Effect of Bulky N-Dibenzofuranylmethyl Substitution on the 5-HT2 Receptor Affinity and Efficacy of a Psychedelic Phenethylamine.
Breno A Soares, Thirumal Yempala, Darío Martínez-afani, Williams Acevedo-Fuentes, José Brea, María Isabel Loza, Marta Cimadevila, Bruce K Cassels
ACS chemical neuroscience February 7, 2024 DOI: 10.1021/acschemneuro.3c00639 via PubMed
Summary
AI-generated from the abstractAdding a very large chemical group (dibenzo[b,d]furylmethyl, or DBFM) to the nitrogen atom of the psychedelic phenethylamine 2C-B can either decrease or increase its binding to serotonin 5-HT2 receptors, depending on which position of the DBFM group is attached. Attaching through the 4-position generally improved affinity, with one compound showing 10-fold higher affinity at 5-HT2A receptors and 40-fold higher at 5-HT2C receptors, though selectivity among receptor subtypes was low. All compounds were weak partial agonists at 5-HT2A receptors but full or nearly full agonists at 5-HT2C receptors. Molecular docking simulations indicated the dibenzofuryl part inserts deeper into the 5-HT2A receptor's binding site than into 5-HT2C's, interacting with a key activation switch.
Study at a glance
| Characteristics | Experimental study Peer reviewed |
|---|---|
| Intervention | dibenzo[b |
| Keywords | 5-ht2 receptor agonism 5-ht2 receptor binding Bulky n-substituents Docking poses Phenethylamine derivatives |
| Citations | 4 |
| Key finding | Attaching a bulky DBFM group to the nitrogen of 2C-B through its 4-position can increase affinity at 5-HT2 receptors, but resulting compounds are weak partial agonists at 5-HT2A and full agonists at 5-HT2C. |
Abstract
The introduction of arylmethyl substituents on the amine nitrogen atom of phenethylamines and tryptamines often results in profound increases in their affinity and functional activity at 5-HT2 serotonin receptors. To probe the sensitivity of this effect to substantially larger N-substituents, ten derivatives of the well-characterized psychedelic phenethylamine 2C-B were prepared by appending different dibenzo[b,d]furylmethyl (DBFM) moieties to the basic nitrogen. The DBFM group attached to the amino group through its 1-, -2-, or 3-position decreased affinity and agonist activity at the 5-HT2A/2C receptors. Substitution through the 4-position usually favored affinity for all three 5-HT2 receptor subtypes with compound 5 exhibiting 10- and 40-fold higher affinities at the 5-HT2A and 5-HT2C receptors, respectively, but less than fourfold selectivity among the three receptor subtypes. Nevertheless, all were relatively weak partial 5-HT2AR agonists, mostly in the low micromolar range, but full or nearly full agonists at the 5-HT2C subtype as determined in a calcium mobilization assay. Molecular docking simulations suggested that the dibenzofuryl portion dives more deeply into the orthosteric binding site of the 5-HT2A than the 5-HT2C receptor, interacting with the Trp3366.48 toggle switch associated with its activation, while the phenylamine moiety lies close to the extracellular side of the receptor. In conclusion, a very bulky N-substituent on a phenethylamine 5-HT2 receptor agonist is tolerated and may increase affinity if its orientation is appropriate. However, the Gq protein-mediated potencies are generally low, with low efficacy (relative to 5-HT) at the 5-HT2A receptor, somewhat higher efficacy at the 5-HT2B subtype, and full or nearly full efficacy at the 5-HT2C subtype.