Cargando…

A molecular framework for seasonal growth-dormancy regulation in perennial plants

The timing of the onset and release of dormancy impacts the survival, productivity and spatial distribution of temperate horticultural and forestry perennials and is mediated by at least three main regulatory programs involving signal perception and processing by phytochromes (PHYs) and PHY-interact...

Descripción completa

Detalles Bibliográficos
Autores principales: Shim, Donghwan, Ko, Jae-Heung, Kim, Won-Chan, Wang, Qijun, Keathley, Daniel E, Han, Kyung-Hwan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4591672/
https://www.ncbi.nlm.nih.gov/pubmed/26504555
http://dx.doi.org/10.1038/hortres.2014.59
_version_ 1782393115814920192
author Shim, Donghwan
Ko, Jae-Heung
Kim, Won-Chan
Wang, Qijun
Keathley, Daniel E
Han, Kyung-Hwan
author_facet Shim, Donghwan
Ko, Jae-Heung
Kim, Won-Chan
Wang, Qijun
Keathley, Daniel E
Han, Kyung-Hwan
author_sort Shim, Donghwan
collection PubMed
description The timing of the onset and release of dormancy impacts the survival, productivity and spatial distribution of temperate horticultural and forestry perennials and is mediated by at least three main regulatory programs involving signal perception and processing by phytochromes (PHYs) and PHY-interacting transcription factors (PIFs). PIF4 functions as a key regulator of plant growth in response to both external and internal signals. In poplar, the expression of PIF4 and PIF3-LIKE1 is upregulated in response to short days, while PHYA and PHYB are not regulated at the transcriptional level. Integration of light and environmental signals is achieved by gating the expression and transcriptional activity of PIF4. During this annual cycle, auxin promotes the degradation of Aux/IAA transcriptional repressors through the SKP–Cullin-F–boxTIR1 complex, relieving the repression of auxin-responsive genes by allowing auxin response factors (ARFs) to activate the transcription of auxin-responsive genes involved in growth responses. Analyses of transcriptome changes during dormancy transitions have identified MADS-box transcription factors associated with endodormancy induction. Previous studies show that poplar dormancy-associated MADS-box (DAM) genes PtMADS7 and PtMADS21 are differentially regulated during the growth-dormancy cycle. Endodormancy may be regulated by internal factors, which are specifically localized in buds. PtMADS7/PtMADS21 may function as an internal regulator in poplar. The control of flowering time shares certain regulatory hierarchies with control of the dormancy/growth cycle. However, the particularities of different stages of the dormancy/growth cycle warrant comprehensive approaches to identify the causative genes for the entire cycle. A growing body of knowledge also indicates epigenetic regulation plays a role in these processes in perennial horticultural and forestry plants. The increased knowledge contributes to better understanding of the dormancy process and consequently to precise manipulation of dormancy-related horticultural traits, such as flowering time.
format Online
Article
Text
id pubmed-4591672
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-45916722015-10-26 A molecular framework for seasonal growth-dormancy regulation in perennial plants Shim, Donghwan Ko, Jae-Heung Kim, Won-Chan Wang, Qijun Keathley, Daniel E Han, Kyung-Hwan Hortic Res Review Article The timing of the onset and release of dormancy impacts the survival, productivity and spatial distribution of temperate horticultural and forestry perennials and is mediated by at least three main regulatory programs involving signal perception and processing by phytochromes (PHYs) and PHY-interacting transcription factors (PIFs). PIF4 functions as a key regulator of plant growth in response to both external and internal signals. In poplar, the expression of PIF4 and PIF3-LIKE1 is upregulated in response to short days, while PHYA and PHYB are not regulated at the transcriptional level. Integration of light and environmental signals is achieved by gating the expression and transcriptional activity of PIF4. During this annual cycle, auxin promotes the degradation of Aux/IAA transcriptional repressors through the SKP–Cullin-F–boxTIR1 complex, relieving the repression of auxin-responsive genes by allowing auxin response factors (ARFs) to activate the transcription of auxin-responsive genes involved in growth responses. Analyses of transcriptome changes during dormancy transitions have identified MADS-box transcription factors associated with endodormancy induction. Previous studies show that poplar dormancy-associated MADS-box (DAM) genes PtMADS7 and PtMADS21 are differentially regulated during the growth-dormancy cycle. Endodormancy may be regulated by internal factors, which are specifically localized in buds. PtMADS7/PtMADS21 may function as an internal regulator in poplar. The control of flowering time shares certain regulatory hierarchies with control of the dormancy/growth cycle. However, the particularities of different stages of the dormancy/growth cycle warrant comprehensive approaches to identify the causative genes for the entire cycle. A growing body of knowledge also indicates epigenetic regulation plays a role in these processes in perennial horticultural and forestry plants. The increased knowledge contributes to better understanding of the dormancy process and consequently to precise manipulation of dormancy-related horticultural traits, such as flowering time. Nature Publishing Group 2014-11-26 /pmc/articles/PMC4591672/ /pubmed/26504555 http://dx.doi.org/10.1038/hortres.2014.59 Text en Copyright © 2014 Nanjing Agricultural University http://creativecommons.org/licenses/by-nc-nd/3.0/ This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivs 3.0 Unported License. The images or other third party material in this article are included in the article's Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by-nc-nd/3.0/
spellingShingle Review Article
Shim, Donghwan
Ko, Jae-Heung
Kim, Won-Chan
Wang, Qijun
Keathley, Daniel E
Han, Kyung-Hwan
A molecular framework for seasonal growth-dormancy regulation in perennial plants
title A molecular framework for seasonal growth-dormancy regulation in perennial plants
title_full A molecular framework for seasonal growth-dormancy regulation in perennial plants
title_fullStr A molecular framework for seasonal growth-dormancy regulation in perennial plants
title_full_unstemmed A molecular framework for seasonal growth-dormancy regulation in perennial plants
title_short A molecular framework for seasonal growth-dormancy regulation in perennial plants
title_sort molecular framework for seasonal growth-dormancy regulation in perennial plants
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4591672/
https://www.ncbi.nlm.nih.gov/pubmed/26504555
http://dx.doi.org/10.1038/hortres.2014.59
work_keys_str_mv AT shimdonghwan amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT kojaeheung amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT kimwonchan amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT wangqijun amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT keathleydaniele amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT hankyunghwan amolecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT shimdonghwan molecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT kojaeheung molecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT kimwonchan molecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT wangqijun molecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT keathleydaniele molecularframeworkforseasonalgrowthdormancyregulationinperennialplants
AT hankyunghwan molecularframeworkforseasonalgrowthdormancyregulationinperennialplants