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PMID: 23767915 Published · epublish English Journal Article Research Support, Non-U.S. Gov't

Hyperosmotic priming of Arabidopsis seedlings establishes a long-term somatic memory accompanied by specific changes of the epigenome.

Genome biology ·Vol. 14 ·No. 6 ·2013-06-14 ·Pages R59

Sani E, Herzyk P, Perrella G, Colot V, Amtmann A

Abstract

In arid and semi-arid environments, drought and soil salinity usually occur at the beginning and end of a plant's life cycle, offering a natural opportunity for the priming of young plants to enhance stress tolerance in mature plants. Chromatin marks, such as histone modifications, provide a potential molecular mechanism for priming plants to environmental stresses, but whether transient exposure of seedlings to hyperosmotic stress leads to chromatin changes that are maintained throughout vegetative growth remains unclear. We have established an effective protocol for hyperosmotic priming in the model plant Arabidopsis, which includes a transient mild salt treatment of seedlings followed by an extensive period of growth in control conditions. Primed plants are identical to non-primed plants in growth and development, yet they display reduced salt uptake and enhanced drought tolerance after a second stress exposure. ChIP-seq analysis of four histone modifications revealed that the priming treatment altered the epigenomic landscape; the changes were small but they were specific for the treated tissue, varied in number and direction depending on the modification, and preferentially targeted transcription factors. Notably, priming leads to shortening and fractionation of H3K27me3 islands. This effect fades over time, but is still apparent after a ten day growth period in control conditions. Several genes with priming-induced differences in H3K27me3 showed altered transcriptional responsiveness to the second stress treatment. Experience of transient hyperosmotic stress by young plants is stored in a long-term somatic memory comprising differences of chromatin status, transcriptional responsiveness and whole plant physiology.

