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PMID: 25527708 Published · ppublish English Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Genetic perturbation of the maize methylome.

The Plant cell ·Vol. 26 ·No. 12 ·2014-12-00 ·Pages 4602-16

Li Q, Eichten SR, Hermanson PJ, Zaunbrecher VM, Song J, Wendt J, Rosenbaum H, Madzima TF, Sloan AE, Huang J, Burgess DL, Richmond TA, McGinnis KM, Meeley RB, Danilevskaya ON, Vaughn MW, Kaeppler SM, Jeddeloh JA, Springer NM

Abstract

DNA methylation can play important roles in the regulation of transposable elements and genes. A collection of mutant alleles for 11 maize (Zea mays) genes predicted to play roles in controlling DNA methylation were isolated through forward- or reverse-genetic approaches. Low-coverage whole-genome bisulfite sequencing and high-coverage sequence-capture bisulfite sequencing were applied to mutant lines to determine context- and locus-specific effects of these mutations on DNA methylation profiles. Plants containing mutant alleles for components of the RNA-directed DNA methylation pathway exhibit loss of CHH methylation at many loci as well as CG and CHG methylation at a small number of loci. Plants containing loss-of-function alleles for chromomethylase (CMT) genes exhibit strong genome-wide reductions in CHG methylation and some locus-specific loss of CHH methylation. In an attempt to identify stocks with stronger reductions in DNA methylation levels than provided by single gene mutations, we performed crosses to create double mutants for the maize CMT3 orthologs, Zmet2 and Zmet5, and for the maize DDM1 orthologs, Chr101 and Chr106. While loss-of-function alleles are viable as single gene mutants, the double mutants were not recovered, suggesting that severe perturbations of the maize methylome may have stronger deleterious phenotypic effects than in Arabidopsis thaliana.

MeSH Terms
Alleles Crosses, Genetic DNA (Cytosine-5-)-Methyltransferases/genetics DNA Methylation Epigenomics Gene Expression Regulation, Plant Genes, Plant Mutation Zea mays/genetics
Chemicals
DNA (Cytosine-5-)-Methyltransferases chromomethylase
Authors & Affiliations
19 authors, click to expand affiliations / ORCID
Li Qing
Microbial and Plant Genomics Institute, Department of Plant Biology, University of Minnesota, Saint Paul, Minnesota 55108.
Eichten Steven R ORCID
Microbial and Plant Genomics Institute, Department of Plant Biology, University of Minnesota, Saint Paul, Minnesota 55108.
Hermanson Peter J
Microbial and Plant Genomics Institute, Department of Plant Biology, University of Minnesota, Saint Paul, Minnesota 55108.
Zaunbrecher Virginia M
Department of Agronomy, University of Wisconsin, Madison, Wisconsin 53706.
Song Jawon
Texas Advanced Computing Center, University of Texas, Austin, Texas 78758.
Wendt Jennifer
Roche NimbleGen, Madison, Wisconsin 53719.
Rosenbaum Heidi
Roche NimbleGen, Madison, Wisconsin 53719.
Madzima Thelma F
Department of Biological Science, Florida State University, Tallahassee, Florida 32306.
Sloan Amy E
Department of Biological Science, Florida State University, Tallahassee, Florida 32306.
Huang Ji
Department of Biological Science, Florida State University, Tallahassee, Florida 32306.
Burgess Daniel L
Roche NimbleGen, Madison, Wisconsin 53719.
Richmond Todd A
Roche NimbleGen, Madison, Wisconsin 53719.
McGinnis Karen M
Department of Biological Science, Florida State University, Tallahassee, Florida 32306.
Meeley Robert B
DuPont Pioneer AgBiotech Research, Johnston, Iowa 50131.
Danilevskaya Olga N
DuPont Pioneer AgBiotech Research, Johnston, Iowa 50131.
Vaughn Matthew W
Texas Advanced Computing Center, University of Texas, Austin, Texas 78758.
