The sequence and analysis of a Chinese pig genome
详细信息    查看全文
  • 作者:Xiaodong Fang (1)
    Yulian Mou (2)
    Zhiyong Huang (1)
    Yong Li (1) (3) (4)
    Lijuan Han (1)
    Yanfeng Zhang (5)
    Yue Feng (1)
    Yuanxin Chen (1)
    Xuanting Jiang (1)
    Wei Zhao (1)
    Xiaoqing Sun (1)
    Zhiqiang Xiong (1)
    Lan Yang (1)
    Huan Liu (1) (3) (4)
    Dingding Fan (1)
    Likai Mao (1)
    Lijie Ren (6)
    Chuxin Liu (1) (3) (4)
    Juan Wang (1)
    Kui Li (2)
    Guangbiao Wang (1)
    Shulin Yang (2)
    Liangxue Lai (7)
    Guojie Zhang (1)
    Yingrui Li (1)
    Jun Wang (1) (8) (9)
    Lars Bolund (1) (10)
    Huanming Yang (1)
    Jian Wang (1)
    Shutang Feng (2)
    Songgang Li (1)
    Yutao Du (1) (3) (4)
  • 关键词:Wuzhishan pig ; Genome ; Homozygosis ; Transposable element ; Endogenous retrovirus ; Animal model
  • 刊名:GigaScience
  • 出版年:2012
  • 出版时间:December 2012
  • 年:2012
  • 卷:1
  • 期:1
  • 全文大小:377KB
  • 参考文献:1. Larson G, / et al.: Ancient DNA, pig domestication, and the spread of the Neolithic into Europe. / Proc Natl Acad Sci U S A 2007, 104:15276鈥?5281. CrossRef
    2. Lunney JK: Advances in swine biomedical model genomics. / Int J Biol Sci 2007, 3:179鈥?84. CrossRef
    3. Spurlock ME, Gabler NK: The development of porcine models of obesity and the metabolic syndrome. / J Nutr 2008, 138:397鈥?02.
    4. Vilahur G, Padro T, Badimon L: Atherosclerosis and thrombosis: insights from large animal models. / J Biomed Biotechnol 2011, 2011:907575. CrossRef
    5. Eventov-Friedman S, / et al.: Embryonic pig pancreatic tissue transplantation for the treatment of diabetes. / PLoS Med 2006, 3:e215. CrossRef
    6. Ekser B, / et al.: Clinical xenotransplantation: the next medical revolution? / Lancet 2011,379(9816):672鈥?83. CrossRef
    7. Megens HJ, / et al.: Biodiversity of pig breeds from China and Europe estimated from pooled DNA samples: differences in microsatellite variation between two areas of domestication. / Genet Sel Evol 2008, 40:103鈥?28.
    8. Feng S: / Experimental miniature pig of China. China Agricultural Press; 2011. 6
    9. Huang Q, / et al: Inbred Chinese Wuzhishan (WZS) minipig model for soybean glycinin and beta-conglycinin allergy. / Journal of agricultural and food chemistry, 2010. 58(8): p. 5194-8.
    10. Gong P, / et al: Mild hypothermia attenuates mitochondrial oxidative stress by protecting respiratory enzymes and upregulating MnSOD in a pig model of cardiac arrest. / PloS one, 2012. 7(4): p. e35313.
    11. Archibald AL, / et al.: Pig genome sequence鈥揳nalysis and publication strategy. / BMC Genomics 2010, 11:438. CrossRef
    12. Li R, / et al.: De novo assembly of human genomes with massively parallel short read sequencing. / Genome Res 2010, 20:265鈥?72. CrossRef
    13. Fang X, Huang Z, Li Y, Feng Y, Chen Y, Jiang X, Yang L: Genomic data from the Wuzhishan inbred pig (Sus scrofa). / GigaScience 2012. http://dx.doi.org/10.5524/100031
    14. Huang LG, / et al.: Genetic analysis of 32 microsatellite loci in 13 families of Wuzhishan pig by multiplex PCR and gene scanning technique. / Yi Chuan 2005, 27:70鈥?4.
    15. Li k, Mu YL, HAN JL, Yang SL, Liu H, Yuan XX, Guo Y,Feng ST: Study on genetic variation of inbreed families of Wu zhishan miniature pig using microsatallite DNA loci. / Acta veterinaria et zootechhica sinica 2009, 40 (5):1751-1761.
