Target intelligence / Profile preview

Intermediate conductance calcium-activated potassium channel protein 4 (KCNN4) (KCNN4)

Target
KCNN4
Molecular classification
Ion channel, Calcium-activated potassium channel, Potassium channel
01

Overview

The erythrocyte potassium channel, primarily represented by the Gardos channel (Intermediate conductance calcium-activated potassium channel protein 4 or KCNN4), is a critical regulator of red blood cell volume and hydration [1, 2]. It is activated by increases in intracellular calcium, which triggers the efflux of potassium ions and water, leading to cell shrinkage [2, 5]. In sickle cell disease, the polymerization of hemoglobin S causes membrane damage and calcium influx, leading to chronic overactivation of this channel [2, 4]. This overactivation results in the formation of dense, dehydrated erythrocytes that are highly susceptible to sickling and hemolysis [3, 4]. Consequently, KCNN4 has been identified as a therapeutic target to prevent erythrocyte dehydration and improve the rheological properties of blood in sickle cell patients [3]. Pharmacological inhibitors like senicapoc have been developed to block this channel, successfully increasing hemoglobin levels and reducing hemolytic markers in clinical trials [3, 4]. However, these inhibitors have struggled to meet primary endpoints related to the frequency of vaso-occlusive crises, suggesting a complex role in disease pathology [3]. Beyond sickle cell disease, the channel is also implicated in hereditary xerocytosis and may play a role in the lifecycle of the malaria parasite [1, 5]. The channel is also expressed in other tissues, including T-lymphocytes and secretory epithelia, which raises considerations for potential off-target effects during systemic inhibition [1, 3].

Other names
Gardos channelKCa3.1IK1SK4hKCa4hIK1hSK4Calcium-activated potassium channel subunit 4
02

Mechanism of action

Inhibition of the channel to prevent the efflux of potassium and water, thereby maintaining erythrocyte hydration and preventing cell sickling.

03

Biological functions

Ion transportCell volume regulationErythrocyte dehydrationMembrane potential regulation
04

Disease associations

Sickle cell diseaseHereditary xerocytosisMalariaInflammation
05

Safety considerations

Potential immunosuppression due to KCa3.1 expression in T-lymphocytesOff-target effects in secretory epitheliaLack of efficacy in reducing vaso-occlusive crises in clinical trials
06

Interacting drugs

Senicapoc

3 more in the full profile.

07

Biomarkers

Mean corpuscular hemoglobin concentration (MCHC)Erythrocyte densityGardos channel activity

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