Gibberellin control of stamen development: a fertile field

Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormone...

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Published inTrends in plant science Vol. 16; no. 10; pp. 568 - 578
Main Authors Plackett, Andrew R.G, Thomas, Stephen G, Wilson, Zoe A, Hedden, Peter
Format Journal Article
LanguageEnglish
Published Kidlington Elsevier Ltd 01.10.2011
Elsevier
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Abstract Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormones, and here we review recent experimental results in rice (Oryza sativa) and Arabidopsis (Arabidopsis thaliana) that have provided insight into the timing and mechanisms of GA regulation of stamen development, identifying the tapetum and developing pollen as major targets. GA signalling governs both tapetum secretory functions and entry into programmed cell death via the GAMYB class of transcription factor, the targets of which integrate with the established genetic framework for the regulation of tapetum function at multiple hierarchical levels.
AbstractList Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormones, and here we review recent experimental results in rice (Oryza sativa) and Arabidopsis (Arabidopsis thaliana) that have provided insight into the timing and mechanisms of GA regulation of stamen development, identifying the tapetum and developing pollen as major targets. GA signalling governs both tapetum secretory functions and entry into programmed cell death via the GAMYB class of transcription factor, the targets of which integrate with the established genetic framework for the regulation of tapetum function at multiple hierarchical levels.
Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormones, and here we review recent experimental results in rice ( Oryza sativa) and Arabidopsis ( Arabidopsis thaliana) that have provided insight into the timing and mechanisms of GA regulation of stamen development, identifying the tapetum and developing pollen as major targets. GA signalling governs both tapetum secretory functions and entry into programmed cell death via the GAMYB class of transcription factor, the targets of which integrate with the established genetic framework for the regulation of tapetum function at multiple hierarchical levels.
Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormones, and here we review recent experimental results in rice (Oryza sativa) and Arabidopsis (Arabidopsis thaliana) that have provided insight into the timing and mechanisms of GA regulation of stamen development, identifying the tapetum and developing pollen as major targets. GA signalling governs both tapetum secretory functions and entry into programmed cell death via the GAMYB class of transcription factor, the targets of which integrate with the established genetic framework for the regulation of tapetum function at multiple hierarchical levels.Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our understanding of the involvement of gibberellin (GA) signalling in this developmental process is further advanced than for the other phytohormones, and here we review recent experimental results in rice (Oryza sativa) and Arabidopsis (Arabidopsis thaliana) that have provided insight into the timing and mechanisms of GA regulation of stamen development, identifying the tapetum and developing pollen as major targets. GA signalling governs both tapetum secretory functions and entry into programmed cell death via the GAMYB class of transcription factor, the targets of which integrate with the established genetic framework for the regulation of tapetum function at multiple hierarchical levels.
Author Hedden, Peter
Thomas, Stephen G
Plackett, Andrew R.G
Wilson, Zoe A
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Issue 10
Keywords Development
Field
Plant growth substance
Gibberellin
Plant sciences
Stamen
Language English
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Snippet Stamen development is governed by a conserved genetic pathway, within which the role of hormones has been the subject of considerable recent research. Our...
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SubjectTerms anatomy & histology
apoptosis
Arabidopsis
Arabidopsis - anatomy & histology
Arabidopsis - drug effects
Arabidopsis - growth & development
Arabidopsis thaliana
Biological and medical sciences
biosynthesis
chemistry
drug effects
Fertility
Flowers
Flowers - drug effects
Flowers - growth & development
Fundamental and applied biological sciences. Psychology
Gene Expression Regulation, Plant
Genes, Homeobox
gibberellins
Gibberellins - biosynthesis
Gibberellins - chemistry
Gibberellins - pharmacology
growth & development
Oryza
Oryza - anatomy & histology
Oryza - drug effects
Oryza - growth & development
Oryza sativa
pharmacology
Plant Growth Regulators
Plant Growth Regulators - pharmacology
plant hormones
pollen
Pollen - drug effects
Pollen - growth & development
rice
Signal Transduction
transcription factors
Title Gibberellin control of stamen development: a fertile field
URI https://dx.doi.org/10.1016/j.tplants.2011.06.007
https://www.ncbi.nlm.nih.gov/pubmed/21824801
https://www.proquest.com/docview/1514396608
https://www.proquest.com/docview/896241600
Volume 16
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