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Updated: Mar 29, 2026

Isolation and Kv Channel Recordings in Murine Atrial and Ventricular Cardiomyocytes
Published on: March 12, 2013
Molecular Determinants of Kv1.3 Potassium Channels-induced Proliferation
Laura Jiménez-Pérez1, Pilar Cidad1, Inés Álvarez-Miguel1
1From the Departamento de Bioquímica y Biología Molecular y Fisiología e Instituto de Biología y Genética Molecular (IBGM), Universidad de Valladolid y Consejo Superior de Investigaciones Científicas (CSIC), 47003 Valladolid, Spain.
Abstract:
Changes in voltage-dependent potassium channels (Kv channels) associate to proliferation in many cell types, including transfected HEK293 cells. In this system Kv1.5 overexpression decreases proliferation, whereas Kv1.3 expression increases it independently of K(+) fluxes. To identify Kv1.3 domains involved in a proliferation-associated signaling mechanism(s), we constructed chimeric Kv1.3-Kv1.5 channels and point-mutant Kv1.3 channels, which were expressed as GFP- or cherry-fusion proteins. We studied their trafficking and functional expression, combining immunocytochemical and electrophysiological methods, and their impact on cell proliferation. We found that the C terminus is necessary for Kv1.3-induced proliferation. We distinguished two residues (Tyr-447 and Ser-459) whose mutation to alanine abolished proliferation. The insertion into Kv1.5 of a sequence comprising these two residues increased proliferation rate. Moreover, Kv1.3 voltage-dependent transitions from closed to open conformation induced MEK-ERK1/2-dependent Tyr-447 phosphorylation. We conclude that the mechanisms for Kv1.3-induced proliferation involve the accessibility of key docking sites at the C terminus. For one of these sites (Tyr-447) we demonstrated the contribution of MEK/ERK-dependent phosphorylation, which is regulated by voltage-induced conformational changes.
Insights
Voltage-dependent potassium channels (Kv channels) influence cell proliferation. Kv1.3 channels increase proliferation via C-terminal signaling, involving specific residues and MEK-ERK-dependent phosphorylation.
Area of Science:
- Molecular Biology
- Cell Biology
- Ion Channel Physiology
Background:
- Voltage-dependent potassium channels (Kv channels) play a role in cell proliferation.
- Kv1.5 overexpression inhibits proliferation, while Kv1.3 expression enhances it in HEK293 cells, independent of ion flux.
Purpose of the Study:
- To identify specific domains and residues within Kv1.3 channels responsible for mediating proliferation.
- To elucidate the signaling mechanisms underlying Kv1.3-induced cell proliferation.
Main Methods:
- Construction and expression of chimeric Kv1.3-Kv1.5 and point-mutant Kv1.3 channels fused to fluorescent proteins.
- Assessment of channel trafficking, functional expression, and impact on cell proliferation using immunocytochemistry and electrophysiology.
- Analysis of MEK-ERK1/2 pathway involvement and phosphorylation events.
Main Results:
- The C-terminal domain of Kv1.3 is essential for proliferation.
- Specific residues Tyr-447 and Ser-459 in the C terminus are critical; mutations abolish proliferation.
- Incorporating these residues into Kv1.5 increased proliferation.
- Kv1.3 channel gating induced MEK-ERK1/2-dependent phosphorylation of Tyr-447.
Conclusions:
- Kv1.3-mediated proliferation relies on accessible C-terminal docking sites.
- MEK/ERK-dependent phosphorylation at Tyr-447, regulated by channel conformation, contributes to Kv1.3's proliferative effects.
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