adeno-associated virus as a general transduction vector for mammalian cells Curr. Top. Microbiol. Immunol., 158 (1992),pp. 97-129
|
[34] |
Nakai, H., Storm, T.A., Kay, M.A. Nat. Biotechnol., 18 (2000),pp. 527-532
|
[35] |
Paiboonsukwong, K., Ohbayashi, F., Shiiba, H. et al. Correction of mutant Fanconi anemia gene by homologous recombination in human hematopoietic cells using adeno-associated virus vector J. Gene Med., 11 (2009),pp. 1012-1019
|
[36] |
Paulk, N.K., Marquez Loza, L., Finegold, M. et al. Hum. Gene Ther (2012)
|
[37] |
Pieroni, L., Fipaldini, C., Monciotti, A. et al. Targeted integration of adeno-associated virus-derived plasmids in transfected human cells Virology, 249 (1998),pp. 249-259
|
[38] |
Porteus, M.H., Cathomen, T., Weitzman, M.D. et al. Efficient gene targeting mediated by adeno-associated virus and DNA double-strand breaks Mol. Cell Biol., 23 (2003),pp. 3558-3565
|
[39] |
Prather, R.S., Hawley, R.J., Carter, D.B. et al. Transgenic swine for biomedicine and agriculture Theriogenology, 59 (2003),pp. 115-123
|
[40] |
Renner, S., Fehlings, C., Herbach, N. et al. Glucose intolerance and reduced proliferation of pancreatic beta-cells in transgenic pigs with impaired glucose-dependent insulinotropic polypeptide function Diabetes, 59 (2010),pp. 1228-1238
|
[41] |
Riordan, J.R., Rommens, J.M., Kerem, B. et al. Identification of the cystic fibrosis gene: cloning and characterization of complementary DNA Science, 245 (1989),pp. 1066-1073
|
[42] |
Rogers, C.S., Hao, Y., Rokhlina, T. et al. Production of CFTR-null and CFTR-DeltaF508 heterozygous pigs by adeno-associated virus-mediated gene targeting and somatic cell nuclear transfer J. Clin. Invest., 118 (2008),pp. 1571-1577
|
[43] |
Rogers, C.S., Stoltz, D.A., Meyerholz, D.K. et al. Science, 321 (2008),pp. 1837-1841
|
[44] |
Russell, D.W., Hirata, R.K. Human gene targeting by viral vectors Nat. Genet., 18 (1998),pp. 325-330
|
[45] |
Tichy, E.D., Pillai, R., Deng, L. et al. Mouse embryonic stem cells, but not somatic cells, predominantly use homologous recombination to repair double-strand DNA breaks Stem Cells Dev., 19 (2010),pp. 1699-1711
|
[46] |
Trobridge, G., Hirata, R.K., Russell, D.W. Gene targeting by adeno-associated virus vectors is cell-cycle dependent Hum. Gene Ther, 16 (2005),pp. 522-526
|
[47] |
Vajta, G. Handmade cloning: the future way of nuclear transfer? Trends Biotechnol, 25 (2007),pp. 250-253
|
[48] |
Vajta, G., Callesen, H. Establishment of an efficient somatic cell nuclear transfer system for production of transgenic pigs Theriogenology, 77 (2012),pp. 1263-1274
|
[49] |
Vasileva, A., Linden, R.M., Jessberger, R. Homologous recombination is required for AAV-mediated gene targeting Nucleic Acids Res., 34 (2006),pp. 3345-3360
|
[50] |
Wernersson, R., Schierup, M.H., Jorgensen, F.G. et al. Pigs in sequence space: a 0.66X coverage pig genome survey based on shotgun sequencing BMC Genomics, 6 (2005),p. 70
|
[51] |
Wood, A.J., Lo, T.W., Zeitler, B. et al. Targeted genome editing across species using ZFNs and TALENs Science, 333 (2011),p. 307
|
[52] |
Wu, Z., Yang, H., Colosi, P. Effect of genome size on AAV vector packaging Mol. Ther., 18 (2010),pp. 80-86
|
[53] |
Yang, J., Zhou, W., Zhang, Y. et al. Concatamerization of adeno-associated virus circular genomes occurs through intermolecular recombination J. Virol., 73 (1999),pp. 9468-9477
|