Retrotransposons' high capacity for mutagenesis is a threat that genomes need to control tightly. Transcriptional gene silencing is a general and highly effective control of retrotransposon expression. Yet, some retrotransposons manage to transpose and proliferate in plant genomes, suggesting that, as shown for plant viruses, retrotransposons can escape silencing. However no evidence of retrotransposon silencing escape has been reported. Here we analyze the silencing control of the tobacco Tnt1 retrotransposon and report that even though constructs driven by the Tnt1 promoter become silenced when stably integrated in tobacco, the endogenous Tnt1 elements remain active. Silencing of Tnt1-containing transgenes correlates with high DNA methylation and the inability to incorporate H2A.Z into their promoters, whereas the endogenous Tnt1 elements remain partially methylated at asymmetrical positions and incorporate H2A.Z upon induction. Our results show that the promoter of Tnt1 is a target of silencing in tobacco, but also that endogenous Tnt1 elements can escape this control and be expressed in their natural host.
References
[1]
Ahmed I, Sarazin A, Bowler C, Colot V, Quesneville H (2011) Genome-wide evidence for local DNA methylation spreading from small RNA-targeted sequences in Arabidopsis. Nucleic Acids Research.
[2]
Schnable PS, Ware D, Fulton RS, Stein JC, Wei F, et al. (2009) The B73 maize genome: complexity, diversity, and dynamics. Science 326: 1112–1115.
[3]
Sinzelle L, Izsvak Z, Ivics Z (2009) Molecular domestication of transposable elements: from detrimental parasites to useful host genes. Cellular and molecular life sciences: CMLS 66: 1073–1093.
[4]
Matzke MA, Mette MF, Aufsatz W, Jakowitsch J, Matzke AJ (1999) Host defenses to parasitic sequences and the evolution of epigenetic control mechanisms. Genetica 107: 271–287.
[5]
Vaucheret H, Beclin C, Fagard M (2001) Post-transcriptional gene silencing in plants. Journal of cell science 114: 3083–3091.
[6]
Furner IJ, Matzke M (2011) Methylation and demethylation of the Arabidopsis genome. Current Opinion in Plant Biology 14: 137–141.
[7]
Huettel B, Kanno T, Daxinger L, Aufsatz W, Matzke AJ, et al. (2006) Endogenous targets of RNA-directed DNA methylation and Pol IV in Arabidopsis. The EMBO journal 25: 2828–2836.
[8]
Burgyan J, Havelda Z (2011) Viral suppressors of RNA silencing. Trends in Plant Science 16: 265–272.
[9]
Giner A, López-Moya JJ, Lakatos L (2010) RNA silencing in plants and the role of viral suppressors. In: M.A M, editor. RNA interference and viruses: current innovations and future trends. Horizon Press. pp. 25–46.
[10]
Fukai E, Umehara Y, Sato S, Endo M, Kouchi H, et al. (2010) Derepression of the plant Chromovirus LORE1 induces germline transposition in regenerated plants. PLoS genetics 6: e1000868.
[11]
Cheng C, Daigen M, Hirochika H (2006) Epigenetic regulation of the rice retrotransposon Tos17. Molecular genetics and genomics : MGG 276: 378–390.
[12]
Sabot F, Picault N, El-Baidouri M, Llauro C, Chaparro C, et al. (2011) Transpositional landscape of the rice genome revealed by paired-end mapping of high-throughput re-sequencing data. The Plant journal : for cell and molecular biology 66: 241–246.
[13]
Tsukahara S, Kobayashi A, Kawabe A, Mathieu O, Miura A, et al. (2009) Bursts of retrotransposition reproduced in Arabidopsis. Nature 461: 423–426.
[14]
Mirouze M, Reinders J, Bucher E, Nishimura T, Schneeberger K, et al. (2009) Selective epigenetic control of retrotransposition in Arabidopsis. Nature 461: 427–430.
[15]
Lisch D (2009) Epigenetic regulation of transposable elements in plants. Annual Review of Plant Biology 60: 43–66.
[16]
Meyers BC, Tingey SV, Morgante M (2001) Abundance, distribution, and transcriptional activity of repetitive elements in the maize genome. Genome Research 11: 1660–1676.
[17]
Picault N, Chaparro C, Piegu B, Stenger W, Formey D, et al. (2009) Identification of an active LTR retrotransposon in rice. The Plant journal : for cell and molecular biology 58: 754–765.
[18]
Hirochika H, Okamoto H, Kakutani T (2000) Silencing of retrotransposons in arabidopsis and reactivation by the ddm1 mutation. The Plant cell 12: 357–369.
