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OtherCELL BIOLOGY AND SIGNAL TRANSDUCTION
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Blue Light-Induced Phosphorylation of a Plasma Membrane-Associated Protein in Zea mays L

J. M. Palmer, T. W. Short, S. Gallagher, W. R. Briggs
J. M. Palmer
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T. W. Short
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S. Gallagher
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W. R. Briggs
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Published August 1993. DOI: https://doi.org/10.1104/pp.102.4.1211

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  • Copyright © 1993 by American Society of Plant Biologists

Abstract

Blue light induces a variety of photomorphogenic responses in higher plants, among them phototropic curvature, the bending of seedlings toward a unidirectional light source. In dark-grown coleoptiles of maize (Zea mays L.) seedlings, blue light induces rapid phosphorylation of a 114-kD protein at fluence levels that are sufficient to stimulate phototropic curvature. Phosphorylation in response to blue light can be detected in vivo in coleoptile tips preincubated in 32Pi or in vitro in isolated membranes supplemented with [[gamma]-32P]ATP. Phosphorylation reaches a maximum level in vitro within 2 min following an inductive light pulse, but substantial labeling occurs within the first 15 s. Isolated membranes remain activated for several minutes following an in vitro blue light stimulus, even in the absence of exogenous ATP. Phosphoamino acid analysis of the 114-kD protein detected phosphoserine and a trace of phosphothreonine. The kinase involved in phosphorylating the protein in vitro is not dependent on calcium. The 114-kD protein itself has an apparent binding site for ATP, detected by incubating with the nonhydrolyzable analog, 5[prime]-p-fluorosulfonyl-benzoyladenosine. This result suggests that the 114-kD protein, which becomes phosphorylated in response to blue light, may also be capable of kinase activity.

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Blue Light-Induced Phosphorylation of a Plasma Membrane-Associated Protein in Zea mays L
J. M. Palmer, T. W. Short, S. Gallagher, W. R. Briggs
Plant Physiology Aug 1993, 102 (4) 1211-1218; DOI: 10.1104/pp.102.4.1211

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Blue Light-Induced Phosphorylation of a Plasma Membrane-Associated Protein in Zea mays L
J. M. Palmer, T. W. Short, S. Gallagher, W. R. Briggs
Plant Physiology Aug 1993, 102 (4) 1211-1218; DOI: 10.1104/pp.102.4.1211
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Plant Physiology
Vol. 102, Issue 4
Aug 1993
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  • The Cell Wall of the Arabidopsis Pollen Tube—Spatial Distribution, Recycling, and Network Formation of Polysaccharides
  • Systems Dynamic Modeling of a Guard Cell Cl− Channel Mutant Uncovers an Emergent Homeostatic Network Regulating Stomatal Transpiration
  • Vacuolar CAX1 and CAX3 Influence Auxin Transport in Guard Cells via Regulation of Apoplastic pH
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