Regulation of flowering time in chrysanthemum by the R2R3 MYB transcription factor CmMYB2 is associated with changes in gibberellin metabolism

Lu Zhu , Yunxiao Guan , Yanan Liu , Zhaohe Zhang , Muhammad Abuzar Jaffar , Aiping Song , Sumei Chen , Jiafu Jiang , Fadi Chen

Horticulture Research ›› 2020, Vol. 7 ›› Issue (1) : 96

PDF (2188KB)
Horticulture Research ›› 2020, Vol. 7 ›› Issue (1) :96 DOI: 10.1038/s41438-020-0317-1
Article
research-article
Regulation of flowering time in chrysanthemum by the R2R3 MYB transcription factor CmMYB2 is associated with changes in gibberellin metabolism
Author information +
History +
PDF (2188KB)

Abstract

The switch from vegetative growth to reproductive growth is a key event in the development of a plant. Here, the product of the chrysanthemum gene CmMYB2, an R2R3 MYB transcription factor that is localized in the nucleus, was shown to be a component of the switching mechanism. Plants engineered to overexpress CmMYB2 flowered earlier than did wild-type plants, while those in which CmMYB2 was suppressed flowered later. In both the overexpression and RNAi knockdown plants, a number of genes encoding proteins involved in gibberellin synthesis or signaling, as well as in the response to photoperiod, were transcribed at a level that differed from that in the wild type. Both yeast two-hybrid and bimolecular fluorescence complementation assays revealed that CmMYB2 interacts with CmBBX24, a zinc-finger transcription factor known to regulate flowering by its influence on gibberellin synthesis.

Cite this article

Download citation ▾
Lu Zhu, Yunxiao Guan, Yanan Liu, Zhaohe Zhang, Muhammad Abuzar Jaffar, Aiping Song, Sumei Chen, Jiafu Jiang, Fadi Chen. Regulation of flowering time in chrysanthemum by the R2R3 MYB transcription factor CmMYB2 is associated with changes in gibberellin metabolism. Horticulture Research, 2020, 7 (1) : 96 DOI:10.1038/s41438-020-0317-1

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Fornara, F., De, M. A. & Coupland, G. SnapShot: control of flowering in Arabidopsis. Cell 141, 550-550e2 (2010).

[2]

Song, Y. H., Ito, S. & Imaizumi, T. Flowering time regulation: photoperiod- and temperature-sensing in leaves. Trends Plant. Sci. 18, 575-583 (2013).

[3]

Mouhu, K. et al. Identification of flowering genes in strawberry, a perennial SD plant. BMC Plant Biol. 9, 122 (2009).

[4]

Hyun, Y. et al. Multi-layered regulation of SPL15 and cooperation with SOC1 integrate endogenous flowering pathways at the Arabidopsis shoot meristem. Dev. Cell 37, 254-266 (2016).

[5]

Jung, J. H., Ju, Y., Seo, P. J., Lee, J. H. & Park, C. M. The SOC1-SPL module integrates photoperiod and gibberellic acid signals to control flowering time in Arabidopsis. Plant J. 69, 577-588 (2012).

[6]

Oda, A. et al. CsFTL3, a chrysanthemum FLOWERING LOCUS T-like gene, is a key regulator of photoperiodic flowering in chrysanthemums. J. Exp. Bot. 63, 1461-1477 (2012).

[7]

Wang, Z. Y. & Tobin, E. M. Constitutive expression of the CIRCADIAN CLOCK ASSOCIATED 1 (CCA1) gene disrupts circadian rhythms and suppresses its own expression. Cell 93, 1207 (1998).

[8]

Kuno, N. et al. The novel MYB protein EARLY-PHYTOCHROME-RESPONSIVE1 is a component of a slave circadian oscillator in Arabidopsis. Plant Cell 15, 2476-2488 (2003).

[9]

Tominaga, R. et al. Arabidopsis CAPRICE-LIKE MYB 3 (CPL3) controls endoreduplication and flowering development in addition to trichome and root hair formation. Development 135, 1335-45 (2008).

[10]

Seo, E., Yu, J., Ryu, K. H., Lee, M. M. & Lee, I. WEREWOLF, a regulator of root hair pattern formation, controls flowering time through the regulation of FT mRNA stability. Plant Physiol. 156, 1867-77 (2011).

[11]

Liu, L. et al. Elevated levels of MYB30 in the phloem accelerate flowering in Arabidopsis through the regulation of FLOWERING LOCUS T. PLoS ONE 9, e89799 (2014).

[12]

Yan, Y. et al. A MYB-domain protein EFM mediates flowering responses to environmental cues in Arabidopsis. Dev. Cell 30, 437-448 (2014).

[13]

Abe, M. et al. FE, a phloem-specific Myb-related protein, promotes flowering through transcriptional activation of flowering locus t and flowering locus t interacting protein 1. Plant J. 83, 1059-1068 (2015).

[14]

Jung, C. et al. Overexpression of AtMYB44 enhances stomatal closure to confer abiotic stress tolerance in transgenic Arabidopsis. Plant Physiol. 146, 623-635 (2008).

[15]

Liu, S. et al. R2R3 MYB transcription factor PtrMYB192 regulates flowering time in arabidopsis by activating flowering locus c. J. Plant Biol. 56, 243-250 (2013).

[16]

Zhang, L. et al. The wheat MYB-related transcription factor TaMYB72 promotes flowering in rice. J. Integr. Plant. Biol. 58, 701-704 (2016).

