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Updated: Jul 13, 2026

Yeast Luminometric and Xenopus Oocyte Electrophysiological Examinations of the Molecular Mechanosensitivity of TRPV4
Published on: December 31, 2013
TRPV4: A Promising Therapeutic Target Ion Channel─Discovery of Ultrapotent Selective Antagonists
Magnus Nilsson1, Sara J Bonvini2, Emelyne Diers1
1Medicinal Chemistry, Discovery Sciences, BioPharmaceuticals R&D, AstraZeneca, Gothenburg SE-431 83, Sweden.
Abstract:
TRPV4 is a polymodal, calcium-permeable channel broadly expressed and enriched in epithelia, where it integrates mechanical, osmotic, and chemical cues to regulate calcium signaling. Although TRPV4 antagonism has long been pursued therapeutically, only one antagonist has reached patients and it lacked efficacy, likely due to pharmacokinetic limitations. We describe a novel series of small-molecule TRPV4 antagonist discovered via high-throughput screening and optimized for potency, selectivity, and developability. The lead, compound 39, demonstrates favorable absorption and elimination supporting a low, predicted once-daily oral dose, with robust margins to off-target pharmacology in early safety studies. In vivo, compound 39 attenuates responses in a mechanistically relevant cough model, indicating target engagement and functional efficacy. These findings position the preclinical compound 39 as a differentiated TRPV4 antagonist with drug-like pharmacokinetics and an encouraging nonclinical safety profile.
Insights
A novel small-molecule TRPV4 antagonist, compound 39, shows promise for treating conditions linked to the TRPV4 channel. It offers improved drug-like properties and demonstrated efficacy in a preclinical cough model.
Area of Science:
- Molecular Biology
- Pharmacology
- Drug Discovery
Background:
- Transient Receptor Potential Vanilloid 4 (TRPV4) is a calcium-permeable channel crucial for cellular signaling in epithelia.
- TRPV4 antagonism is a therapeutic target, but previous attempts faced pharmacokinetic challenges, limiting clinical efficacy.
Purpose of the Study:
- To discover and optimize novel small-molecule TRPV4 antagonists.
- To evaluate the pharmacokinetic and safety profile of lead compound 39.
- To assess the in vivo efficacy of compound 39 in a relevant disease model.
Main Methods:
- High-throughput screening was employed to identify initial TRPV4 antagonist hits.
- Lead optimization focused on enhancing potency, selectivity, and drug-like properties.
- Preclinical in vivo studies, including a cough model, were used to assess efficacy and safety.
Main Results:
- A novel series of TRPV4 antagonists was developed, with compound 39 emerging as the lead candidate.
- Compound 39 exhibited favorable absorption and elimination, suggesting a potential for once-daily oral dosing.
- Early safety studies indicated robust margins to off-target effects, and compound 39 demonstrated functional efficacy in a preclinical cough model.
Conclusions:
- Compound 39 represents a differentiated preclinical TRPV4 antagonist with promising drug-like pharmacokinetics.
- The favorable nonclinical safety profile and demonstrated efficacy support further development of compound 39 for therapeutic applications.
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