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PLOS ONE  2008 

Genome-Wide Analysis of Abnormal H3K9 Acetylation in Cloned Mice

DOI: 10.1371/journal.pone.0001905

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Abstract:

Somatic nuclear transfer is a cloning technique that shows great promise in the application to regenerative medicine. Although cloned animals are genetically identical to their donor counterparts, abnormalities in phenotype and gene expression are frequently observed. One hypothesis is that the cause of these abnormalities is due to epigenetic aberration. In this report, we focused our analysis on the acetylation of histone H3 at lysine9 (H3K9Ac). Through the use of whole genome tiling arrays and quantitative PCR, we examined this epigenetic event and directly compared and assessed the differences between a cloned mouse (C1) and its parental nuclear donor (D1) counterpart. We identified 4720 regions of chromosomal DNA that showed notable differences in H3K9Ac and report here many genes identified in these hyper- and hypo-acetylated regions. Analysis of a second clone (C2) and its parental donor counterpart (D2) for H3K9Ac showed a high degree of similarity to the C1/D1 pair. This conservation of aberrant acetylation is suggestive of a reproducible epigenetic phenomenon that may lead to the frequent abnormalities observed in cloned mice, such as obesity. Furthermore, we demonstrated Crp which was identified as a hyper-acetylated gene in this study is related to the body mass, suggesting that Crp is a possible candidate of a cause for the abnormal obesity in cloned mice. In this, one of the first reports describing genome-wide epigenetic abberation between parental and nuclear transfer-cloned mammals, we propose that aberrant acetylation of histones (H3K9Ac) flanking promoter regions highly correlates with gene-expression and may itself be an epigenetic change that accounts for variable expression patterns observed in cloned animals.