Kaeppler Shawn M
Department of Agronomy, University of Wisconsin, Madison, Wisconsin 53706.
Jeddeloh Jeffrey A
Roche NimbleGen, Madison, Wisconsin 53719.
Springer Nathan M ORCID
Microbial and Plant Genomics Institute, Department of Plant Biology, University of Minnesota, Saint Paul, Minnesota 55108 [email protected].
References (63)
63 references, click to expand
  1. Maintenance of genomic methylation requires a SWI2/SNF2-like protein.
    Nat Genet. 1999 May;22(1):94-7 PMID: 10319870
  2. RNA-directed DNA methylation: an epigenetic pathway of increasing complexity.
    Nat Rev Genet. 2014 Jun;15(6):394-408 PMID: 24805120
  3. RNA polymerase IV functions in paramutation in Zea mays.
    Science. 2009 Feb 27;323(5918):1201-5 PMID: 19251626
  4. Transgenerational epigenetic instability is a source of novel methylation variants.
    Science. 2011 Oct 21;334(6054):369-73 PMID: 21921155
  5. Epigenetic and genetic influences on DNA methylation variation in maize populations.
    Plant Cell. 2013 Aug;25(8):2783-97 PMID: 23922207
  6. Assessing the efficiency of RNA interference for maize functional genomics.
    Plant Physiol. 2007 Apr;143(4):1441-51 PMID: 17307899
  7. required to maintain repression2 is a novel protein that facilitates locus-specific paramutation in maize.
    Plant Cell. 2012 May;24(5):1761-75 PMID: 22562610
  8. Mutation of a major CG methylase in rice causes genome-wide hypomethylation, dysregulated genome expression, and seedling lethality.
    Proc Natl Acad Sci U S A. 2014 Jul 22;111(29):10642-7 PMID: 25002488
  9. Spreading of heterochromatin is limited to specific families of maize retrotransposons.
    PLoS Genet. 2012;8(12):e1003127 PMID: 23271981
  10. Genomic imprinting in plants: observations and evolutionary implications.
    Plant Mol Biol. 2000 Jun;43(2-3):147-61 PMID: 10999401
  11. Requirement of CHROMOMETHYLASE3 for maintenance of CpXpG methylation.
    Science. 2001 Jun 15;292(5524):2077-80 PMID: 11349138
  12. Genetic factors required to maintain repression of a paramutagenic maize pl1 allele.
    Genetics. 2001 Jan;157(1):369-78 PMID: 11139517
  13. Bismark: a flexible aligner and methylation caller for Bisulfite-Seq applications.
    Bioinformatics. 2011 Jun 1;27(11):1571-2 PMID: 21493656
  14. Establishing, maintaining and modifying DNA methylation patterns in plants and animals.
    Nat Rev Genet. 2010 Mar;11(3):204-20 PMID: 20142834
  15. Maize gene atlas developed by RNA sequencing and comparative evaluation of transcriptomes based on RNA sequencing and microarrays.
    PLoS One. 2013;8(4):e61005 PMID: 23637782
  16. Maize chromomethylase Zea methyltransferase2 is required for CpNpG methylation.
    Plant Cell. 2001 Aug;13(8):1919-28 PMID: 11487702
  17. The B73 maize genome: complexity, diversity, and dynamics.
    Science. 2009 Nov 20;326(5956):1112-5 PMID: 19965430
  18. The Arabidopsis nucleosome remodeler DDM1 allows DNA methyltransferases to access H1-containing heterochromatin.
    Cell. 2013 Mar 28;153(1):193-205 PMID: 23540698
  19. Transcriptionally silenced transgenes in maize are activated by three mutations defective in paramutation.
    Genetics. 2006 Jul;173(3):1637-47 PMID: 16702420
  20. Paramutation and development.
    Annu Rev Cell Dev Biol. 2010;26:557-79 PMID: 19575656
  21. Molecular mechanism of action of plant DRM de novo DNA methyltransferases.
    Cell. 2014 May 22;157(5):1050-60 PMID: 24855943
  22. The de novo cytosine methyltransferase DRM2 requires intact UBA domains and a catalytically mutated paralog DRM3 during RNA-directed DNA methylation in Arabidopsis thaliana.