[19]
Perez-Hormaeche J, Potet F, Beauclair L, Le Masson I, Courtial B, et al. (2008) Invasion of the Arabidopsis Genome by the Tobacco Retrotransposon Tnt1 Is Controlled by Reversible Transcriptional Gene Silencing. Plant Physiol 147: 1264–1278.
[20]
Casacuberta JM, Vernhettes S, Grandbastien MA (1995) Sequence variability within the tobacco retrotransposon Tnt1 population. The EMBO journal 14: 2670–2678.
[21]
Casacuberta JM, Vernhettes S, Audeon C, Grandbastien MA (1997) Quasispecies in retrotransposons: a role for sequence variability in Tnt1 evolution. Genetica 100: 109–117.
[22]
Grandbastien MA, Audeon C, Bonnivard E, Casacuberta JM, Chalhoub B, et al. (2005) Stress activation and genomic impact of Tnt1 retrotransposons in Solanaceae. Cytogenetic and genome research 110: 229–241.
[23]
Beguiristain T, Grandbastien MA, Puigdomenech P, Casacuberta JM (2001) Three Tnt1 subfamilies show different stress-associated patterns of expression in tobacco. Consequences for retrotransposon control and evolution in plants. Plant physiology 127: 212–221.
[24]
Hirochika H, Sugimoto K, Otsuki Y, Tsugawa H, Kanda M (1996) Retrotransposons of rice involved in mutations induced by tissue culture. Proceedings of the National Academy of Sciences of the United States of America 93: 7783–7788.
[25]
Takeda S, Sugimoto K, Otsuki H, Hirochika H (1999) A 13-bp cis-regulatory element in the LTR promoter of the tobacco retrotransposon Tto1 is involved in responsiveness to tissue culture, wounding, methyl jasmonate and fungal elicitors. The Plant journal : for cell and molecular biology 18: 383–393.
[26]
Ito H, Gaubert H, Bucher E, Mirouze M, Vaillant I, et al. (2011) An siRNA pathway prevents transgenerational retrotransposition in plants subjected to stress. Nature 472: 115–119.
[27]
Grandbastien MA (1998) Activation of plant retrotransposons under stress conditions. Trends in Plant Science 3: 181–187.
[28]
Wessler SR (1996) Turned on by stress. Plant retrotransposons. Current biology : CB 6: 959–961.
[29]
Tittel-Elmer M, Bucher E, Broger L, Mathieu O, Paszkowski J, et al. (2010) Stress-induced activation of heterochromatic transcription. PLoS genetics 6: e1001175.
[30]
Chinnusamy V, Zhu JK (2009) Epigenetic regulation of stress responses in plants. Current Opinion in Plant Biology 12: 133–139.
[31]
Tanurdzic M, Vaughn MW, Jiang H, Lee TJ, Slotkin RK, et al. (2008) Epigenomic consequences of immortalized plant cell suspension culture. PLoS Biology 6: 2880–2895.
[32]
Pouteau S, Huttner E, Grandbastien MA, Caboche M (1991) Specific expression of the tobacco Tnt1 retrotransposon in protoplasts. The EMBO journal 10: 1911–1918.
[33]
Mhiri C, Morel JB, Vernhettes S, Casacuberta JM, Lucas H, et al. (1997) The promoter of the tobacco Tnt1 retrotransposon is induced by wounding and by abiotic stress. Plant Molecular Biology 33: 257–266.
[34]
Pouteau S, Grandbastien MA, Boccara M (1994) Microbial Elicitors of Plant Defense Responses Activate Transcription of a Retrotransposon. Plant Journal 5: 535–542.
[35]
Vaucheret H (1993) Identification of a general silencer for 19S and 35S promoters in a transgenic tobacco plant: 90 bp of homology in the promoter sequence are sufficient for transInactivation. C R Acad Sci Paris 316: 1471–1483.
[36]
Roig-Villanova I, Bou J, Sorin C, Devlin PF, Martinez-Garcia JF (2006) Identification of primary target genes of phytochrome signaling. Early transcriptional control during shade avoidance responses in Arabidopsis. Plant physiology 141: 85–96.
[37]
Hamilton A, Voinnet O, Chappell L, Baulcombe D (2002) Two classes of short interfering RNA in RNA silencing. EMBO J 21: 4671–4679.
[38]
Vaucheret H (2008) Plant ARGONAUTES. Trends in Plant Science 13: 350–358.
