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January 11, 2006Journal of Neuroscience107 citationsOpen Access

The Kv2.1 C Terminus Can Autonomously Transfer Kv2.1-Like Phosphorylation-Dependent Localization, Voltage-Dependent Gating, and Muscarinic Modulation to Diverse Kv Channels

DMDurga P. MohapatraNational Institutes of HealthJTJames S. TrimmerElectrophysiology

Structured PICO

P
Population
Cultured embryonic rat hippocampal neurons (from embryonic day 18/19 embryos) and recombinant Kv2.1 expressed in human embryonic kidney 293 (HEK293) and COS-1 cells.
I
Intervention
Cholinergic stimulation (100 µM carbachol for 15 min) or Ca2+ ionophore treatment (1 µM ionomycin for 10 min).
C
Comparator
Control conditions (no treatment) or pretreatment with calcineurin inhibitor FK520 (5 µM for 10 min).
O
Outcome
Kv2.1 phosphorylation state, clustering localization, and voltage-dependent gating properties.surrogate

The Kv2.1 C-terminal domain acts as an autonomous module that transfers phosphorylation-dependent clustering and cholinergic modulation to diverse potassium channels, providing a mechanism for dynamic regulation of neuronal excitability.

Abstract

Modulation of K+ channels is widely used to dynamically regulate neuronal membrane excitability. The voltage-gated K+ channel Kv2.1 is an abundant delayed rectifier K+ (IK) channel expressed at high levels in many types of mammalian central neurons where it regulates diverse aspects of membrane excitability. Neuronal Kv2.1 is constitutively phosphorylated, localized in high-density somatodendritic clusters, and has a relatively depolarized voltage dependence of activation. Here, we show that the clustering and voltage-dependent gating of endogenous Kv2.1 in cultured rat hippocampal neurons are modulated by cholinergic stimulation, a common form of neuromodulation. The properties of neuronal Kv2.1 are recapitulated in recombinant Kv2.1 expressed in human embryonic kidney 293 (HEK293) cells, but not COS-1 cells, because of cell background-specific differences in Kv2.1 phosphorylation. As in neurons, Kv2.1 in HEK293 cells is dynamically regulated by cholinergic stimulation, which leads to Ca2+/calcineurin-dependent dephosphorylation of Kv2.1, dispersion of channel clusters, and hyperpolarizing shifts in the voltage-dependent gating properties of the channel. Immunocytochemical, biochemical, and biophysical analyses of chimeric Kv channels show that the Kv2.1 cytoplasmic C-terminal domain can act as an autonomous domain sufficient to transfer Kv2.1-like clustering, voltage-dependent activation, and cholinergic modulation to diverse Kv channels. These findings provide novel mechanistic insights into cholinergic modulation of ion channels and regulation of the localization and voltage-dependent gating properties of the abundant neuronal Kv2.1 channel by cholinergic and other neuromodulatory stimuli.

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Cite This Study

Mohapatra et al. (2006) studied this question.

synapsesocial.com/papers/6a19dafa4b45427442ead10ahttps://doi.org/10.1523/jneurosci.4620-05.2006
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