Selective Cell Death of Adrenocortical Cells by Pharmacological Activation of Mutant KCNJ5
Sanas Mir-Bashiri, Stefan Rakete, Jia Wei, Mirko Peitzsch, Stefanie Hahner, Martin Reincke, Tracy Ann WilliamsBACKGROUND:
Primary aldosteronism is frequently caused by mutations in the
METHODS:
Six small molecules identified in our prior work as potential KCNJ5 agonists were evaluated. Their effects on cell viability, sodium influx, membrane potential, and steroidogenesis were assessed in 2-dimensional and 3-dimensional human adrenocortical cells, clone 15.
RESULTS:
Candidate agonists were tested for their ability to enhance adrenal cell death induced by overexpression of mutant KCNJ5. Compound 105 (C105; 2′-amino-6-chloro-1′-[2,4-difluorophenyl]-7-methyl-2,5′-dioxo-1,2,5′,6′,7′,8′-hexahydro-1′H-spiro[indole-3,4′-quinoline]-3′-carbonitrile) increased mutant KCNJ5-induced cell death by 40% without affecting cells expressing wild-type KCNJ5. The toxic effect of C105 was abolished under low-sodium conditions. Inductively coupled plasma tandem mass spectrometry demonstrated a 25% increase in intracellular sodium after C105 treatment without significantly affecting potassium concentrations. Molecular docking indicated binding of C105 to the G-protein-binding site of KCNJ5, a key region involved in channel activation. These findings suggest that C105 promotes adrenal cell death through activation of mutant KCNJ5 and increased sodium conductance.
CONCLUSIONS:
C105 acts as a first-in-class mutant KCNJ5 agonist candidate and may enable pharmacological ablation of mutant cells in a subset of aldosterone-producing adenomas and familial hyperaldosteronism type III. These findings provide proof of concept for mutation-selective targeting of KCNJ5-driven primary aldosteronism.