MeSH Terms
Acclimatization Arabidopsis/drug effects,genetics,growth & development,metabolism Arabidopsis Proteins/genetics,metabolism DNA Methylation Droughts Epigenesis, Genetic Epigenomics Gene Expression Regulation, Plant Histones/genetics,metabolism Osmotic Pressure Salinity Seedlings/drug effects,genetics,growth & development,metabolism Sodium Chloride/pharmacology Transcription Factors/genetics,metabolism
Chemicals
Arabidopsis Proteins Histones Transcription Factors Sodium Chloride
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Sani Emanuela
Herzyk Pawel
Perrella Giorgio
Colot Vincent
Amtmann Anna
References (61)
61 references, click to expand
  1. Epialleles in plant evolution.
    Genome Biol. 2012 Oct 11;13(10):249 PMID: 23058244
  2. Arabidopsis REF6 is a histone H3 lysine 27 demethylase.
    Nat Genet. 2011 Jun 05;43(7):715-9 PMID: 21642989
  3. Alterations of lysine modifications on the histone H3 N-tail under drought stress conditions in Arabidopsis thaliana.
    Plant Cell Physiol. 2008 Oct;49(10):1580-8 PMID: 18779215
  4. Functional analysis of AtHKT1 in Arabidopsis shows that Na(+) recirculation by the phloem is crucial for salt tolerance.
    EMBO J. 2003 May 1;22(9):2004-14 PMID: 12727868
  5. Dynamics and biological relevance of DNA demethylation in Arabidopsis antibacterial defense.
    Proc Natl Acad Sci U S A. 2013 Feb 5;110(6):2389-94 PMID: 23335630
  6. Molecular aspects of defence priming.
    Trends Plant Sci. 2011 Oct;16(10):524-31 PMID: 21782492
  7. The Na+ transporter AtHKT1;1 controls retrieval of Na+ from the xylem in Arabidopsis.
    Plant Cell Environ. 2007 Apr;30(4):497-507 PMID: 17324235
  8. An siRNA pathway prevents transgenerational retrotransposition in plants subjected to stress.
    Nature. 2011 Apr 7;472(7341):115-9 PMID: 21399627
  9. Histone modification: cause or cog?
    Trends Genet. 2011 Oct;27(10):389-96 PMID: 21764166
  10. Genome-wide analysis of mono-, di- and trimethylation of histone H3 lysine 4 in Arabidopsis thaliana.
    Genome Biol. 2009;10(6):R62 PMID: 19508735
  11. Genome-wide profiling of histone H3 lysine 9 acetylation and dimethylation in Arabidopsis reveals correlation between multiple histone marks and gene expression.
    Plant Mol Biol. 2010 Apr;72(6):585-95 PMID: 20054610
  12. Stress-induced chromatin changes: a critical view on their heritability.
    Plant Cell Physiol. 2012 May;53(5):801-8 PMID: 22457398
  13. Histone occupancy-dependent and -independent removal of H3K27 trimethylation at cold-responsive genes in Arabidopsis.
    Plant J. 2009 Oct;60(1):112-21 PMID: 19500304
  14. Whole-genome analysis of histone H3 lysine 27 trimethylation in Arabidopsis.
    PLoS Biol. 2007 May;5(5):e129 PMID: 17439305
  15. Accurate normalization of real-time quantitative RT-PCR data by geometric averaging of multiple internal control genes.
    Genome Biol. 2002 Jun 18;3(7):RESEARCH0034 PMID: 12184808
  16. Genome-wide evaluation of histone methylation changes associated with leaf senescence in Arabidopsis.
    PLoS One. 2012;7(3):e33151 PMID: 22427974
  17. Transgenerational inheritance and resetting of stress-induced loss of epigenetic gene silencing in Arabidopsis.
    Mol Plant. 2010 May;3(3):594-602 PMID: 20410255
  18. Acquired tolerance to temperature extremes.
    Trends Plant Sci. 2003 Apr;8(4):179-87 PMID: 12711230
  19. Ultrafast and memory-efficient alignment of short DNA sequences to the human genome.
    Genome Biol. 2009;10(3):R25 PMID: 19261174
  20. Transcript assembly and quantification by RNA-Seq reveals unannotated transcripts and isoform switching during cell differentiation.
    Nat Biotechnol. 2010 May;28(5):511-5 PMID: 20436464
  21. The SWI2/SNF2 chromatin remodeling ATPase BRAHMA represses abscisic acid responses in the absence of the stress stimulus in Arabidopsis.
    Plant Cell. 2012 Dec;24(12):4892-906 PMID: 23209114
  22. Epigenetic variation: origin and transgenerational inheritance.
    Curr Opin Plant Biol. 2012 Nov;15(5):562-7 PMID: 22939250
  23. Systematic and integrative analysis of large gene lists using DAVID bioinformatics resources.
    Nat Protoc. 2009;4(1):44-57 PMID: 19131956
  24. Next-generation systemic acquired resistance.
    Plant Physiol. 2012 Feb;158(2):844-53 PMID: 22147520
  25. Two distinct roles of ARABIDOPSIS HOMOLOG OF TRITHORAX1 (ATX1) at promoters and within transcribed regions of ATX1-regulated genes.
    Plant Cell. 2011 Jan;23(1):350-63 PMID: 21266657
  26. Histone methylation in higher plants.
    Annu Rev Plant Biol. 2010;61:395-420 PMID: 20192747
  27. The Integrated Genome Browser: free software for distribution and exploration of genome-scale datasets.
    Bioinformatics. 2009 Oct 15;25(20):2730-1 PMID: 19654113
  28. Transgenerational inheritance of modified DNA methylation patterns and enhanced tolerance induced by heavy metal stress in rice (Oryza sativa L.).
    PLoS One. 2012;7(9):e41143 PMID: 22984395
  29. A gene expression map of the Arabidopsis root.
    Science. 2003 Dec 12;302(5652):1956-60 PMID: 14671301
  30. Genome-wide association of histone H3 lysine nine methylation with CHG DNA methylation in Arabidopsis thaliana.
