Abstract
Ethylene responses in Arabidopsis are mediated by a small family of receptors, including the ETR1 gene product. Specific mutations in the N-terminal ethylene-binding domain of any family member lead to dominant ethylene insensitivity. To investigate the mechanism of ethylene insensitivity, we examined the effects of mutations on the ethylene-binding activity of the ETR1 protein expressed in yeast. The etr1-1 and etr1-4 mutations completely eliminated ethylene binding, while the etr1-3 mutation severely reduced binding. Additional site-directed mutations that disrupted ethylene binding in yeast also conferred dominant ethylene insensitivity when the mutated genes were transferred into wild-type Arabidopsis plants. By contrast, the etr1-2 mutation did not disrupt ethylene binding in yeast. These results indicate that dominant ethylene insensitivity may be conferred by mutations that disrupt ethylene binding or that uncouple ethylene binding from signal output by the receptor. Increased dosage of wild-type alleles in triploid lines led to the partial recovery of ethylene sensitivity, indicating that dominant ethylene insensitivity may involve either interactions between wild-type and mutant receptors or competition between mutant and wild-type receptors for downstream effectors.
MeSH Terms
Alleles
Arabidopsis/drug effects,genetics,growth & development,metabolism
Binding Sites
Dimerization
Dose-Response Relationship, Drug
Ethylenes/metabolism,pharmacology
Gene Dosage
Genes, Dominant
Genes, Plant
Genotype
Hypocotyl/drug effects,genetics,growth & development,metabolism
Models, Biological
Mutagenesis, Site-Directed
Mutation
Phenotype
Plant Proteins/genetics,metabolism
Plants, Genetically Modified
Polyploidy
Receptors, Cell Surface/genetics,metabolism
Signal Transduction
Yeasts/genetics,metabolism
Chemicals
Ethylenes
Plant Proteins
Receptors, Cell Surface
ethylene receptors, plant
ethylene
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Hall A E
Department of Botany, University of Wisconsin, Madison, Wisconsin 53706, USA.
Chen Q G
Findell J L
Schaller G E
Bleecker A B
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