Chemical probes to potently and selectively inhibit endocannabinoid cellular reuptake.
basic_science · Level V
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- Record sourced from PubMed, PMID 28584105.
- Also identified by DOI 10.1073/pnas.1704065114 and PMC identifier 5488949.
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Abstract
The extracellular effects of the endocannabinoids anandamide and 2-arachidonoyl glycerol are terminated by enzymatic hydrolysis after crossing cellular membranes by facilitated diffusion. The lack of potent and selective inhibitors for endocannabinoid transport has prevented the molecular characterization of this process, thus hindering its biochemical investigation and pharmacological exploitation. Here, we report the design, chemical synthesis, and biological profiling of natural product-derived <i>N</i>-substituted 2,4-dodecadienamides as a selective endocannabinoid uptake inhibitor. The highly potent (IC<sub>50</sub> = 10 nM) inhibitor <i>N</i>-(3,4-dimethoxyphenyl)ethyl amide (WOBE437) exerted pronounced cannabinoid receptor-dependent anxiolytic, antiinflammatory, and analgesic effects in mice by increasing endocannabinoid levels. A tailored WOBE437-derived diazirine-containing photoaffinity probe (RX-055) irreversibly blocked membrane transport of both endocannabinoids, providing mechanistic insights into this complex process. Moreover, RX-055 exerted site-specific anxiolytic effects on in situ photoactivation in the brain. This study describes suitable inhibitors to target endocannabinoid membrane trafficking and uncovers an alternative endocannabinoid pharmacology.
Medical subject headings
- Biological Transport
- Endocannabinoids