bioRxiv Science⌕ Search

Biology subjects

Frampton, D. J. A.

Publications and source records attributed to Frampton, D. J. A..

2 recordsLinked to original sources

A broad set of synthetic cannabinoid receptor agonists inhibit the cardiac voltage-gated potassium channel hERG

Synthetic cannabinoid receptor agonists (SCRAs) is a large group of structurally diverse designer drugs (analogues of controlled substances) associated with intense and sometimes fatal intoxication. Cardiac symptoms including tachycardia and arrhythmia are common consequences of SCRA consumption. However, little is known about the mechanisms through which SCRAs may perturb cardiac rhythm. Here we used electrophysiological techniques to screen 36 SCRAs on two ion channels responsible for cardiomyocyte repolarization, hERG (also called KV11.1) and KV7.1/KCNE1. We report that the majority of tested SCRAs inhibited hERG, primarily by reducing channel conductance, and some also inhibited KV7.1/KCNE1. In silico data suggests that SCRAs use a known drug binding site in the pore of the hERG channel, shared by established hERG blockers like astemizole, where a planar SCRA molecule lays perpendicular to the ion conducting pathway. Experimental and in silico data identify SCRA structural features associated with prominent inhibitory effects on hERG, with chemical moieties allowing bond formation and/or the ability to fit into the vestibule being important. Structure-activity-relationships for SCRA effects on hERG, KV7.1/KCNE1 and the cannabinoid receptor 1 (CB1) varied, demonstrating the importance of assessing SCRA effects on multiple potential targets. In conclusion, we found SCRAs to be inhibitors of cardiac voltage-gated potassium channels important for cardiomyocyte repolarization. These results offer mechanistic insight into potentially detrimental SCRA effects on the heart and highlight the urgency of more extensive investigation of SCRAs on cardiac function.

pharmacology and toxicology↗

Two-step voltage-sensor activation of the human KV7.4 channel and effect of a deafness-associated mutation

Voltage-gated, potassium-selective KV7.4 channels are expressed in the inner ear and are crucial for hair-cell function and survival. Loss-of-function variants of KCNQ4, the gene encoding KV7.4-channel subunits, cause non-syndromic progressive hearing loss (DFNA2). KV7.4 opening requires a voltage-dependent conformational change (activation) of the charged voltage-sensor domains (VSDs), and its transduction to the pore. Previously, fast charge displacement was reported during VSD activation at negative potentials, but it is unclear how this is coupled to slow channel opening occurring at more depolarized potentials. Here, we optically tracked KV7.4 VSD activation with voltage-clamp fluorometry, leveraging two different fluorophores and pulsed excitation, to thoroughly characterize VSD movements. We found that VSD activation comprises several voltage-dependent transitions, some of which had kinetics and voltage-dependence matching those of channel opening and closing. The deafness-associated mutation R216H, which substitutes a charged amino-acid in the VSD, impaired both VSD movements and channel opening, shifting them towards more depolarized potentials. This suggested that R216H impaired KV7.4 function by destabilizing VSD activation. Using molecular dynamics, we found that H216 reduced intramolecular interactions, thus decreasing the stability of an active VSD conformation. We propose that the KV7.4 VSD activates in two steps: a fast movement at negative voltages that represents a first transition to an intermediate state of activation; and this is followed by slower, depolarized component that represents subsequent full VSD activation, which drives channel opening.

biophysics↗