Home LiteratureArticle Details
PMID: 31813609 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Vernalization and Floral Transition in Autumn Drive Winter Annual Life History in Oilseed Rape.

Current biology : CB ·Vol. 29 ·No. 24 ·2019-00-16 ·Pages 4300-4306.e2

O'Neill CM, Lu X, Calderwood A, Tudor EH, Robinson P, Wells R, Morris R, Penfield S

Abstract

Plants with winter annual life history germinate in summer or autumn and require a period of prolonged winter cold to initiate flowering, known as vernalization. In the Brassicaceae, the requirement for vernalization is conferred by high expression of orthologs of the FLOWERING LOCUS C (FLC) gene, the expression of which is known to be silenced by prolonged exposure to winter-like temperatures [1]. Based on a wealth of vernalization experiments, typically carried out in the range of 5°C-10°C, we would expect field environments during winter to induce flowering in crops with winter annual life history. Here, we show that, in the case of winter oilseed rape, expression of multiple FLC orthologs declines not during winter but predominantly during October when the average air temperature is 10°C-15°C. We further demonstrate that plants proceed through the floral transition in early November and overwinter as inflorescence meristems, which complete floral development in spring. To validate the importance of pre-winter temperatures in flowering time control, we artificially simulated climate warming in field trial plots in October. We found that increasing the temperature by 5°C in October results in raised FLC expression and delays the floral transition by 3 weeks but only has a mild effect on flowering date the following spring. Our work shows that winter annuals overwinter as a floral bud in a manner that resembles perennials and highlights the importance of studying signaling events in the field for understanding how plants transition to flowering under real environmental conditions.

