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Intracranial Pharmacotherapy and Pain Assays in Rodents
Published on: April 9, 2019
Binding and Activating of Analgesic Crotalphine with Human TRPA1
Mingmin Kang1, Yanming Zhang1, Xiufang Ding1
1State key Laboratory of NBC Protection for Civilian, Beijing102205, China.
Abstract:
TRPA1 (Transient Receptor Potential Ankyrin 1), a cation channel predominantly expressed in sensory neurons, plays a critical role in detecting noxious stimuli and mediating pain signal transmission. As a key player in nociceptive signaling pathways, TRPA1 has emerged as a promising therapeutic target for the development of novel analgesics. Crotalphine (CRP), a 14-amino acid peptide, has been demonstrated to specifically activate TRPA1 and elicit potent analgesic effects. Previous cryo-EM (cryo-electron microscopy) studies have elucidated the structural mechanisms of TRPA1 activation by small-molecule agonists, such as iodoacetamide (IA), through covalent modification of N-terminal cysteine residues. However, the molecular interactions between TRPA1 and peptide ligands, including crotalphine, remain unclear. Here, we present the cryo-EM structure of ligand-free human TRPA1 consistent with the literature, as well as TRPA1 complexed with crotalphine, with resolutions of 3.1 Å and 3.8 Å, respectively. Through a combination of single-particle cryo-EM studies, patch-clamp electrophysiology, and microscale thermophoresis (MST), we have identified the cysteine residue at position 621 (Cys621) within the TRPA1 ion channel as the primary binding site for crotalphine. Upon binding to the reactive pocket containing C621, crotalphine induces rotational and translational movements of the transmembrane domain. This allosteric modulation coordinately dilates both the upper and lower gates, facilitating ion permeation.
Insights
Crotalphine peptide specifically activates the TRPA1 pain channel by binding to Cys621. This interaction causes structural changes, opening the channel and reducing pain signals, offering a new target for analgesics.
Area of Science:
- Neuroscience
- Molecular Biology
- Structural Biology
Background:
- TRPA1 (Transient Receptor Potential Ankyrin 1) channels are crucial for pain sensation and are a key target for analgesics.
- Crotalphine (CRP) peptide activates TRPA1, showing analgesic potential.
- Previous studies detailed small-molecule TRPA1 activation but not peptide interactions.
Purpose of the Study:
- To elucidate the molecular mechanism of crotalphine binding and activation of the TRPA1 channel.
- To determine the structural basis for peptide-induced TRPA1 channel gating.
Main Methods:
- Single-particle cryo-electron microscopy (cryo-EM) to determine structures of TRPA1.
- Patch-clamp electrophysiology to measure channel activity.
- Microscale thermophoresis (MST) to analyze ligand binding.
Main Results:
- The cryo-EM structure of human TRPA1 complexed with crotalphine was determined at 3.8 Å resolution.
- Crotalphine was identified to bind to Cys621 within the TRPA1 channel.
- Crotalphine binding induces allosteric conformational changes, leading to the dilation of both upper and lower channel gates.
Conclusions:
- Crotalphine acts as a specific TRPA1 agonist by binding to Cys621.
- The binding of crotalphine to TRPA1 results in channel opening through allosteric modulation of the transmembrane domain.
- This structural insight provides a foundation for developing novel peptide-based TRPA1-targeting analgesics.
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