Abstract
The plant photoreceptor phytochrome A utilizes three signal transduction pathways, dependent upon calcium and/or cGMP, to activate genes in the light. In this report, we have studied the phytochrome A regulation of a gene that is down-regulated by light, asparagine synthetase (AS1). We show that AS1 is expressed in the dark and repressed in the light. Repression of AS1 in the light is likely controlled by the same calcium/cGMP-dependent pathway that is used to activate other light responses. The use of the same signal transduction pathway for both activating and repressing different responses provides an interesting mechanism for phytochrome action. Using complementary loss- and gain-of-function experiments we have identified a 17 bp cis-element within the AS1 promoter that is both necessary and sufficient for this regulation. This sequence is likely to be the target for a highly conserved phytochrome-generated repressor whose activity is regulated by both calcium and cGMP.
MeSH Terms
Aspartate-Ammonia Ligase/biosynthesis,genetics
Calcium/metabolism
Cyclic GMP/metabolism
Darkness
Down-Regulation
Gene Expression Regulation, Plant
Genes, Reporter
Glucuronidase/biosynthesis,genetics
Light
Lycopersicon esculentum/radiation effects
Morphogenesis/radiation effects
Phytochrome/metabolism,radiation effects
Phytochrome A
Promoter Regions, Genetic
Recombinant Fusion Proteins/biosynthesis
Signal Transduction
Chemicals
Phytochrome A
Recombinant Fusion Proteins
Phytochrome
Glucuronidase
Aspartate-Ammonia Ligase
Cyclic GMP
Calcium
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Neuhaus G
Laboratory of Plant Molecular Biology, The Rockefeller University, New York, NY 10021-6399, USA.
Bowler C
Hiratsuka K
Yamagata H
Chua N H
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