[39]
Lakatos L, Csorba T, Pantaleo V, Chapman EJ, Carrington JC, et al. (2006) Small RNA binding is a common strategy to suppress RNA silencing by several viral suppressors. The EMBO journal 25: 2768–2780.
[40]
Saze H, Kakutani T (2011) Differentiation of epigenetic modifications between transposons and genes. Current Opinion in Plant Biology 14: 81–87.
[41]
Hernandez-Pinzon I, de Jesus E, Santiago N, Casacuberta JM (2009) The frequent transcriptional readthrough of the tobacco Tnt1 retrotransposon and its possible implications for the control of resistance genes. Journal of molecular evolution 68: 269–278.
[42]
Ding Y, Lapko H, Ndamukong I, Xia Y, Al-Abdallat A, et al. (2009) The Arabidopsis chromatin modifier ATX1, the myotubularin-like AtMTM and the response to drought. Plant signaling & behavior 4: 1049–1058.
[43]
van Dijk K, Ding Y, Malkaram S, Riethoven JJ, Liu R, et al. (2010) Dynamic changes in genome-wide histone H3 lysine 4 methylation patterns in response to dehydration stress in Arabidopsis thaliana. BMC Plant Biology 10: 238.
[44]
Zilberman D, Coleman-Derr D, Ballinger T, Henikoff S (2008) Histone H2A.Z and DNA methylation are mutually antagonistic chromatin marks. Nature 456: 125–129.
[45]
Deal RB, Topp CN, McKinney EC, Meagher RB (2007) Repression of flowering in Arabidopsis requires activation of FLOWERING LOCUS C expression by the histone variant H2A.Z. The Plant cell 19: 74–83.
[46]
Meneghini MD, Wu M, Madhani HD (2003) Conserved histone variant H2A.Z protects euchromatin from the ectopic spread of silent heterochromatin. Cell 112: 725–736.
[47]
Zemach A, McDaniel IE, Silva P, Zilberman D (2010) Genome-wide evolutionary analysis of eukaryotic DNA methylation. Science 328: 916–919.
[48]
Pauls PK, Kunert K, Huttner E, Grandbastien MA (1994) Expression of the tobacco Tnt1 retrotransposon promoter in heterologous species. Plant Molecular Biology 26: 393–402.
[49]
Lisch D (2009) Epigenetic Regulation of Transposable Elements in Plants. Annual Review of Plant Biology 60:
[50]
Grandbastien MA, Lucas H, Morel JB, Mhiri C, Vernhettes S, et al. (1997) The expression of the tobacco Tnt1 retrotransposon is linked to plant defense responses. Genetica 100: 241–252.
[51]
Pavet V, Quintero C, Cecchini NM, Rosa AL, Alvarez ME (2006) Arabidopsis displays centromeric DNA hypomethylation and cytological alterations of heterochromatin upon attack by pseudomonas syringae. Molecular plant-microbe interactions : MPMI 19: 577–587.
[52]
Le QH, Melayah D, Bonnivard E, Petit M, Grandbastien MA (2007) Distribution dynamics of the Tnt1 retrotransposon in tobacco. Molecular genetics and genomics : MGG 278: 639–651.
[53]
Gevry N, Hardy S, Jacques PE, Laflamme L, Svotelis A, et al. (2009) Histone H2A.Z is essential for estrogen receptor signaling. Genes & development 23: 1522–1533.
[54]
Wesley SV, Helliwell CA, Smith NA, Wang MB, Rouse DT, et al. (2001) Construct design for efficient, effective and high-throughput gene silencing in plants. The Plant journal : for cell and molecular biology 27: 581–590.
[55]
Logemann J, Schell J, Willmitzer L (1987) Improved method for the isolation of RNA from plant tissues. Analytical biochemistry 163: 16–20.
[56]
Church GM, Gilbert W (1984) Genomic sequencing. Proceedings of the National Academy of Sciences of the United States of America 81: 1991–1995.
[57]
Gruntman E, Qi Y, Slotkin RK, Roeder T, Martienssen RA, et al. (2008) Kismeth: analyzer of plant methylation states through bisulfite sequencing. BMC bioinformatics 9: 371.
[58]
Canudas S, Perez S, Fanti L, Pimpinelli S, Singh N, et al. (2005) dSAP18 and dHDAC1 contribute to the functional regulation of the Drosophila Fab-7 element. Nucleic Acids Research 33: 4857–4864.
[59]
Vernhettes S, Grandbastien MA, Casacuberta JM (1997) In vivo characterization of transcriptional regulatory sequences involved in the defence-associated expression of the tobacco retrotransposon Tnt1. Plant Molecular Biology 35: 673–679.