    16. Esteve-Codina A, / et al.: Partial short-read sequencing of a highly inbred Iberian pig and genomics inference thereof. / Heredity 2011, 107:256鈥?64. CrossRef
    17. Yang SL, / et al.: Genetic variation and relationships of eighteen Chinese indigenous pig breeds. / Genet Sel Evol 2003, 35:657鈥?71. CrossRef
    18. Keane TM, / et al.: Mouse genomic variation and its effect on phenotypes and gene regulation. / Nature 2011, 477:289鈥?94. CrossRef
    19. Kim EB, / et al.: Genome sequencing reveals insights into physiology and longevity of the naked mole rat. / Nature 2011, 479:223鈥?27. CrossRef
    20. Thomsen PD, Miller JR: Pig genome analysis: differential distribution of SINE and LINE sequences is less pronounced than in the human and mouse genomes. / Mamm Genome 1996, 7:42鈥?6. CrossRef
    21. Ellegren H: Abundant (A)n. (T)n mononucleotide repeats in the pig genome: linkage mapping of the porcine APOB, FSA, ALOX12, PEPN and RLN loci. / Anim Genet 1993, 24:367鈥?72. CrossRef
    22. Chen N: Using RepeatMasker to identify repetitive elements in genomic sequences. / Curr Protoc Bioinformatics 2004,Chapter 4(Unit 4):10.
    23. Takahashi H, Awata T, Yasue H: Characterization of swine short interspersed repetitive sequences. / Anim Genet 1992, 23:443鈥?48. CrossRef
    24. Shimamura M, Abe H, Nikaido M, Ohshima K, Okada N: Genealogy of families of SINEs in cetaceans and artiodactyls: the presence of a huge superfamily of tRNA(Glu)-derived families of SINEs. / Mol Biol Evol 1999, 16:1046鈥?060. CrossRef
    25. Yasue H, Wada Y: A swine SINE (PRE-1 sequence) distribution in swine-related animal species and its phylogenetic analysis in swine genome. / Anim Genet 1996, 27:95鈥?8. CrossRef
    26. De Bie T, Cristianini N, Demuth JP, Hahn MW: CAFE: a computational tool for the study of gene family evolution. / Bioinformatics 2006, 22:1269鈥?271. CrossRef
    27. Yu F, / et al.: Knockdown of interferon-induced transmembrane protein 1 (IFITM1) inhibits proliferation, migration, and invasion of glioma cells. / J Neurooncol 2011, 103:187鈥?95. CrossRef
    28. Sofi F, Cesari F, Fedi S, Abbate R, Gensini GF, Protein Z: "light and shade" of a new thrombotic factor. / Clin Lab 2004, 50:647鈥?52.
    29. Tall AR: CETP inhibitors to increase HDL cholesterol levels. / N Engl J Med 2007, 356:1364鈥?366. CrossRef
    30. Joy TR, Hegele RA: The failure of torcetrapib: what have we learned? / Br J Pharmacol 2008, 154:1379鈥?381. CrossRef
    31. Rennings AJ, Stalenhoef AF: JTT-705: is there still future for a CETP inhibitor after torcetrapib? / Expert Opin Investig Drugs 2008, 17:1589鈥?597. CrossRef
    32. Fonda ML: Purification and characterization of vitamin B6-phosphate phosphatase from human erythrocytes. / J Biol Chem 1992, 267:15978鈥?5983.
    33. Berg F, Gustafson U, Andersson L: The uncoupling protein 1 gene (UCP1) is disrupted in the pig lineage: a genetic explanation for poor thermoregulation in piglets. / PLoS Genet 2006, 2:e129. CrossRef
    34. Goldstein SA, / et al.: International Union of Pharmacology. LV. Nomenclature and molecular relationships of two-P potassium channels. / Pharmacol Rev 2005, 57:527鈥?40. CrossRef
    35. Lafreniere RG, / et al.: A dominant-negative mutation in the TRESK potassium channel is linked to familial migraine with aura. / Nat Med 2010, 16:1157鈥?160. CrossRef
    36. Flachsbart F, / et al.: Investigation of genetic susceptibility factors for human longevity - a targeted nonsynonymous SNP study. / Mutat Res 2010, 694:13鈥?9. CrossRef
    37. Hiroko OH, Neuromedin B: / Progress in Neurobiology. 62nd edition. 2000, 297鈥?12.
    38. Oliveira KJ, / et al.: Disruption of neuromedin B receptor gene results in dysregulation of the pituitary-thyroid axis. / J Mol Endocrinol 2006, 36:73鈥?0. CrossRef
    39. Yamada K, Santo-Yamada Y, Wada K: Restraint stress impaired maternal behavior in female mice lacking the neuromedin B receptor (NMB-R) gene. / Neurosci Lett 2002, 330:163鈥?66. CrossRef
    40. Alderman JM, / et al.: Neuroendocrine inhibition of glucose production and resistance to cancer in dwarf mice. / Exp Gerontol 2009, 44:26鈥?3. CrossRef
    41. Zhang F, / et al.: Characterization of Glis2, a novel gene encoding a Gli-related, Kruppel-like transcription factor with transactivation and repressor functions. Roles in kidney development and neurogenesis. / J Biol Chem 2002, 277:10139鈥?0149. CrossRef
    42. Sachs DH: The pig as a potential xenograft donor. / Vet Immunol Immunopathol 1994, 43:185鈥?91. CrossRef
    43. Yao SK, Zhang Q, Sun FZ, Liu PQ: Genetic diversity of seven miniature pig breeds (strains) analyzed by using microsatellite markers. / Yi Chuan 2006, 28:407鈥?12.
