Why the study?
Despite sharing architecture with archetypal voltage-gated ion channels, HCN channels open upon hyperpolarization rather than depolarization, implying inversely coupled domains whose underlying gating mechanism was not fully understood.
Identifies the structural determinants of gating polarity in HCN channels, showing the voltage sensor can drive opening in either direction but is biased by specific domain interactions.
No immediate clinical implications for HCN modulation; extends VGIC gating models for future study.
Despite sharing a common architecture with archetypal voltage-gated ion channels (VGICs), hyperpolarization- and cAMP-activated ion (HCN) channels open upon hyperpolarization rather than depolarization. The basic motions of the voltage sensor and pore gates are conserved, implying that these domains are inversely coupled in HCN channels. Using structure-guided protein engineering, we systematically assembled an array of mosaic channels that display the full complement of voltage-activation phenotypes observed in the VGIC superfamily. Our studies reveal that the voltage sensor of the HCN channel has an intrinsic ability to drive pore opening in either direction and that the extra length of the HCN S4 is not the primary determinant for hyperpolarization activation. Tight interactions at the HCN voltage sensor-pore interface drive the channel into an hERG-like inactivated state, thereby obscuring its opening upon depolarization. This structural element in synergy with the HCN cyclic nucleotide-binding domain and specific interactions near the pore gate biases the channel toward hyperpolarization-dependent opening. Our findings reveal an unexpected common principle underpinning voltage gating in the VGIC superfamily and identify the essential determinants of gating polarity.
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Cowgill et al. (2018) studied this question.
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