References

[1]  Wakayama T, Perry AC, Zuccotti M, Johnson KR, Yanagimachi R (1998) Full-term development of mice from enucleated oocytes injected with cumulus cell nuclei. Nature 394: 369–374.
[2]  Wakayama T, Rodriguez I, Perry AC, Yanagimachi R, Mombaerts P (1999) Mice cloned from embryonic stem cells. Proc Natl Acad Sci U S A 96: 14984–14989.
[3]  Enright BP, Kubota C, Yang X, Tian XC (2003) Epigenetic characteristics and development of embryos cloned from donor cells treated by trichostatin A or 5-aza-2′-deoxycytidine. Biol Reprod 69: 896–901.
[4]  Kishigami S, Mizutani E, Ohta H, Hikichi T, Thuan NV, et al. (2006) Significant improvement of mouse cloning technique by treatment with trichostatin A after somatic nuclear transfer. Biochem Biophys Res Commun 340: 183–189.
[5]  Wakayama T (2007) Production of cloned mice and ES cells from adult somatic cells by nuclear transfer: how to improve cloning efficiency? J Reprod Dev 53: 13–26.
[6]  Kishigami S, Bui HT, Wakayama S, Tokunaga K, Van Thuan N, et al. (2007) Successful mouse cloning of an outbred strain by trichostatin A treatment after somatic nuclear transfer. J Reprod Dev 53: 165–170.
[7]  Wakayama T, Yanagimachi R (1999) Cloning the laboratory mouse. Semin Cell Dev Biol 10: 253–258.
[8]  Tamashiro KL, Wakayama T, Akutsu H, Yamazaki Y, Lachey JL, et al. (2002) Cloned mice have an obese phenotype not transmitted to their offspring. Nat Med 8: 262–267.
[9]  Tanaka S, Oda M, Toyoshima Y, Wakayama T, Tanaka M, et al. (2001) Placentomegaly in cloned mouse concepti caused by expansion of the spongiotrophoblast layer. Biol Reprod 65: 1813–1821.
[10]  Ohgane J, Wakayama T, Senda S, Yamazaki Y, Inoue K, et al. (2004) The Sall3 locus is an epigenetic hotspot of aberrant DNA methylation associated with placentomegaly of cloned mice. Genes Cells 9: 253–260.
[11]  Barker DJ (2007) The origins of the developmental origins theory. J Intern Med 261: 412–417.
[12]  Barker DJ, Bagby SP, Hanson MA (2006) Mechanisms of disease: in utero programming in the pathogenesis of hypertension. Nat Clin Pract Nephrol 2: 700–707.
[13]  Yu Y, Ding C, Wang E, Chen X, Li X, et al. (2007) Piezo-assisted nuclear transfer affects cloning efficiency and may cause apoptosis. Reproduction 133: 947–954.
[14]  Humpherys D, Eggan K, Akutsu H, Friedman A, Hochedlinger K, et al. (2002) Abnormal gene expression in cloned mice derived from embryonic stem cell and cumulus cell nuclei. Proc Natl Acad Sci U S A 99: 12889–12894.
[15]  Inoue K, Kohda T, Lee J, Ogonuki N, Mochida K, et al. (2002) Faithful expression of imprinted genes in cloned mice. Science 295: 297.
[16]  Kohda T, Inoue K, Ogonuki N, Miki H, Naruse M, et al. (2005) Variation in gene expression and aberrantly regulated chromosome regions in cloned mice. Biol Reprod 73: 1302–1311.
[17]  Tong GQ, Heng BC, Tan LG, Ng SC (2006) Aberrant profile of gene expression in cloned mouse embryos derived from donor cumulus nuclei. Cell Tissue Res 325: 231–243.
[18]  Chen ZX, Riggs AD (2005) Maintenance and regulation of DNA methylation patterns in mammals. Biochem Cell Biol 83: 438–448.
[19]  Dodd IB, Micheelsen MA, Sneppen KGT (2007) Theoretical Analysis of Epigenetic Cell Memoryby Nucleosome Modification. Cell 129: 813–822.
[20]  Yang F, Hao R, Kessler B, Brem G, Wolf E, et al. (2007) Rabbit somatic cell cloning: effects of donor cell type, histone acetylation status and chimeric embryo complementation. Reproduction 133: 219–230.
[21]  Yang J, Yang S, Beaujean N, Niu Y, He X, et al. (2007) Epigenetic marks in cloned rhesus monkey embryos: comparison with counterparts produced in vitro. Biol Reprod 76: 36–42.
[22]  Bernstein BE, Kamal M, Lindblad-Toh K, Bekiranov S, Bailey DK, et al. (2005) Genomic maps and comparative analysis of histone modifications in human and mouse. Cell 120: 169–181.
[23]  Nishida H, Suzuki T, Kondo S, Miura H, Fujimura Y, et al. (2006) Histone H3 acetylated at lysine 9 in promoter is associated with low nucleosome density in the vicinity of transcription start site in human cell. Chromosome Res 14: 203–211.
[24]  Heintzman ND, Stuart RK, Hon G, Fu Y, Ching CW, et al. (2007) Distinct and predictive chromatin signatures of transcriptional promoters and enhancers in the human genome. Nat Genet 39: 311–318.
[25]  Roh TY, Cuddapah S, Zhao K (2005) Active chromatin domains are defined by acetylation islands revealed by genome-wide mapping. Genes Dev 19: 542–552.