    PLoS One. 2008 Sep 08;3(9):e3156 PMID: 18776934
  31. Shoot Na+ exclusion and increased salinity tolerance engineered by cell type-specific alteration of Na+ transport in Arabidopsis.
    Plant Cell. 2009 Jul;21(7):2163-78 PMID: 19584143
  32. Natural variation of Arabidopsis root architecture reveals complementing adaptive strategies to potassium starvation.
    Plant Physiol. 2013 Mar;161(3):1421-32 PMID: 23329148
  33. Establishment of histone modifications after chromatin assembly.
    Nucleic Acids Res. 2009 Aug;37(15):5032-40 PMID: 19541851
  34. Integrative epigenomic mapping defines four main chromatin states in Arabidopsis.
    EMBO J. 2011 May 18;30(10):1928-38 PMID: 21487388
  35. Dynamic changes in genome-wide histone H3 lysine 4 methylation patterns in response to dehydration stress in Arabidopsis thaliana.
    BMC Plant Biol. 2010 Nov 05;10:238 PMID: 21050490
  36. Auxin controls Arabidopsis adventitious root initiation by regulating jasmonic acid homeostasis.
    Plant Cell. 2012 Jun;24(6):2515-27 PMID: 22730403
  37. Role of the polycomb protein EED in the propagation of repressive histone marks.
    Nature. 2009 Oct 8;461(7265):762-7 PMID: 19767730
  38. TopHat: discovering splice junctions with RNA-Seq.
    Bioinformatics. 2009 May 1;25(9):1105-11 PMID: 19289445
  39. An HMM approach to genome-wide identification of differential histone modification sites from ChIP-seq data.
    Bioinformatics. 2008 Oct 15;24(20):2344-9 PMID: 18667444
  40. Widespread dynamic DNA methylation in response to biotic stress.
    Proc Natl Acad Sci U S A. 2012 Aug 7;109(32):E2183-91 PMID: 22733782
  41. Energy use efficiency is characterized by an epigenetic component that can be directed through artificial selection to increase yield.
    Proc Natl Acad Sci U S A. 2009 Nov 24;106(47):20109-14 PMID: 19897729
  42. Vernalization - a cold-induced epigenetic switch.
    J Cell Sci. 2012 Aug 15;125(Pt 16):3723-31 PMID: 22935652
  43. A clustering approach for identification of enriched domains from histone modification ChIP-Seq data.
    Bioinformatics. 2009 Aug 1;25(15):1952-8 PMID: 19505939
  44. Regulation of Arabidopsis leaf hydraulics involves light-dependent phosphorylation of aquaporins in veins.
    Plant Cell. 2013 Mar;25(3):1029-39 PMID: 23532070
  45. Chromatin indexing in Arabidopsis: an epigenomic tale of tails and more.
    Trends Genet. 2009 Nov;25(11):511-7 PMID: 19850370
  46. Role of histone and DNA methylation in gene regulation.
    Curr Opin Plant Biol. 2007 Oct;10(5):528-33 PMID: 17692561
  47. Chromatin modifications and remodeling in plant abiotic stress responses.
    Biochim Biophys Acta. 2012 Feb;1819(2):129-36 PMID: 21708299
  48. Understanding the molecular pathways associated with seed vigor.
    Plant Physiol Biochem. 2012 Nov;60:196-206 PMID: 22995217
  49. The highly similar Arabidopsis homologs of trithorax ATX1 and ATX2 encode proteins with divergent biochemical functions.
    Plant Cell. 2008 Mar;20(3):568-79 PMID: 18375658
  50. Epigenetic variation creates potential for evolution of plant phenotypic plasticity.
    New Phytol. 2013 Jan;197(1):314-322 PMID: 23121242
  51. The progeny of Arabidopsis thaliana plants exposed to salt exhibit changes in DNA methylation, histone modifications and gene expression.
    PLoS One. 2012;7(1):e30515 PMID: 22291972
  52. Transgenerational epigenetic instability is a source of novel methylation variants.
    Science. 2011 Oct 21;334(6054):369-73 PMID: 21921155
  53. Assessing the impact of transgenerational epigenetic variation on complex traits.
    PLoS Genet. 2009 Jun;5(6):e1000530 PMID: 19557164
  54. Regulated AtHKT1 gene expression by a distal enhancer element and DNA methylation in the promoter plays an important role in salt tolerance.
    Plant Cell Physiol. 2011 Jan;52(1):149-61 PMID: 21097475
  55. Natural variants of AtHKT1 enhance Na+ accumulation in two wild populations of Arabidopsis.
    PLoS Genet. 2006 Dec 1;2(12):e210 PMID: 17140289
  56. AtHKT1 facilitates Na+ homeostasis and K+ nutrition in planta.
    Plant Physiol. 2004 Sep;136(1):2500-11 PMID: 15347798
  57. Transcriptome analysis of root transporters reveals participation of multiple gene families in the response to cation stress.
    Plant J. 2003 Sep;35(6):675-92 PMID: 12969422
  58. Genome-wide profiling of histone H3K4-tri-methylation and gene expression in rice under drought stress.
    Plant Mol Biol. 2013 Jan;81(1-2):175-88 PMID: 23192746
  59. Stress-induced DNA methylation changes and their heritability in asexual dandelions.
    New Phytol. 2010 Mar;185(4):1108-18 PMID: 20003072
  60. Chromatin modification acts as a memory for systemic acquired resistance in the plant stress response.
    EMBO Rep. 2011 Jan;12(1):50-5 PMID: 21132017
  61. A Polycomb-based switch underlying quantitative epigenetic memory.
    Nature. 2011 Jul 24;476(7358):105-8 PMID: 21785438
Article Info
Journal
Genome biology
Abbr.
Genome Biol
ISSN
1474-760X
Published
2013-06-14
Epub
2013-00-14
Pages
R59
Language
English
Region
England
NLM ID
100960660
PMCID
PMC3707022
Subset
IM
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