    PLoS Genet. 2010 Oct;6(10):e1001182 PMID: 21060858
  23. VIM1, a methylcytosine-binding protein required for centromeric heterochromatinization.
    Genes Dev. 2007 Feb 1;21(3):267-77 PMID: 17242155
  24. DNA methylation as a system of plant genomic immunity.
    Trends Plant Sci. 2014 May;19(5):320-6 PMID: 24618094
  25. Epigenetics: Beyond Chromatin Modifications and Complex Genetic Regulation.
    Plant Physiol. 2014 May 28;165(3):933-947 PMID: 24872382
  26. Assessing the impact of transgenerational epigenetic variation on complex traits.
    PLoS Genet. 2009 Jun;5(6):e1000530 PMID: 19557164
  27. BEDTools: a flexible suite of utilities for comparing genomic features.
    Bioinformatics. 2010 Mar 15;26(6):841-2 PMID: 20110278
  28. A dominant mutation in mediator of paramutation2, one of three second-largest subunits of a plant-specific RNA polymerase, disrupts multiple siRNA silencing processes.
    PLoS Genet. 2009 Nov;5(11):e1000725 PMID: 19936058
  29. Natural variation for alleles under epigenetic control by the maize chromomethylase zmet2.
    Genetics. 2007 Oct;177(2):749-60 PMID: 17660570
  30. Compromised stability of DNA methylation and transposon immobilization in mosaic Arabidopsis epigenomes.
    Genes Dev. 2009 Apr 15;23(8):939-50 PMID: 19390088
  31. Comprehensive analysis of silencing mutants reveals complex regulation of the Arabidopsis methylome.
    Cell. 2013 Jan 17;152(1-2):352-64 PMID: 23313553
  32. Role of the DRM and CMT3 methyltransferases in RNA-directed DNA methylation.
    Curr Biol. 2003 Dec 16;13(24):2212-7 PMID: 14680640
  33. Demethylation-induced developmental pleiotropy in Arabidopsis.
    Science. 1996 Aug 2;273(5275):654-7 PMID: 8662558
  34. A mutation that prevents paramutation in maize also reverses Mutator transposon methylation and silencing.
    Proc Natl Acad Sci U S A. 2002 Apr 30;99(9):6130-5 PMID: 11959901
  35. Epigenome-wide inheritance of cytosine methylation variants in a recombinant inbred population.
    Genome Res. 2013 Oct;23(10):1663-74 PMID: 23739894
  36. Arabidopsis cmt3 chromomethylase mutations block non-CG methylation and silencing of an endogenous gene.
    Genes Dev. 2001 Jul 15;15(14):1753-8 PMID: 11459824
  37. mediator of paramutation1 is required for establishment and maintenance of paramutation at multiple maize loci.