    44. Patience C, Takeuchi Y, Weiss RA: Infection of human cells by an endogenous retrovirus of pigs. / Nat Med 1997, 3:282鈥?86. CrossRef
    45. Martin U, / et al.: Expression of pig endogenous retrovirus by primary porcine endothelial cells and infection of human cells. / Lancet 1998, 352:692鈥?94. CrossRef
    46. Wilson CA, / et al.: Type C retrovirus released from porcine primary peripheral blood mononuclear cells infects human cells. / J Virol 1998, 72:3082鈥?087.
    47. van der Laan LJ, / et al.: Infection by porcine endogenous retrovirus after islet xenotransplantation in SCID mice. / Nature 2000, 407:90鈥?4. CrossRef
    48. Deng YM, Tuch BE, Rawlinson WD: Transmission of porcine endogenous retroviruses in severe combined immunodeficient mice xenotransplanted with fetal porcine pancreatic cells. / Transplantation 2000, 70:1010鈥?016. CrossRef
    49. Jung WY, / et al.: Comparison of PERV genomic locations between Asian and European pigs. / Anim Genet 2010, 41:89鈥?2. CrossRef
    50. Herring C, / et al.: Mapping full-length porcine endogenous retroviruses in a large white pig. / J Virol 2001, 75:12252鈥?2265. CrossRef
    51. Wynyard S, Garkavenko O, Elliot R: Multiplex high resolution melting assay for estimation of Porcine Endogenous Retrovirus (PERV) relative gene dosage in pigs and detection of PERV infection in xenograft recipients. / J Virol Methods 2011, 175:95鈥?00. CrossRef
    52. Onions D, Hart D, Mahoney C, Galbraith D, Smith K: Endogenous retroviruses and the safety of porcine xenotransplantation. / Trends Microbiol 1998, 6:430鈥?31. CrossRef
    53. Li Z, / et al.: Phylogenetic relationship of porcine endogenous retrovirus (PERV) in Chinese pigs with some type C retroviruses. / Virus Res 2004, 105:167鈥?73. CrossRef
    54. Royo T, Alfon J, Berrozpe M, Badimon L: Effect of gemfibrozil on peripheral atherosclerosis and platelet activation in a pig model of hyperlipidemia. / Eur J Clin Invest 2000, 30:843鈥?52. CrossRef
    55. Palazon CP, / et al.: Effects of reducing LDL and increasing HDL with gemfibrozil in experimental coronary lesion development and thrombotic risk. / Atherosclerosis 1998, 136:333鈥?45. CrossRef
    56. Fuster V, / et al.: Spontaneous and diet-induced coronary atherosclerosis in normal swine and swine with von Willebrand disease. / Arteriosclerosis 1985, 5:67鈥?3. CrossRef
    57. Badimon L, Steele P, Badimon JJ, Bowie EJ, Fuster V: Aortic atherosclerosis in pigs with heterozygous von Willebrand disease. Comparison with homozygous von Willebrand and normal pigs. / Arteriosclerosis 1985, 5:366鈥?70. CrossRef
    58. Gal D, Chokshi SK, Mosseri M, Clarke RH, Isner JM: Percutaneous delivery of low-level laser energy reverses histamine-induced spasm in atherosclerotic Yucatan microswine. / Circulation 1992, 85:756鈥?68. CrossRef
    59. White FC, Bloor CM: Coronary vascular remodeling and coronary resistance during chronic ischemia. / Am J Cardiovasc Pathol 1992, 4:193鈥?02.
