| Literature DB >> 29103938 |
Scott A Sinclair1, Camille Larue1, Laura Bonk2, Asif Khan1, Hiram Castillo-Michel3, Ricardo J Stein1, Daniel Grolimund4, Dominik Begerow5, Ulla Neumann6, Michael J Haydon1, Ute Krämer7.
Abstract
Etiolated growth in darkness or the irreversible transition to photomorphogenesis in the light engages alternative developmental programs operating across all organs of a plant seedling. Dark-grown Arabidopsis de-etiolated by zinc (dez) mutants exhibit morphological, cellular, metabolic, and transcriptional characteristics of light-grown seedlings. We identify the causal mutation in TRICHOME BIREFRINGENCE encoding a putative acyl transferase. Pectin acetylation is decreased in dez, as previously found in the reduced wall acetylation2-3 mutant, shown here to phenocopy dez. Moreover, pectin of dez is excessively methylesterified. The addition of very short fragments of homogalacturonan, tri-galacturonate, and tetra-galacturonate, restores skotomorphogenesis in dark-grown dez and similar mutants, suggesting that the mutants are unable to generate these de-methylesterified pectin fragments. In combination with genetic data, we propose a model of spatiotemporally separated photoreceptive and signal-responsive cell types, which contain overlapping subsets of the regulatory network of light-dependent seedling development and communicate via a pectin-derived dark signal.Entities:
Keywords: JAR1; MUR1; RWA2; TBR; basal zinc tolerance; nickel; oxylipin; pectin acetylation; pectin methylesterification; short oligogalacturonides
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Year: 2017 PMID: 29103938 DOI: 10.1016/j.cub.2017.09.063
Source DB: PubMed Journal: Curr Biol ISSN: 0960-9822 Impact factor: 10.834