Keywords
Brassica FLOWERING LOCUS C flowering time oilseed rape temperature vernalization yield
MeSH Terms
Arabidopsis/metabolism Arabidopsis Proteins/genetics,metabolism Brassica/growth & development Brassica napus/genetics,growth & development Cold Temperature Flowers/genetics,growth & development Gene Expression Regulation, Plant/genetics MADS Domain Proteins/genetics,metabolism Meristem/metabolism Plant Proteins/metabolism Seasons Temperature
Chemicals
Arabidopsis Proteins FLF protein, Arabidopsis MADS Domain Proteins Plant Proteins
Authors & Affiliations
8 authors, click to expand affiliations / ORCID
O'Neill Carmel M
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Lu Xiang
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Calderwood Alexander
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Tudor Eleri H
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Robinson Philip
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Wells Rachel
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Morris Richard
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK.
Penfield Steven
Department of Crop Genetics, John Innes Centre, Norwich Research Park, Norwich NR4 7UH, UK. Electronic address: steven.penfield@jic.ac.uk.
References (34)
34 references, click to expand
  1. The molecular basis of vernalization: the central role of FLOWERING LOCUS C (FLC).
    Proc Natl Acad Sci U S A. 2000 Mar 28;97(7):3753-8 PMID: 10716723
  2. Analysis of the Arabidopsis shoot meristem transcriptome during floral transition identifies distinct regulatory patterns and a leucine-rich repeat protein that promotes flowering.
    Plant Cell. 2012 Feb;24(2):444-62 PMID: 22319055
  3. High-throughput phenotyping (HTP) identifies seedling root traits linked to variation in seed yield and nutrient capture in field-grown oilseed rape (Brassica napus L.).
    Ann Bot. 2016 Oct 1;118(4):655-665 PMID: 27052342
  4. Control of flowering time by FLC orthologues in Brassica napus.
    Plant J. 2001 Dec;28(5):545-53 PMID: 11849594
  5. Differential gene and transcript expression analysis of RNA-seq experiments with TopHat and Cufflinks.
    Nat Protoc. 2012 Mar 01;7(3):562-78 PMID: 22383036
  6. Associative transcriptomics of traits in the polyploid crop species Brassica napus.
    Nat Biotechnol. 2012 Aug;30(8):798-802 PMID: 22820317
  7. A Tourist-like MITE insertion in the upstream region of the BnFLC.A10 gene is associated with vernalization requirement in rapeseed (Brassica napus L.).
    BMC Plant Biol. 2012 Dec 15;12:238 PMID: 23241244
  8. Mutations in single FT- and TFL1-paralogs of rapeseed (Brassica napus L.) and their impact on flowering time and yield components.
    Front Plant Sci. 2014 Jun 17;5:282 PMID: 24987398
  9. Arabidopsis transcriptional repressor VAL1 triggers Polycomb silencing at FLC during vernalization.
    Science. 2016 Jul 29;353(6298):485-8 PMID: 27471304
  10. Flowering Locus C's Lessons: Conserved Chromatin Switches Underpinning Developmental Timing and Adaptation.
    Plant Physiol. 2015 Aug;168(4):1237-45 PMID: 26149571
  11. Plant genetics. Early allopolyploid evolution in the post-Neolithic Brassica napus oilseed genome.
    Science. 2014 Aug 22;345(6199):950-3 PMID: 25146293
  12. Chilling of dormant buds hyperinduces FLOWERING LOCUS T and recruits GA-inducible 1,3-beta-glucanases to reopen signal conduits and release dormancy in Populus.
    Plant Cell. 2011 Jan;23(1):130-46 PMID: 21282527
  13. Vernalization in Arabidopsis thaliana is mediated by the PHD finger protein VIN3.
    Nature. 2004 Jan 8;427(6970):159-64 PMID: 14712276
  14. Flowering time and seed dormancy control use external coincidence to generate life history strategy.
    Elife. 2015 Mar 31;4: PMID: 25824056
  15. Unraveling the complex trait of crop yield with quantitative trait loci mapping in Brassica napus.
    Genetics. 2009 Jul;182(3):851-61 PMID: 19414564
  16. The response of two contrasting limestone grasslands to simulated climate change.
    Science. 2000 Aug 4;289(5480):762-5 PMID: 10926535
  17. Seasonal shift in timing of vernalization as an adaptation to extreme winter.
    Elife. 2015 Jul 23;4: PMID: 26203563
  18. Genome-wide association analyses reveal complex genetic architecture underlying natural variation for flowering time in canola.
    Plant Cell Environ. 2016 Jun;39(6):1228-39 PMID: 26428711
  19. The AGAMOUS-LIKE 20 MADS domain protein integrates floral inductive pathways in Arabidopsis.
    Genes Dev. 2000 Sep 15;14(18):2366-76 PMID: 10995392
  20. Multiple FLC haplotypes defined by independent cis-regulatory variation underpin life history diversity in Arabidopsis thaliana.
    Genes Dev. 2014 Aug 1;28(15):1635-40 PMID: 25035417
  21. LEAFY expression and flower initiation in Arabidopsis.
    Development. 1997 Oct;124(19):3835-44 PMID: 9367439
  22. Comparative analysis of FLC homologues in Brassicaceae provides insight into their role in the evolution of oilseed rape.
    PLoS One. 2012;7(9):e45751 PMID: 23029223
  23. Natural variation in the temperature range permissive for vernalization in accessions of Arabidopsis thaliana.
    Plant Cell Environ. 2012 Dec;35(12):2181-91 PMID: 22639792
  24. Yield instability of winter oilseed rape modulated by early winter temperature.
    Sci Rep. 2019 May 6;9(1):6953 PMID: 31061437
  25. Absence of warmth permits epigenetic memory of winter in Arabidopsis.
    Nat Commun. 2018 Feb 12;9(1):639 PMID: 29434233
  26. Effects of genetic perturbation on seasonal life history plasticity.
    Science. 2009 Feb 13;323(5916):930-4 PMID: 19150810
  27. Key developmental transitions during flower morphogenesis and their regulation.
    Curr Opin Genet Dev. 2017 Aug;45:44-50 PMID: 28314174
  28. Extended Vernalization Regulates Inflorescence Fate in Arabis alpina by Stably Silencing PERPETUAL FLOWERING1.
    Plant Physiol. 2018 Apr;176(4):2819-2833 PMID: 29467177
  29. Photoperiod- and temperature-mediated control of phenology in trees - a molecular perspective.
    New Phytol. 2017 Jan;213(2):511-524 PMID: 27901272
  30. TopHat2: accurate alignment of transcriptomes in the presence of insertions, deletions and gene fusions.
    Genome Biol. 2013 Apr 25;14(4):R36 PMID: 23618408
  31. Repression of AGAMOUS-LIKE 24 is a crucial step in promoting flower development.
    Nat Genet. 2004 Feb;36(2):157-61 PMID: 14716314
  32. Fluctuating, warm temperatures decrease the effect of a key floral repressor on flowering time in Arabidopsis thaliana.
    New Phytol. 2016 Apr;210(2):564-76 PMID: 26681345
  33. Distinct roles of CONSTANS target genes in reproductive development of Arabidopsis.
    Science. 2000 Jun 2;288(5471):1613-6 PMID: 10834834
  34. Diverse regulatory factors associate with flowering time and yield responses in winter-type Brassica napus.
    BMC Genomics. 2015 Sep 29;16:737 PMID: 26419915
Article Info
Journal
Current biology : CB
Abbr.
Curr Biol
ISSN
1879-0445
Published
2019-00-16
Epub
2019-00-05
Pages
4300-4306.e2
Language
English
Region
England
NLM ID
9107782
PMCID
PMC6926474
Subset
IM
Grants
Biotechnology and Biological Sciences Research Council · BBS/E/J/000PR9788 · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/R004196/1 · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/P013511/1 · United Kingdom
Biotechnology and Biological Sciences Research Council · BB/P003095/1 · 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