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Structural insights into the molecular mechanism of mouse TRPA1 activation and inhibition
Amrita Samanta1, Janna Kiselar2, Ruth A Pumroy3
1Department of Physiology and Biophysics, School of Medicine, Case Western Reserve University, Cleveland, OH.
Abstract:
Pain, though serving the beneficial function of provoking a response to dangerous situations, is an unpleasant sensory and emotional experience. Transient receptor potential ankyrin 1 (TRPA1) is a member of the transient receptor potential (TRP) cation channel family and is localized in "nociceptors," where it plays a key role in the transduction of chemical, inflammatory, and neuropathic pain. TRPA1 is a Ca2+-permeable, nonselective cation channel that is activated by a large variety of structurally unrelated electrophilic and nonelectrophilic chemical compounds. Electrophilic ligands are able to activate TRPA1 channels by interacting with critical cysteine residues on the N terminus of the channels via covalent modification and/or disulfide bonds. Activation by electrophilic compounds is dependent on their thiol-reactive moieties, accounting for the structural diversity of the group. On the other hand, nonelectrophilic ligands do not interact with critical cysteines on the channel, so the structural diversity of this group is unexplained. Although near-atomic-resolution structures of TRPA1 were resolved recently by cryo-electron microscopy, in the presence of both agonists and antagonists, detailed mechanisms of channel activation and inhibition by these modulators could not be determined. Here, we investigate the effect of both electrophilic and nonelectrophilic ligands on TRPA1 channel conformational rearrangements with limited proteolysis and mass spectrometry. Collectively, our results reveal that channel modulation results in conformational rearrangements in the N-terminal ankyrin repeats, the pre-S1 helix, the TRP-like domain, and the linker regions of the channel.
Insights
Transient receptor potential ankyrin 1 (TRPA1) channels are key in pain signaling. This study reveals how different chemical compounds cause conformational changes in TRPA1, advancing our understanding of pain mechanisms.
Area of Science:
- Neuroscience
- Molecular Biology
- Biochemistry
Background:
- Transient receptor potential ankyrin 1 (TRPA1) channels are crucial for pain transduction in nociceptors.
- TRPA1 channels are activated by diverse chemical compounds, including electrophilic and nonelectrophilic ligands, but the activation mechanisms remain unclear.
- Recent structural studies have not fully elucidated the detailed mechanisms of TRPA1 channel activation and inhibition.
Purpose of the Study:
- To investigate the conformational rearrangements of TRPA1 channels induced by both electrophilic and nonelectrophilic ligands.
- To elucidate the molecular mechanisms underlying TRPA1 channel activation and modulation by various chemical compounds.
Main Methods:
- Limited proteolysis coupled with mass spectrometry was employed to analyze TRPA1 channel conformational changes.
- The study examined the effects of structurally diverse electrophilic and nonelectrophilic ligands on TRPA1.
Main Results:
- Ligand binding induced significant conformational rearrangements in multiple regions of the TRPA1 channel.
- Key areas affected include the N-terminal ankyrin repeats, pre-S1 helix, TRP-like domain, and linker regions.
- These structural changes provide insights into how different classes of compounds modulate TRPA1 channel activity.
Conclusions:
- TRPA1 channel modulation by both electrophilic and nonelectrophilic ligands involves distinct conformational changes.
- Understanding these rearrangements is critical for developing novel therapeutic strategies targeting TRPA1 for pain management.
- The study provides a deeper mechanistic understanding of TRPA1 channel function in chemical sensing and pain pathways.
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