    60. White FC, Carroll SM, Magnet A, Bloor CM: Coronary collateral development in swine after coronary artery occlusion. / Circ Res 1992, 71:1490鈥?500. CrossRef
    61. / The DrugBank. [ http://www.drugbank.ca/] [ ]
    62. Wang Y, / et al.: A role for protein phosphorylation in cytochrome P450 3A4 ubiquitin-dependent proteasomal degradation. / J Biol Chem 2009, 284:5671鈥?684. CrossRef
    63. Speijer H, Groener JE, van Ramshorst E, van Tol A: Different locations of cholesteryl ester transfer protein and phospholipid transfer protein activities in plasma. / Atherosclerosis 1991, 90:159鈥?68. CrossRef
    64. Edin ML, / et al.: Endothelial expression of human cytochrome P450 epoxygenase CYP2C8 increases susceptibility to ischemia-reperfusion injury in isolated mouse heart. / FASEB J 2011, 25:3436鈥?447. CrossRef
    65. / The UniProtKB and Swiss-Prot Database search for FGA. [ http://www.uniprot.org/uniprot/P02671] [ ]
    66. / The UniProtKB and Swiss-Prot Database search for FGB. [ http://www.uniprot.org/uniprot/P02675] [ ]
    67. Wilczynska M, Lobov S, Ohlsson PI, Ny T: A redox-sensitive loop regulates plasminogen activator inhibitor type 2 (PAI-2) polymerization. / EMBO J 2003, 22:1753鈥?761. CrossRef
    68. Allen TA, Von Kaenel S, Goodrich JA, Kugel JF: The SINE-encoded mouse B2 RNA represses mRNA transcription in response to heat shock. / Nat Struct Mol Biol 2004, 11:816鈥?21. CrossRef
    69. Espinoza CA, Allen TA, Hieb AR, Kugel JF, Goodrich JA: B2 RNA binds directly to RNA polymerase II to repress transcript synthesis. / Nat Struct Mol Biol 2004, 11:822鈥?29. CrossRef
    70. Rubin CM, Kimura RH, Schmid CW: Selective stimulation of translational expression by Alu RNA. / Nucleic Acids Res 2002, 30:3253鈥?261. CrossRef
  • 作者单位:Xiaodong Fang (1)
    Yulian Mou (2)
    Zhiyong Huang (1)
    Yong Li (1) (3) (4)
    Lijuan Han (1)
    Yanfeng Zhang (5)
    Yue Feng (1)
    Yuanxin Chen (1)
    Xuanting Jiang (1)
    Wei Zhao (1)
    Xiaoqing Sun (1)
    Zhiqiang Xiong (1)
    Lan Yang (1)
    Huan Liu (1) (3) (4)
    Dingding Fan (1)
    Likai Mao (1)
    Lijie Ren (6)
    Chuxin Liu (1) (3) (4)
    Juan Wang (1)
    Kui Li (2)
    Guangbiao Wang (1)
    Shulin Yang (2)
    Liangxue Lai (7)
    Guojie Zhang (1)
    Yingrui Li (1)
    Jun Wang (1) (8) (9)
    Lars Bolund (1) (10)
    Huanming Yang (1)
    Jian Wang (1)
    Shutang Feng (2)
    Songgang Li (1)
    Yutao Du (1) (3) (4)

    1. BGI-Shenzhen, Bei Shan Road, Yantian, Shenzhen, 518083, China
    2. Institute of Animal Science (IAS), Chinese Academy of Agriculture Science (CAAS), Beijing, 10094, China
    3. Shenzhen Engineering Laboratory for Genomics-Assisted Animal Breeding, BGI-Shenzhen, Bei Shan Road, Yantian, Shenzhen, 518083, China
    4. BGI Ark Biotechnology (BAB), Bei Shan Road, Yantian, Shenzhen, 518083, China
    5. State Key Laboratory of Genetic Resources and Evolution, Kunming Institute of Zoology, Chinese Academy of Sciences, Kunming, China
    6. Department of Neurology, Shenzhen Second People鈥檚 Hospital (First Affiliated Hospital of Shenzhen University), Shenzhen, 518035, China
    7. Guangzhou Institute of Biomedicine and Health, Chinese Academy of Sciences, Guangdong, China
    8. Novo Nordisk Foundation Center for Basic Metabolic Research, University of Copenhagen, Copenhagen, Denmark
    9. Department of Biology, University of Copenhagen, Copenhagen, Denmark
    10. Department of Biomedicine, Aarhus University, Aarhus C, Denmark
  • ISSN:2047-217X
文摘
Background The pig is an economically important food source, amounting to approximately 40% of all meat consumed worldwide. Pigs also serve as an important model organism because of their similarity to humans at the anatomical, physiological and genetic level, making them very useful for studying a variety of human diseases. A pig strain of particular interest is the miniature pig, specifically the Wuzhishan pig (WZSP), as it has been extensively inbred. Its high level of homozygosity offers increased ease for selective breeding for specific traits and a more straightforward understanding of the genetic changes that underlie its biological characteristics. WZSP also serves as a promising means for applications in surgery, tissue engineering, and xenotransplantation. Here, we report the sequencing and analysis of an inbreeding WZSP genome. Results Our results reveal some unique genomic features, including a relatively high level of homozygosity in the diploid genome, an unusual distribution of heterozygosity, an over-representation of tRNA-derived transposable elements, a small amount of porcine endogenous retrovirus, and a lack of type C retroviruses. In addition, we carried out systematic research on gene evolution, together with a detailed investigation of the counterparts of human drug target genes. Conclusion Our results provide the opportunity to more clearly define the genomic character of pig, which could enhance our ability to create more useful pig models.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700