Kv1.3 channels modulate human vascular smooth muscle cells proliferation independently of mTOR signaling pathway

Pilar Cidad1, Eduardo Miguel-Velado, Christian Ruiz-McDavitt

  • 1Departamento de Bioquímica y Biología Molecular y Fisiología e Instituto de Biología y Genética Molecular (IBGM), Universidad de Valladolid y CSIC, Edificio IBGM, c/ Sanz y Forés s/n, 47003, Valladolid, Spain.

Insights

Phenotypic modulation in vascular smooth muscle cells involves a switch from Kv1.5 to Kv1.3 channels. Blocking Kv1.3 channels inhibits proliferation, offering new therapeutic targets for vascular diseases.

Area of Science:

  • Cardiovascular Biology
  • Ion Channel Physiology
  • Vascular Remodeling

Background:

  • Phenotypic modulation (PM) of vascular smooth muscle cells (VSMCs) drives intimal hyperplasia in occlusive vascular diseases.
  • Kv1.5 and Kv1.3 channel function changes contribute to VSMC migration and proliferation.

Purpose of the Study:

  • To investigate the role of the Kv1.5 to Kv1.3 channel switch in the PM of human VSMCs.
  • To explore the signaling pathways affected by Kv1.3 channel blockade in human VSMCs.

Main Methods:

  • Studied Kv1.3 and Kv1.5 channel expression and function in human VSMCs from different vascular beds.
  • Assessed the anti-proliferative effects of Kv1.3 blockers on PDGF-induced VSMC proliferation.
  • Investigated signaling pathways (MEK/ERK, PLCγ, PI3K/mTOR) involved in Kv1.3 channel blockade effects.

Main Results:

  • Observed a Kv1.5 to Kv1.3 channel switch during PM in human VSMCs.
  • Demonstrated an anti-proliferative effect of Kv1.3 blockers on PDGF-induced VSMC proliferation across vascular beds.
  • Found that Kv1.3 blocker effects were mediated by MEK/ERK and PLCγ pathways, not PI3K/mTOR.
  • Indicated Kv1.3 channels are involved in late signaling events of mitogenic responses.

Conclusions:

  • Established the involvement of Kv1.3 channels in the phenotypic modulation of human VSMCs.
  • Suggests Kv1.3 channel blockers as potential therapeutic agents for vascular diseases, distinct from current mTOR-based therapies.

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