Key result
Coexpression of Kv4.2 and DPPX-S caused a -26 mV parallel shift in the gating charge-voltage relationship, accelerating outward gating charge movements and return upon repolarization.
Effect estimate: -26 mV parallel shift
DPPX-S remodels Kv4.2 channel gating charge dynamics by destabilizing resting and intermediate states, explaining the fast operation of neuronal Kv4 channels.
DPLP transmembrane domain critically shapes Kv4 gating; leaves open whether targeting this interaction alters cardiac excitability.
Dipeptidyl aminopeptidase-like proteins (DPLPs) interact with Kv4 channels and thereby induce a profound remodeling of activation and inactivation gating. DPLPs are constitutive components of the neuronal Kv4 channel complex, and recent observations have suggested the critical functional role of the single transmembrane segment of these proteins (Zagha, E., A. Ozaita, S.Y. Chang, M.S. Nadal, U. Lin, M.J. Saganich, T. McCormack, K.O. Akinsanya, S.Y. Qi, and B. Rudy. 2005. J. Biol. Chem. 280:18853-18861). However, the underlying mechanism of action is unknown. We hypothesized that a unique interaction between the Kv4.2 channel and a DPLP found in brain (DPPX-S) may remodel the channel's voltage-sensing domain. To test this hypothesis, we implemented a robust experimental system to measure Kv4.2 gating currents and study gating charge dynamics in the absence and presence of DPPX-S. The results demonstrated that coexpression of Kv4.2 and DPPX-S causes a -26 mV parallel shift in the gating charge-voltage (Q-V) relationship. This shift is associated with faster outward movements of the gating charge over a broad range of relevant membrane potentials and accelerated gating charge return upon repolarization. In sharp contrast, DPPX-S had no effect on gating charge movements of the Shaker B Kv channel. We propose that DPPX-S destabilizes resting and intermediate states in the voltage-dependent activation pathway, which promotes the outward gating charge movement. The remodeling of gating charge dynamics may involve specific protein-protein interactions of the DPPX-S's transmembrane segment with the voltage-sensing and pore domains of the Kv4.2 channel. This mechanism may determine the characteristic fast operation of neuronal Kv4 channels in the subthreshold range of membrane potentials.
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Dougherty et al. (2006) studied this question. Coexpression of Kv4.2 and DPPX-S vs. Absence of DPPX-S (Kv4.2 alone) was evaluated on Gating charge-voltage (Q-V) relationship (-26 mV parallel shift). Coexpression of Kv4.2 and DPPX-S caused a -26 mV parallel shift in the gating charge-voltage relationship, accelerating outward gating charge movements and return upon repolarization.
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