The activation of all four voltage-sensing domains in human CaV3.1 channels precedes pore opening in voltage, occurring near the resting membrane potential.
Demonstrates that the four voltage-sensing domains of human CaV3.1 channels activate before pore opening, clarifying the mechanism of low-voltage activation in cardiac pacemaker and neuronal cells.
Abstract Low-voltage-activated (LVA, T-type, or Ca V 3), calcium-selective channels open in response to modest depolarizations, just above the resting membrane potential, supporting neuronal burst-firing patterns and spontaneous firing in cardiac pacemaker cells. How LVA-channels open at low voltages is unclear: traditional gating-current experiments suggest that LVA-channel voltage-sensing domains (VSDs) paradoxically require stronger depolarization to activate than pore opening. Using voltage-clamp fluorometry, we find that the activation of all four VSDs in human Ca V 3.1-channels precedes opening in voltage, solving the longstanding conundrum. We also uncover confounding effects of La 3+ (used for gating-current measurements) on VSD function and clarify the role of distinct LVA-channel structure S6 Cyto . Ca V 3.1-VSDs operate within a narrow voltage-range, resembling the VSDs of related Na V -channels more than those of other Ca V -channels. Likely, Na V -like VSDs emerge before sodium selectivity.
Angelini et al. (Sat,) reported a other. Voltage-clamp fluorometry was evaluated on Voltage dependence of VSD activation. The activation of all four voltage-sensing domains in human CaV3.1 channels precedes pore opening in voltage, occurring near the resting membrane potential.
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