Loss-of-function BK channel mutation causes impaired mitochondria and progressive cerebellar ataxia.
case_report · Level V
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- Record sourced from PubMed, PMID 32132200.
- Also identified by DOI 10.1073/pnas.1920008117 and PMC identifier 7084159.
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Abstract
Despite a growing number of ion channel genes implicated in hereditary ataxia, it remains unclear how ion channel mutations lead to loss-of-function or death of cerebellar neurons. Mutations in the gene <i>KCNMA1</i>, encoding the α-subunit of the BK channel have emerged as responsible for a variety of neurological phenotypes. We describe a mutation (BK<sub>G354S</sub>) in <i>KCNMA1</i>, in a child with congenital and progressive cerebellar ataxia with cognitive impairment. The mutation in the BK channel selectivity filter dramatically reduced single-channel conductance and ion selectivity. The BK<sub>G354S</sub> channel trafficked normally to plasma, nuclear, and mitochondrial membranes, but caused reduced neurite outgrowth, cell viability, and mitochondrial content. Small interfering RNA (siRNA) knockdown of endogenous BK channels had similar effects. The BK activator, NS1619, rescued BK<sub>G354S</sub> cells but not siRNA-treated cells, by selectively blocking the mutant channels. When expressed in cerebellum via adenoassociated virus (AAV) viral transfection in mice, the mutant BK<sub>G354S</sub> channel, but not the BK<sub>WT</sub> channel, caused progressive impairment of several gait parameters consistent with cerebellar dysfunction from 40- to 80-d-old mice. Finally, treatment of the patient with chlorzoxazone, a BK/SK channel activator, partially improved motor function, but ataxia continued to progress. These studies indicate that a loss-of-function BK channel mutation causes ataxia and acts by reducing mitochondrial and subsequently cellular viability.
Medical subject headings
- Cerebellum
- Chlorzoxazone
- Large-Conductance Calcium-Activated Potassium Channel alpha Subunits
- Mitochondria
- Spinocerebellar Degenerations