Home LiteratureArticle Details
PMID: 26699513 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Quantitative regulation of FLC via coordinated transcriptional initiation and elongation.

Wu Z, Ietswaart R, Liu F, Yang H, Howard M, Dean C

Abstract

The basis of quantitative regulation of gene expression is still poorly understood. In Arabidopsis thaliana, quantitative variation in expression of FLOWERING LOCUS C (FLC) influences the timing of flowering. In ambient temperatures, FLC expression is quantitatively modulated by a chromatin silencing mechanism involving alternative polyadenylation of antisense transcripts. Investigation of this mechanism unexpectedly showed that RNA polymerase II (Pol II) occupancy changes at FLC did not reflect RNA fold changes. Mathematical modeling of these transcriptional dynamics predicted a tight coordination of transcriptional initiation and elongation. This prediction was validated by detailed measurements of total and chromatin-bound FLC intronic RNA, a methodology appropriate for analyzing elongation rate changes in a range of organisms. Transcription initiation was found to vary ∼ 25-fold with elongation rate varying ∼ 8- to 12-fold. Premature sense transcript termination contributed very little to expression differences. This quantitative variation in transcription was coincident with variation in H3K36me3 and H3K4me2 over the FLC gene body. We propose different chromatin states coordinately influence transcriptional initiation and elongation rates and that this coordination is likely to be a general feature of quantitative gene regulation in a chromatin context.