    Plant Cell. 2000 Nov;12(11):2101-18 PMID: 11090212
  38. Discovery of induced point mutations in maize genes by TILLING.
    BMC Plant Biol. 2004 Jul 28;4:12 PMID: 15282033
  39. Spontaneous epigenetic variation in the Arabidopsis thaliana methylome.
    Nature. 2011 Dec 8;480(7376):245-9 PMID: 22057020
  40. Genomic distribution of H3K9me2 and DNA methylation in a maize genome.
    PLoS One. 2014;9(8):e105267 PMID: 25122127
  41. Close split of sorghum and maize genome progenitors.
    Genome Res. 2004 Oct;14(10A):1916-23 PMID: 15466289
  42. Epigenetic control of transposon transcription and mobility in Arabidopsis.
    Curr Opin Plant Biol. 2012 Nov;15(5):503-10 PMID: 22940592
  43. Sequence-indexed mutations in maize using the UniformMu transposon-tagging population.
    BMC Genomics. 2007;8:116 PMID: 17490480
  44. Identification of epigenetic regulators of a transcriptionally silenced transgene in maize.
    G3 (Bethesda). 2011 Jun;1(1):75-83 PMID: 22384320
  45. Active DNA demethylation in plants and animals.
    Cold Spring Harb Symp Quant Biol. 2012;77:161-73 PMID: 23197304
  46. DNA methylation and gene function.
    Science. 1980 Nov 7;210(4470):604-10 PMID: 6254144
  47. Paramutation: from maize to mice.
    Cell. 2007 Feb 23;128(4):641-5 PMID: 17320501
  48. Distinct size distribution of endogeneous siRNAs in maize: Evidence from deep sequencing in the mop1-1 mutant.
    Proc Natl Acad Sci U S A. 2008 Sep 30;105(39):14958-63 PMID: 18815367
  49. Arabidopsis thaliana DNA methylation mutants.
    Science. 1993 Jun 25;260(5116):1926-8 PMID: 8316832
  50. Non-CG methylation patterns shape the epigenetic landscape in Arabidopsis.
    Nat Struct Mol Biol. 2014 Jan;21(1):64-72 PMID: 24336224
  51. Diverse gene-silencing mechanisms with distinct requirements for RNA polymerase subunits in Zea mays.
    Genetics. 2014 Nov;198(3):1031-42 PMID: 25164883
  52. 'Leveling' the playing field for analyses of single-base resolution DNA methylomes.
    Trends Genet. 2012 Dec;28(12):583-5 PMID: 23131467
  53. mCCG methylation in angiosperms.
    Plant J. 1996 May;9(5):579-86 PMID: 8653110
  54. The maize methylome influences mRNA splice sites and reveals widespread paramutation-like switches guided by small RNA.
    Genome Res. 2013 Oct;23(10):1651-62 PMID: 23739895
  55. An RNA-dependent RNA polymerase is required for paramutation in maize.
    Nature. 2006 Jul 20;442(7100):295-8 PMID: 16855589
  56. Three SRA-domain methylcytosine-binding proteins cooperate to maintain global CpG methylation and epigenetic silencing in Arabidopsis.
    PLoS Genet. 2008;4(8):e1000156 PMID: 18704160
  57. Epigenetic regulation of the maize Spm transposon.
    Bioessays. 1995 Apr;17(4):291-7 PMID: 7741722
  58. Exceptional diversity, non-random distribution, and rapid evolution of retroelements in the B73 maize genome.
    PLoS Genet. 2009 Nov;5(11):e1000732 PMID: 19936065
  59. Dual binding of chromomethylase domains to H3K9me2-containing nucleosomes directs DNA methylation in plants.
    Cell. 2012 Sep 28;151(1):167-80 PMID: 23021223
  60. Locus-specific control of asymmetric and CpNpG methylation by the DRM and CMT3 methyltransferase genes.
    Proc Natl Acad Sci U S A. 2002 Dec 10;99 Suppl 4:16491-8 PMID: 12151602
  61. CHH islands: de novo DNA methylation in near-gene chromatin regulation in maize.
    Genome Res. 2013 Apr;23(4):628-37 PMID: 23269663
  62. Inactivation of a DNA methylation pathway in maize reproductive organs results in apomixis-like phenotypes.
    Plant Cell. 2010 Oct;22(10):3249-67 PMID: 21037104
  63. Inheritance patterns and stability of DNA methylation variation in maize near-isogenic lines.
    Genetics. 2014 Mar;196(3):667-76 PMID: 24361940
Article Info
Journal
The Plant cell
Abbr.
Plant Cell
ISSN
1532-298X
Published
2014-12-00
Epub
2014-00-19
Pages
4602-16
Language
English
Region
England
NLM ID
9208688
PMCID
PMC4311211
Subset
IM
Databases
SRA
Analysis Services
Analysis Services

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