[26]  Kapranov P, Cawley SE, Drenkow J, Bekiranov S, Strausberg RL, et al. (2002) Large-scale transcriptional activity in chromosomes 21 and 22. Science 296: 916–919.
[27]  Kampa D, Cheng J, Kapranov P, Yamanaka M, Brubaker S, et al. (2004) Novel RNAs identified from an in-depth analysis of the transcriptome of human chromosomes 21 and 22. Genome Res 14: 331–342.
[28]  Cheng J, Kapranov P, Drenkow J, Dike S, Brubaker S, et al. (2005) Transcriptional maps of 10 human chromosomes at 5-nucleotide resolution. Science 308: 1149–1154.
[29]  Hasegawa Y, Fukuda S, Shimokawa K, Kondo S, Maeda N, et al. (2006) A RecA-mediated exon profiling method. Nucleic Acids Res 34: e97.
[30]  Cawley S, Bekiranov S, Ng HH, Kapranov P, Sekinger EA, et al. (2004) Unbiased mapping of transcription factor binding sites along human chromosomes 21 and 22 points to widespread regulation of noncoding RNAs. Cell 116: 499–509.
[31]  Okazaki Y, Furuno M, Kasukawa T, Adachi J, Bono H, et al. (2002) Analysis of the mouse transcriptome based on functional annotation of 60,770 full-length cDNAs. Nature 420: 563–573.
[32]  Kent WJ (2002) BLAT–the BLAST-like alignment tool. Genome Res 12: 656–664.
[33]  Florea L, Hartzell G, Zhang Z, Rubin GM, Miller W (1998) A computer program for aligning a cDNA sequence with a genomic DNA sequence. Genome Res 8: 967–974.
[34]  Guenther MG, Levine SS, Boyer LA, Jaenisch R, Young RA (2007) A chromatin landmark and transcription initiation at most promoters in human cells. Cell 130: 77–88.
[35]  Nishida H, Suzuki T, Ookawa H, Tomaru Y, Hayashizaki Y (2005) Comparative analysis of expression of histone H2a genes in mouse. BMC Genomics 6: 108.
[36]  Livak KJ, Schmittgen TD (2001) Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. Methods 25: 402–408.
[37]  Balbach ST, Jauch A, Bohm-Steuer B, Cavaleri FM, Han YM, et al. (2007) Chromosome stability differs in cloned mouse embryos and derivative ES cells. Dev Biol 308: 309–321.
[38]  Ohgane J, Wakayama T, Kogo Y, Senda S, Hattori N, et al. (2001) DNA methylation variation in cloned mice. Genesis 30: 45–50.
[39]  Sandelin A, Carninci P, Lenhard B, Ponjavic J, Hayashizaki Y, et al. (2007) Mammalian RNA polymerase II core promoters: insights from genome-wide studies. Nat Rev Genet.
[40]  Szmitko PE, Verma S (2006) C-Reactive Protein and the Metabolic Syndrome: Useful Addition to the Cardiovascular Risk Profile? J Cardiometab Syndr 1: 66–69.
[41]  Farooqi IS, O'Rahilly S (2007) Is leptin an important physiological regulator of CRP? Nat Med 13: 16–17; author reply 19–21.
[42]  Gertler A, Niv-Spector L, Reicher S (2007) Is leptin an important physiological regulator of CRP? Nat Med 13: 18–19; author reply 19–21.
[43]  Hutchinson WL, Coll AP, Gallimore JR, Tennent GA, Pepys MB (2007) Is leptin an important physiological regulator of CRP? Nat Med 13: 17–18; author reply 19–21.
[44]  Chen K, Li F, Li J, Cai H, Strom S, et al. (2006) Induction of leptin resistance through direct interaction of C-reactive protein with leptin. Nat Med 12: 425–432.
[45]  McGregor GP, Desaga JF, Ehlenz K, Fischer A, Heese F, et al. (1996) Radiommunological measurement of leptin in plasma of obese and diabetic human subjects. Endocrinology 137: 1501–1504.
[46]  Shimizu H, Shimomura Y, Hayashi R, Ohtani K, Sato N, et al. (1997) Serum leptin concentration is associated with total body fat mass, but not abdominal fat distribution. Int J Obes Relat Metab Disord 21: 536–541.
[47]  Gura T (1999) Obesity research. Leptin not impressive in clinical trial. Science 286: 881–882.
[48]  Bjorbaek C, El-Haschimi K, Frantz JD, Flier JS (1999) The role of SOCS-3 in leptin signaling and leptin resistance. J Biol Chem 274: 30059–30065.
[49]  Senda S, Wakayama T, Arai Y, Yamazaki Y, Ohgane J, et al. (2007) DNA methylation errors in cloned mice disappear with advancement of aging. Cloning Stem Cells 9: 293–302.
[50]  Wakayama S, Mizutani E, Kishigami S, Thuan NV, Ohta H, et al. (2005) Mice cloned by nuclear transfer from somatic and ntES cells derived from the same individuals. J Reprod Dev 51: 765–772.
[51]  Chatot CL, Ziomek CA, Bavister BD, Lewis JL, Torres I (1989) An improved culture medium supports development of random-bred 1-cell mouse embryos in vitro. J Reprod Fertil 86: 679–688.
[52]  Chomczynski P, Sacchi N (1987) Single-step method of RNA isolation by acid guanidinium thiocyanate-phenol-chloroform extraction. Anal Biochem 162: 156–159.

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