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  6. Identification of Important Regions for Ethylene Binding and Signaling in the Transmembrane Domain of the ETR1 Ethylene Receptor of Arabidopsis
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Identification of Important Regions for Ethylene Binding and Signaling in the Transmembrane Domain of the ETR1 Ethylene Receptor of Arabidopsis

Source Publication
The Plant Cell
Date Issued
January 1, 2006
Author(s)
Binder, Brad M.  
Wang, Wuyi
Esch, Jeff J.
Shiu, Shin-Han
Agula, Hasi
Chang, Caren
Patterson, Sara E.
Bleecker, Anthony B.
DOI
10.1105/tpc.106.044537
Link to full text
http://www.plantcell.org/cgi/gca?SEARCHID=1&VOLUME=18&FIRSTPAGE=3429&FIRSTINDEX=0&hits=10&RESULTFORMAT=&gca=tpc.106.044537&sendit=Get+All+Checked+Abstract%28s%29
Permanent URI
https://trace.tennessee.edu/handle/20.500.14382/15585
Abstract

The ethylene binding domain (EBD) of the Arabidopsis thaliana ETR1 receptor is modeled as three membrane-spanning helices. We surveyed ethylene binding activity in different kingdoms and performed a bioinformatic analysis of the EBD. Ethylene binding is confined to land plants, Chara, and a group of cyanobacteria but is largely absent in other organisms, consistent with our finding that EBD-like sequences are overrepresented among plant and cyanobacterial species. We made amino acid substitutions in 37 partially or completely conserved residues of the EBD and assayed their effects on ethylene binding and signaling. Mutations primarily in residues in Helices I and II midregions eliminated ethylene binding and conferred constitutive signaling, consistent with the inverse-agonist model of ethylene receptor signaling and indicating that these residues define the ethylene binding pocket. The largest class of mutations, clustered near the cytoplasmic ends of Helices I and III, gave normal ethylene binding activity yet still conferred constitutive signaling. Therefore, these residues may play a role in turning off the signal transmitter domain of the receptor. By contrast, only two mutations were loss of function with respect to signaling. These findings yield insight into the structure and function of the EBD and suggest a conserved role of the EBD as a negative regulator of the signal transmitter domain.

Disciplines
Biochemistry
Molecular Biology
Plant Biology
Recommended Citation
Wuyi Wang, Jeff J. Esch, Shin-Han Shiu, Hasi Agula, Brad M. Binder, Caren Chang, Sara E. Patterson, and Anthony B. Bleecker Identification of Important Regions for Ethylene Binding and Signaling in the Transmembrane Domain of the ETR1 Ethylene Receptor of Arabidopsis Plant Cell 18: 3429-3442; First published on December 22, 2006; 10.1105/tpc.106.044537
Submission Type
Publisher's Version
Embargo Date
September 10, 2010
File(s)
Thumbnail Image
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tpc1803429.pdf

Size

838.53 KB

Format

Adobe PDF

Checksum (MD5)

4eac9cf22bf0c4a4d377a0b45f7a9f50


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