Keywords
COOLAIR FCA alternative polyadenylation autonomous pathway chromatin
MeSH Terms
Arabidopsis/genetics Arabidopsis Proteins/genetics,metabolism Chromatin/metabolism Flowers/genetics Gene Expression Regulation, Plant Gene Silencing Genetic Variation Histone Deacetylases/metabolism Histones/metabolism MADS Domain Proteins/genetics,metabolism Models, Genetic Polyadenylation RNA Folding RNA Polymerase II/metabolism RNA Splicing RNA-Binding Proteins/metabolism Transcription Elongation, Genetic Transcription Initiation, Genetic
Chemicals
Arabidopsis Proteins Chromatin FLF protein, Arabidopsis Flowering time control protein FCA, Arabidopsis Histones MADS Domain Proteins RNA-Binding Proteins RNA Polymerase II flowering locus D protein, Arabidopsis Histone Deacetylases
Authors & Affiliations
6 authors, click to expand affiliations / ORCID
Wu Zhe
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom;
Ietswaart Robert
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom; Computational and Systems Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom.
Liu Fuquan
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom;
Yang Hongchun
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom;
Howard Martin
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom; Computational and Systems Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom caroline.dean@jic.ac.uk martin.howard@jic.ac.uk.
Dean Caroline
Department of Cell and Developmental Biology, John Innes Centre, Norwich NR4 7UH, United Kingdom; caroline.dean@jic.ac.uk martin.howard@jic.ac.uk.
References (43)
43 references, click to expand
  1. Mechanistic interpretation of promoter-proximal peaks and RNAPII density maps.
    Cell. 2013 Aug 15;154(4):713-5 PMID: 23953103
  2. Lives that introns lead after splicing.
    Wiley Interdiscip Rev RNA. 2013 Nov-Dec;4(6):677-91 PMID: 23881603
  3. Coupling mRNA processing with transcription in time and space.
    Nat Rev Genet. 2014 Mar;15(3):163-75 PMID: 24514444
  4. SnapShot-Seq: a method for extracting genome-wide, in vivo mRNA dynamics from a single total RNA sample.
    PLoS One. 2014;9(2):e89673 PMID: 24586954
  5. Nucleosomes are context-specific, H2A.Z-modulated barriers to RNA polymerase.
    Mol Cell. 2014 Mar 6;53(5):819-30 PMID: 24606920
  6. Functional consequences of splicing of the antisense transcript COOLAIR on FLC transcription.
    Mol Cell. 2014 Apr 10;54(1):156-65 PMID: 24725596
  7. Genome-wide dynamics of Pol II elongation and its interplay with promoter proximal pausing, chromatin, and exons.
    Elife. 2014;3:e02407 PMID: 24843027
  8. Antisense-mediated FLC transcriptional repression requires the P-TEFb transcription elongation factor.
    Proc Natl Acad Sci U S A. 2014 May 20;111(20):7468-73 PMID: 24799695
  9. RECQL5 controls transcript elongation and suppresses genome instability associated with transcription stress.
    Cell. 2014 May 22;157(5):1037-49 PMID: 24836610
  10. Antagonistic roles for H3K36me3 and H3K27me3 in the cold-induced epigenetic switch at Arabidopsis FLC.
    Curr Biol. 2014 Aug 4;24(15):1793-7 PMID: 25065750
  11. 4sUDRB-seq: measuring genomewide transcriptional elongation rates and initiation frequencies within cells.
    Genome Biol. 2014;15(5):R69 PMID: 24887486
  12. Transcript elongation factors: shaping transcriptomes after transcript initiation.
    Trends Plant Sci. 2014 Nov;19(11):717-26 PMID: 25131948
  13. NTR1 is required for transcription elongation checkpoints at alternative exons in Arabidopsis.
    EMBO J. 2015 Feb 12;34(4):544-58 PMID: 25568310
  14. The FLF MADS box gene: a repressor of flowering in Arabidopsis regulated by vernalization and methylation.
    Plant Cell. 1999 Mar;11(3):445-58 PMID: 10072403
  15. Two RNA binding proteins, HEN4 and HUA1, act in the processing of AGAMOUS pre-mRNA in Arabidopsis thaliana.
    Dev Cell. 2003 Jan;4(1):53-66 PMID: 12530963
  16. Cooperation between RNA polymerase molecules in transcription elongation.
    Science. 2003 May 2;300(5620):801-5 PMID: 12730602
  17. Physical isolation of nascent RNA chains transcribed by RNA polymerase II: evidence for cotranscriptional splicing.
    Mol Cell Biol. 1994 Nov;14(11):7219-25 PMID: 7523861
  18. FLOWERING LOCUS C encodes a novel MADS domain protein that acts as a repressor of flowering.
    Plant Cell. 1999 May;11(5):949-56 PMID: 10330478
  19. Distinction and relationship between elongation rate and processivity of RNA polymerase II in vivo.
    Mol Cell. 2005 Mar 18;17(6):831-40 PMID: 15780939
  20. Establishment of the vernalization-responsive, winter-annual habit in Arabidopsis requires a putative histone H3 methyl transferase.
    Plant Cell. 2005 Dec;17(12):3301-10 PMID: 16258034
  21. The Arabidopsis RNA-binding protein FCA requires a lysine-specific demethylase 1 homolog to downregulate FLC.
    Mol Cell. 2007 Nov 9;28(3):398-407 PMID: 17996704
  22. Arabidopsis FIERY1, XRN2, and XRN3 are endogenous RNA silencing suppressors.
    Plant Cell. 2007 Nov;19(11):3451-61 PMID: 17993620
  23. Rates of in situ transcription and splicing in large human genes.
    Nat Struct Mol Biol. 2009 Nov;16(11):1128-33 PMID: 19820712
  24. Targeted 3' processing of antisense transcripts triggers Arabidopsis FLC chromatin silencing.
    Science. 2010 Jan 1;327(5961):94-7 PMID: 19965720
  25. The spen family protein FPA controls alternative cleavage and polyadenylation of RNA.
    Dev Cell. 2010 Feb 16;18(2):203-13 PMID: 20079695
  26. The yeast 5'-3' exonuclease Rat1p functions during transcription elongation by RNA polymerase II.
    Mol Cell. 2010 Feb 26;37(4):580-7 PMID: 20188675
  27. The transcript elongation factor FACT affects Arabidopsis vegetative and reproductive development and genetically interacts with HUB1/2.
    Plant J. 2010 Feb;61(4):686-97 PMID: 19947984
  28. Transcript Elongation by RNA Polymerase II.
    Annu Rev Biochem. 2010;79:271-93 PMID: 20367031
  29. Growth habit determination by the balance of histone methylation activities in Arabidopsis.
    EMBO J. 2010 Sep 15;29(18):3208-15 PMID: 20711170
  30. Signaling pathways differentially affect RNA polymerase II initiation, pausing, and elongation rate in cells.
    Mol Cell. 2013 Apr 25;50(2):212-22 PMID: 23523369
  31. Promoter directionality is controlled by U1 snRNP and polyadenylation signals.
    Nature. 2013 Jul 18;499(7458):360-3 PMID: 23792564
  32. Uniform transitions of the general RNA polymerase II transcription complex.
    Nat Struct Mol Biol. 2010 Oct;17(10):1272-8 PMID: 20818391
  33. Nascent transcript sequencing visualizes transcription at nucleotide resolution.
    Nature. 2011 Jan 20;469(7330):368-73 PMID: 21248844
  34. Regulation of the floral repressor gene FLC: the complexity of transcription in a chromatin context.
    Curr Opin Plant Biol. 2011 Feb;14(1):38-44 PMID: 20884277
  35. The in vivo kinetics of RNA polymerase II elongation during co-transcriptional splicing.
    PLoS Biol. 2011;9(1):e1000573 PMID: 21264352
  36. Total RNA sequencing reveals nascent transcription and widespread co-transcriptional splicing in the human brain.
    Nat Struct Mol Biol. 2011 Dec;18(12):1435-40 PMID: 22056773
  37. mRNA decapping factors and the exonuclease Xrn2 function in widespread premature termination of RNA polymerase II transcription.
    Mol Cell. 2012 May 11;46(3):311-24 PMID: 22483619
  38. Chromatin measurements reveal contributions of synthesis and decay to steady-state mRNA levels.
    Mol Syst Biol. 2012;8:593 PMID: 22806141
  39. Flowering time control: another window to the connection between antisense RNA and chromatin.
    Trends Genet. 2012 Sep;28(9):445-53 PMID: 22785023
  40. Defining the status of RNA polymerase at promoters.
    Cell Rep. 2012 Oct 25;2(4):1025-35 PMID: 23062713
  41. RNA polymerase II collision interrupts convergent transcription.
    Mol Cell. 2012 Nov 9;48(3):365-74 PMID: 23041286
  42. Transcription-associated histone modifications and cryptic transcription.
    Biochim Biophys Acta. 2013 Jan;1829(1):84-97 PMID: 22982198
  43. Kinetic competition between RNA Polymerase II and Sen1-dependent transcription termination.
    Mol Cell. 2013 Jan 10;49(1):55-66 PMID: 23177741
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
1091-6490
Published
2016-01-05
Epub
2015-00-22
Pages
218-23
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC4711845
Subset
IM
Grants
Biotechnology and Biological Sciences Research Council · BBS/E/J/000C0637 · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/J004588/1 · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/K007203/1 · United Kingdom
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com