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Evaluation of four <i>KCNMA1</i> channelopathy variants on BK channel current under Ca<sub>V</sub>1.2 activation

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Taylor & Francis Group2024-12-09 更新2026-04-16 收录
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Variants in <i>KCNMA1</i>, encoding the voltage- and calcium-activated K<sup>+</sup> (BK) channel, are associated with human neurological disease. The effects of gain-of-function (GOF) and loss-of-function (LOF) variants have been predominantly studied on BK channel currents evoked under steady-state voltage and Ca<sup>2+</sup> conditions. However, in their physiological context, BK channels exist in partnership with voltage-gated Ca<sup>2+</sup> channels and respond to dynamic changes in intracellular Ca<sup>2+</sup> (Ca<sup>2+</sup><sub>i</sub>). In this study, an L-type voltage-gated Ca<sup>2+</sup> channel present in the brain, Ca<sub>V</sub>1.2, was co-expressed with wild type and mutant BK channels containing GOF (D434G, N999S) and LOF (H444Q, D965V) patient-associated variants in HEK-293T cells. Whole-cell BK currents were recorded under Ca<sub>V</sub>1.2 activation using buffering conditions that restrict Ca<sup>2+</sup><sub>i</sub> to nano- or micro-domains. Both conditions permitted wild type BK current activation in response to Ca<sub>V</sub>1.2 Ca<sup>2+</sup> influx, but differences in behavior between wild type and mutant BK channels were reduced compared to prior studies in clamped Ca<sup>2+</sup><sub>i</sub>. Only the N999S mutation produced an increase in BK current in both micro- and nano-domains using square voltage commands and was also detectable in BK current evoked by a neuronal action potential within a microdomain. These data corroborate the GOF effect of N999S on BK channel activity under dynamic voltage and Ca<sup>2+</sup> stimuli, consistent with its pathogenicity in neurological disease. However, the patient-associated mutations D434G, H444Q, and D965V did not exhibit significant effects on BK current under Ca<sub>V</sub>1.2-mediated Ca<sup>2+</sup> influx, in contrast with prior steady-state protocols. These results demonstrate a differential potential for <i>KCNMA1</i> variant pathogenicity compared under diverse voltage and Ca<sup>2+</sup> conditions.

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2024-09-01
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