» Articles » PMID: 30382124

Two CONSTANS-LIKE Genes Jointly Control Flowering Time in Beet

Overview
Journal Sci Rep
Specialty Science
Date 2018 Nov 2
PMID 30382124
Citations 8
Authors
Affiliations
Soon will be listed here.
Abstract

Breeding vegetative crops (e.g. beets, cabbage, forage grasses) is challenged by two conflicting aims. For field production, flowering must be avoided while flowering and seed set is necessary for breeding and seed production. The biennial species sugar beet makes shoot elongation ('bolting') followed by flowering after a long period of cold temperatures. Field production in northern geographical regions starts in spring. A thickened storage root is formed only during vegetative growth. It is expected that winter beets, which are sown before winter would have a much higher yield potential. However, field production was not possible so far due to bolting after winter. We propose a strategy to breed winter beets exploiting haplotype variation at two major bolting time loci, B and B2. Both genes encode transcription factors controlling the expression of two orthologs of the Arabidopsis gene FLOWERING LOCUS T (FT). We detected an epistatic interaction between both genes because F plants homozygous for two B/B2 mutant alleles did not bolt even after vernalization. Fluorescence complementation studies revealed that both proteins form a heterodimer in vivo. In non-bolting plants, the bolting activator BvFT2 was completely downregulated whereas the repressor BvFT1 was upregulated which suggests that both genes acquire a CONSTANS (CO) like function in beet. Like CO, B and B2 proteins house CCT and BBX domains which, in contrast to CO are split between the two beet genes. We propose an alternative regulation of FT orthologs in beet that can be exploited to breed winter beets.

Citing Articles

CONSTANS, a HUB for all seasons: How photoperiod pervades plant physiology regulatory circuits.

Romero J, Serrano-Bueno G, Camacho-Fernandez C, Vicente M, Ruiz M, Perez-Castineira J Plant Cell. 2024; 36(6):2086-2102.

PMID: 38513610 PMC: 11132886. DOI: 10.1093/plcell/koae090.


Conservation and Divergence of the Genes Related to Flowering and Circadian Rhythm in .

Chen Y, Zhou R, Hu Q, Wei W, Liu J Front Plant Sci. 2021; 12:760379.

PMID: 34880887 PMC: 8645894. DOI: 10.3389/fpls.2021.760379.


Transcriptome Analysis of Flower Development and Mining of Genes Related to Flowering Time in Tomato ().

Wang H, Yang Y, Zhang Y, Zhao T, Jiang J, Li J Int J Mol Sci. 2021; 22(15).

PMID: 34360893 PMC: 8347202. DOI: 10.3390/ijms22158128.


SNP Alleles Associated With Low Bolting Tendency in Sugar Beet.

Ravi S, Campagna G, Della Lucia M, Broccanello C, Bertoldo G, Chiodi C Front Plant Sci. 2021; 12:693285.

PMID: 34322145 PMC: 8311237. DOI: 10.3389/fpls.2021.693285.


A spinach genome assembly with remarkable completeness, and its use for rapid identification of candidate genes for agronomic traits.

Hirakawa H, Toyoda A, Itoh T, Suzuki Y, Nagano A, Sugiyama S DNA Res. 2021; 28(3).

PMID: 34142133 PMC: 8231376. DOI: 10.1093/dnares/dsab004.


References
1.
Tiwari S, Shen Y, Chang H, Hou Y, Harris A, Ma S . The flowering time regulator CONSTANS is recruited to the FLOWERING LOCUS T promoter via a unique cis-element. New Phytol. 2010; 187(1):57-66. DOI: 10.1111/j.1469-8137.2010.03251.x. View

2.
Hebrard C, Peterson D, Willems G, Delaunay A, Jesson B, Lefebvre M . Epigenomics and bolting tolerance in sugar beet genotypes. J Exp Bot. 2015; 67(1):207-25. PMC: 4682430. DOI: 10.1093/jxb/erv449. View

3.
Song Y, Ito S, Imaizumi T . Flowering time regulation: photoperiod- and temperature-sensing in leaves. Trends Plant Sci. 2013; 18(10):575-83. PMC: 3796012. DOI: 10.1016/j.tplants.2013.05.003. View

4.
Hayama R, Sarid-Krebs L, Richter R, Fernandez V, Jang S, Coupland G . PSEUDO RESPONSE REGULATORs stabilize CONSTANS protein to promote flowering in response to day length. EMBO J. 2017; 36(7):904-918. PMC: 5376961. DOI: 10.15252/embj.201693907. View

5.
Grefen C, Blatt M . A 2in1 cloning system enables ratiometric bimolecular fluorescence complementation (rBiFC). Biotechniques. 2012; 53(5):311-14. DOI: 10.2144/000113941. View