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Multimerization of Homo sapiens TRPA1 ion channel cytoplasmic domains
Gilbert Q Martinez1, Sharona E Gordon1
1Department of Physiology and Biophysics, University of Washington, Seattle, Washington, United States of America.
Abstract:
The transient receptor potential Ankyrin-1 (TRPA1) ion channel is modulated by myriad noxious stimuli that interact with multiple regions of the channel, including cysteine-reactive natural extracts from onion and garlic which modify residues in the cytoplasmic domains. The way in which TRPA1 cytoplasmic domain modification is coupled to opening of the ion-conducting pore has yet to be elucidated. The cryo-EM structure of TRPA1 revealed a tetrameric C-terminal coiled-coil surrounded by N-terminal ankyrin repeat domains (ARDs), an architecture shared with the canonical transient receptor potential (TRPC) ion channel family. Similarly, structures of the TRP melastatin (TRPM) ion channel family also showed a C-terminal coiled-coil surrounded by N-terminal cytoplasmic domains. This conserved architecture may indicate a common gating mechanism by which modification of cytoplasmic domains can transduce conformational changes to open the ion-conducting pore. We developed an in vitro system in which N-terminal ARDs and C-terminal coiled-coil domains can be expressed in bacteria and maintain the ability to interact. We tested three gating regulators: temperature; the polyphosphate compound IP6; and the covalent modifier allyl isothiocyanate to determine whether they alter N- and C-terminal interactions. We found that none of the modifiers tested abolished ARD-coiled-coil interactions, though there was a significant reduction at 37˚C. We found that coiled-coils tetramerize in a concentration dependent manner, with monomers and trimers observed at lower concentrations. Our system provides a method for examining the mechanism of oligomerization of TRPA1 cytoplasmic domains as well as a system to study the transmission of conformational changes resulting from covalent modification.
Insights
Researchers studied the TRPA1 ion channel
Area of Science:
- Ion channel biophysics
- Molecular and cellular biology
- Structural biology
Background:
- The Transient Receptor Potential Ankyrin-1 (TRPA1) ion channel is activated by various noxious stimuli.
- The precise gating mechanism linking cytoplasmic domain modification to pore opening remains unclear.
- TRPA1 shares structural similarities with other TRP channel families, suggesting a conserved gating mechanism.
Purpose of the Study:
- To investigate the interaction between N-terminal ankyrin repeat domains (ARDs) and C-terminal coiled-coil domains of TRPA1.
- To determine if temperature, IP6, or allyl isothiocyanate affect these domain interactions.
- To establish an in vitro system for studying TRPA1 oligomerization and conformational changes.
Main Methods:
- Developed an in vitro bacterial expression system for TRPA1 N-terminal ARDs and C-terminal coiled-coil domains.
- Assessed the interaction between ARDs and coiled-coils under varying conditions and in the presence of gating regulators.
- Analyzed coiled-coil oligomerization states (monomer, trimer, tetramer) using concentration-dependent studies.
Main Results:
- N-terminal ARDs and C-terminal coiled-coil domains of TRPA1 interact in vitro.
- Gating regulators did not abolish ARD-coiled-coil interactions, but a significant reduction was observed at 37°C.
- Coiled-coil domains exhibit concentration-dependent tetramerization, with lower concentrations showing monomers and trimers.
Conclusions:
- The developed in vitro system facilitates the study of TRPA1 cytoplasmic domain oligomerization.
- Understanding these interactions is crucial for elucidating how cytoplasmic modifications translate to channel gating.
- The conserved architecture among TRP channels suggests a common mechanism for gating signal transduction.
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