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Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics
by
Bongers, Franca J.
, Küpers, Jesse J.
, Anten, Niels P. R.
, Reinen, Emilie
, Evers, Jochem B.
, Pierik, Ronald
, Pantazopoulou, Chrysoula K.
, Das, Debatosh
in
Adaptation
/ Arabidopsis - physiology
/ Arabidopsis Proteins - metabolism
/ Auxin
/ Biological Sciences
/ Brassica
/ Computer applications
/ Computer Simulation
/ Flowers & plants
/ Functional-structural plant model
/ Gene expression
/ Gene Expression Regulation, Plant
/ Genes, Plant
/ Genotype
/ Hormones
/ Hypocotyl - physiology
/ Imaging, Three-Dimensional
/ Indoleacetic Acids - metabolism
/ Leaf movement
/ Leaves
/ Light
/ Light quality
/ Mutation
/ Phytochrome
/ Plant Biology
/ Plant Leaves - physiology
/ Plants (botany)
/ Seedlings - physiology
/ Shade avoidance
/ Shading
/ Signal Transduction
/ Spatial distribution
/ Three dimensional models
/ Transcription factors
/ Transcriptome
2017
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Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics
by
Bongers, Franca J.
, Küpers, Jesse J.
, Anten, Niels P. R.
, Reinen, Emilie
, Evers, Jochem B.
, Pierik, Ronald
, Pantazopoulou, Chrysoula K.
, Das, Debatosh
in
Adaptation
/ Arabidopsis - physiology
/ Arabidopsis Proteins - metabolism
/ Auxin
/ Biological Sciences
/ Brassica
/ Computer applications
/ Computer Simulation
/ Flowers & plants
/ Functional-structural plant model
/ Gene expression
/ Gene Expression Regulation, Plant
/ Genes, Plant
/ Genotype
/ Hormones
/ Hypocotyl - physiology
/ Imaging, Three-Dimensional
/ Indoleacetic Acids - metabolism
/ Leaf movement
/ Leaves
/ Light
/ Light quality
/ Mutation
/ Phytochrome
/ Plant Biology
/ Plant Leaves - physiology
/ Plants (botany)
/ Seedlings - physiology
/ Shade avoidance
/ Shading
/ Signal Transduction
/ Spatial distribution
/ Three dimensional models
/ Transcription factors
/ Transcriptome
2017
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Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics
by
Bongers, Franca J.
, Küpers, Jesse J.
, Anten, Niels P. R.
, Reinen, Emilie
, Evers, Jochem B.
, Pierik, Ronald
, Pantazopoulou, Chrysoula K.
, Das, Debatosh
in
Adaptation
/ Arabidopsis - physiology
/ Arabidopsis Proteins - metabolism
/ Auxin
/ Biological Sciences
/ Brassica
/ Computer applications
/ Computer Simulation
/ Flowers & plants
/ Functional-structural plant model
/ Gene expression
/ Gene Expression Regulation, Plant
/ Genes, Plant
/ Genotype
/ Hormones
/ Hypocotyl - physiology
/ Imaging, Three-Dimensional
/ Indoleacetic Acids - metabolism
/ Leaf movement
/ Leaves
/ Light
/ Light quality
/ Mutation
/ Phytochrome
/ Plant Biology
/ Plant Leaves - physiology
/ Plants (botany)
/ Seedlings - physiology
/ Shade avoidance
/ Shading
/ Signal Transduction
/ Spatial distribution
/ Three dimensional models
/ Transcription factors
/ Transcriptome
2017
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Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics
Journal Article
Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics
2017
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Overview
Vegetation stands have a heterogeneous distribution of light quality, including the red/far-red light ratio (R/FR) that informs plants about proximity of neighbors. Adequate responses to changes in R/FR are important for competitive success. How the detection and response to R/FR are spatially linked and how this spatial coordination between detection and response affects plant performance remains unresolved. We show in Arabidopsis thaliana and Brassica nigra that localized FR enrichment at the lamina tip induces upward leaf movement (hyponasty) from the petiole base. Using a combination of organ-level transcriptome analysis, molecular reporters, and physiology, we show that PIF-dependent spatial auxin dynamics are key to this remote response to localized FR enrichment. Using computational 3D modeling, we show that remote signaling of R/FR for hyponasty has an adaptive advantage over local signaling in the petiole, because it optimizes the timing of leaf movement in response to neighbors and prevents hyponasty caused by self-shading.
Publisher
National Academy of Sciences
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