[17]

Gao, R., Gruber, M. Y., Amyot, L. & Hannoufa, A. SPL13 regulates shoot branching and flowering time in Medicago sativa. Plant. Mol. Biol. 96, 1-15 (2018).

[18]

Cheng, P. L. et al. A transcriptomic analysis targeting genes involved in the floral transition of winter-flowering chrysanthemum. J. Plant. Growth. Regul. 37, 1-13 (2017).

[19]

Ren, L. P. et al. Transcriptomic analysis of differentially expressed genes in the floral transition of the summer flowering chrysanthemum. BMC Genomics 17, 673 (2016).

[20]

Shinoyama, H., Aida, R., Ichikawa, H., Nomura, Y. & Mochizuki, A. Genetic engineering of chrysanthemum (Chrysanthemum morifolium): current progress and perspectives. Plant Biotechnol. 29, 323-337 (2012).

[21]

da Silva, Teixeira et al. Chrysanthemum biotechnology: Quo vadis?. Crit. Rev. Plant. Sci. 32, 21-52 (2013).

[22]

Shan, H. et al. Heterologous expression of the Chrysanthemum R2R3-MYB transcription factor CmMYB2 enhances drought and salinity tolerance, increases hypersensitivity to ABA and delays flowering in Arabidopsis thaliana. Mol. Biotechnol. 51, 160-173 (2012).

[23]

Yang, Y. J. et al. A zinc finger protein regulates flowering time and abiotic stress tolerance in Chrysanthemum by modulating gibberellin biosynthesis. Plant Cell 26, 2038 (2014).

[24]

Huang, P. et al. OsMYB511 encodes a MYB domain transcription activator early regulated by abiotic stress in rice. Genet. Mol. Res. 14, 9506-17 (2015).

[25]

Li, H. L., Dong, G. & Peng, S. Q. Molecular characterization of the Jatropha curcas JcR1MYB1 gene encoding a putative R1-MYB transcription factor. Genet. Mol. Biol. 37, 549 (2014).

[26]

Huang, C. et al. NbPHAN, a MYB transcriptional factor, regulates leaf development and affects drought tolerance in Nicotiana benthamiana. Physiol. Plant. 149, 297-309 (2013).

[27]

He, Y. et al. Ectopic expression of a wheat MYB transcription factor gene, TaMYB73, improves salinity stress tolerance in Arabidopsis thaliana. J. Exp. Bot. 63, 1511 (2012).

[28]

Wang, Y. et al. CmMYB19 Over-expression improves aphid tolerance in chrysanthemum by promoting lignin synthesis. Int. J. Mol. Sci. 18, 619 (2017).

[29]

Yant, L., Mathieu, J. & Schmid, M. Just say no: floral repressors help Arabidopsis bide the time. Curr. Opin. Plant. Biol. 12, 580-586 (2009).

[30]

Wahl, V. et al. Regulation of flowering by trehalose-6-phosphate signaling in Arabidopsis thaliana. Science 339, 704 (2013).

[31]

Boss, P. K., Bastow, R. M., Mylne, J. S. & Dean, C. Multiple pathways in the decision to flower: enabling, promoting, and resetting. Plant Cell 16(Suppl), S18-S31 (2004).

[32]

Zhao, C., Hanada, A., Yamaguchi, S., Kamiya, Y. & Beers, E. P. The Arabidopsis Myb genes MYR1 and MYR2 are redundant negative regulators of flowering time under decreased light intensity. Plant J. 66, 502-515 (2011).

[33]

Zhang, Y. et al. The cyclophilin CYP20-2 modulates the conformation of BRASSINAZOLE-RESISTANT1, which binds the promoter of FLOWERING LOCUS D to regulate flowering in Arabidopsis. Plant Cell 25, 2504-21 (2013).

[34]

Curtis, M. D. & Grossniklaus, U. A gateway cloning vector set for high-throughput functional analysis of genes in planta. Plant Physiol. 133, 462-469 (2003).

[35]

Murashige, T. & Skoog, F. A revised medium for rapid growth and bio assays with tobacco tissue cultures. Physiol. Plant. 15, 473-497 (1962).

[36]

Wu, F. H. et al. Tape-Arabidopsis Sandwich - a simpler Arabidopsis protoplast isolation method. Plant Methods 5, 16 (2009).

[37]

Fujikawa, Y. & Kato, N. Split luciferase complementation assay to study protein-protein interactions in Arabidopsis protoplasts. Plant J. 52, 185 (2007).

[38]

Becker, D . Binary vectors which allow the exchange of plant selectable markers and reporter genes. Nucleic Acids Res. 18, 203 (1990).

[39]

Alvarez, J. P. et al. Endogenous and synthetic microRNAs stimulate simultaneous, efficient, and localized regulation of multiple targets in diverse species. Plant Cell 18, 1134-51 (2006).

[40]

Cui, X. L., Chen, F. D. & Chen, S. M. Establishment of regeneration and transformation system of ground-cover chrysanthemum Yuhuaxunzhang. JNAU China 32, 40-46 (2009).

[41]

Grabherr, M. G. et al. Full-length transcriptome assembly from RNA-Seq data without a reference genome. Nat. Biotechnol. 29, 644-652 (2011).

[42]

Citovsky, V. et al. Subcellular localization of interacting proteins by bimolecular fluorescence complementation in planta. J. Mol. Biol. 362, 1120-1131 (2006).

[43]

Zhou, F. et al. D14-SCFD3-dependent degradation of D53 regulates strigolactone signalling . Nature 504, 406 (2013).

PDF (2188KB)

0

Accesses

0

Citation

Detail

Sections
Recommended

/