Key result
Site-specific fluorescence measurements of sodium channel mutants demonstrated that the movement of all four voltage sensors are coupled, with a strong energetic linkage between S4-DI and S4-DIV.
Provides direct evidence of cooperative interactions between voltage sensors in sodium channels, offering a mechanistic basis for fast activation kinetics and coupled activation/inactivation.
Should not alter clinical practice; extends NaV gating models and leaves open therapeutic targeting in arrhythmias.
The voltage-sensing S4 segments in the sodium channel undergo conformational rearrangements in response to changes in the electric field. However, it remains unclear whether these structures move independently or in a coordinated manner. Previously, site-directed fluorescence measurements were shown to track S4 transitions in each of the four domains. Here, using a similar technique, we provide direct evidence of coupling interactions between voltage sensors in the sodium channel. Pairwise interactions between S4s were evaluated by comparing site-specific conformational changes in the presence and absence of a gating perturbation in a distal domain. Reciprocity of effect, a fundamental property of thermodynamically coupled systems, was measured by generating converse mutants. The magnitude of a local gating perturbation induced by a remote S4 mutation depends on the coupling strength and the relative equilibrium positions of the two voltage sensors. In general, our data indicates that the movement of all four voltage sensors in the sodium channel are coupled to a varying extent. Moreover, a gating perturbation in S4-DI has the largest effect on the activation of S4-DIV and vice versa, demonstrating an energetic linkage between S4-DI and S4-DIV. This result suggests a physical mechanism by which the activation and inactivation process may be coupled in voltage-gated sodium channels. In addition, we propose that cooperative interactions between voltage sensors may be the mechanistic basis for the fast activation kinetics of the sodium channel.
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Chanda et al. (2004) studied this question. Site-directed mutagenesis and fluorescence measurements vs. Absence of a gating perturbation was evaluated on Coupling interactions between voltage sensors (S4 segments). Site-specific fluorescence measurements of sodium channel mutants demonstrated that the movement of all four voltage sensors are coupled, with a strong energetic linkage between S4-DI and S4-DIV.
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