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February 28, 2026Cells0 citationsOpen Access

The KCa3.1 K+ Channel and Cardiovascular Disease: An Upstream Target Linking Inflammation, Fibrosis and Electrical Instability

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IAIbrahim AntounGLGeorgia R. LaytonRSRiyaz Somani

Key Result

Pharmacological blockade of KCa3.1 reduces atherosclerotic burden, atrial fibrosis, and atrial fibrillation inducibility, linking it to cardiovascular disease pathways.

Key Points

  • To explore the role of KCa3.1 in cardiovascular diseases and its implications for treatment.
  • Analysis of KCa3.1 expression in various cardiovascular cells
  • Use of animal models for genetic deletion and pharmacological blockade of KCa3.1
  • Examination of KCa3.1 in atrial tissue and valvular interstitial cells
  • KCa3.1 is upregulated in endothelial and immune cells in ischaemic heart disease.
  • Inhibition of KCa3.1 reduces atherosclerotic plaque and atrial fibrillation inducibility.
  • KCa3.1 contributes to fibrosis and electrical instability in atrial fibrillation.

Structured PICO

P
Population
Preclinical models of cardiovascular disease, including ischaemic heart disease, atrial fibrillation, and valvular heart disease
I
Intervention
Genetic deletion or pharmacological blockade of KCa3.1

KCa3.1 emerges as a promising therapeutic target for disease-modifying strategies to suppress maladaptive cardiovascular remodeling, inflammation, and electrical instability.

Abstract

KCa3.1 encodes the intermediate-conductance calcium-activated potassium channel KCa3.1, a regulator of membrane potential and calcium-dependent signalling in cardiovascular and immune cells. Increasing evidence indicates that KCa3.1 is a shared driver of vascular remodelling, inflammation, fibrosis, and electrical instability across multiple cardiovascular diseases. In ischaemic heart disease (IHD), KCa3.1 is upregulated in endothelial cells, vascular smooth muscle cells, macrophages, and T lymphocytes, where it promotes smooth muscle proliferation, neointimal formation, and chronic vascular inflammation. Genetic deletion or pharmacological blockade of KCa3.1 reduces atherosclerotic plaque burden and restenosis in animal models. In atrial fibrillation (AF), KCa3.1 contributes to electrical remodelling by shortening atrial action potential duration and to structural remodelling by driving fibroblast activation and collagen deposition. KCa3.1 also regulates macrophage polarisation and pro-inflammatory cytokine release in atrial tissue, linking immune activation to arrhythmogenic substrate formation. Inhibition of KCa3.1 prolongs atrial refractoriness, attenuates atrial fibrosis, and reduces AF inducibility in multiple preclinical models. Emerging data in valvular heart disease suggest that KCa3.1 is upregulated in valvular interstitial cells and regions of active calcification, where it supports myofibroblast differentiation, osteogenic signalling, and inflammatory crosstalk, implicating the channel in fibrocalcific valve degeneration. Collectively, these findings position KCa3.1 as a central molecular integrator of electrical, fibrotic, and inflammatory pathways in cardiovascular disease. The availability of selective KCa3.1 inhibitors with established human safety profiles supports the feasibility of therapeutic translation. Targeting KCa3.1 may enable disease-modifying strategies that extend beyond symptom control to suppress maladaptive cardiovascular remodelling.

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Cite This Study

Antoun et al. (2026) studied this question. Pharmacological blockade of KCa3.1 reduces atherosclerotic burden, atrial fibrosis, and atrial fibrillation inducibility, linking it to cardiovascular disease pathways.

synapsesocial.com/papers/69a288170a974eb0d3c04177https://doi.org/10.3390/cells15050416
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