Neighbor detection at the leaf tip adaptively regulates upward leaf movement through spatial auxin dynamics.
basic_science · Level V
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- Record sourced from PubMed, PMID 28652357.
- Also identified by DOI 10.1073/pnas.1702275114 and PMC identifier 5514729.
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Abstract
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 <i>Arabidopsis thaliana</i> and <i>Brassica nigra</i> 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.
Medical subject headings
- Arabidopsis
- Gene Expression Regulation, Plant
- Indoleacetic Acids
- Plant Leaves