DOI: 10.3390/molecules31152732 ISSN: 1420-3049

The Influence of Hydroxyl Group on Nerve Excitability Blockade by Limonene and Its Hydroxylated Metabolites, Perillyl Alcohol and Carveol

Lívia Carolina Amâncio, Edvanildo de Sousa-Silva, André Nogueira Cardeal-dos-Santos, Isabella Soares Marques Rabelo, Gustavo Paes de Andrade Saraiva, Ana Carolina Cardoso-Teixeira, Maria Diana Moreira-Gomes, José Ednésio da Cruz Freire, Andrelina Noronha Coelho-de-Souza, Francisco Walber Ferreira-da-Silva, Kerly Shamyra da Silva-Alves, José Henrique Leal-Cardoso

A previous investigation on limonene (LM), perillyl alcohol (POH), and carveol (CV), focused on the structure–activity relationship and hydroxyl group, documented that the presence of the hydroxyl group influences the pharmacodynamic potency of these agents, inhibiting smooth muscle contraction with the order of potency: POH > CV > LM. That investigation also suggested a mechanism of action, which importantly included activity on the voltage-dependent calcium channel. Here, we investigated whether this structure–activity relationship also applies to nerve excitability (an activity greatly dependent on sodium channels) using compound action potential (CAP) recordings from mouse sciatic nerves and in silico simulations. POH, CV, and LM inhibited both the positive amplitudes and conduction velocities of the two CAP components in a concentration-dependent manner, with IC50 values of 0.8, 1.0, and 4.3 mM (1st component) and 0.6, 0.6, and 3.0 mM (2nd component) for amplitude, and 2.4, 2.4, and 7.1 mM (1st component) and 1.0, 2.6, and 4.3 mM (2nd component) for conduction velocity. The order of pharmacodynamic potency, thus, was POH = CV > LM. In silico simulation demonstrated that POH and CV penetrate the Nav 1.6 and accommodate in the channel at the interface between the selectivity filter and the central cavity, a position very favorable to block the channel pore. In contrast, LM exhibited a markedly different docking profile, suggesting that LM binding is less likely to directly obstruct sodium permeation. In conclusion, the three substances investigated inhibited nerve excitability, but those with a hydroxyl group demonstrated greater pharmacodynamic potency.

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