Key result
Acetazolamide shows no direct effect on P/Q-type calcium channels altered by CACNA1A H1736L mutation.
Why the study?
The mechanism by which acetazolamide ameliorates symptoms of episodic ataxia type 2 caused by CACNA1A mutations is unknown.
The H1736L mutation in the CACNA1A gene alters P/Q-type calcium channel properties consistent with both loss and gain of function, but acetazolamide does not directly affect these channel properties.
Acetazolamide lacks direct effects on mutant channels; leaves open therapeutic mechanisms in CACNA1A disorders for further study.
Episodic ataxia type 2 (EA2) is an autosomal dominant condition characterized by paroxysmal attacks of ataxia, vertigo, and nausea, typically lasting minutes to days in duration. These symptoms can be prevented or significantly attenuated by the oral administration of acetazolamide; however, the mechanism by which acetazolamide ameliorates EA2 symptoms is unknown. EA2 typically results from nonsense mutations in the CACNA1A gene that encodes the alpha1A (Cav2.1) subunit of the P/Q-type calcium (Ca2+) channel. We have identified a novel H1736L missense mutation in the CACNA1A gene associated with the EA2 phenotype. This mutation is localized near the pore-forming region of the P/Q-type Ca2+ channel. Functional analysis of P/Q-type channels containing the mutation show that the H1736L alteration affects several channel properties, including reduced current density, increased rate of inactivation, and a shift in the voltage dependence of activation to more positive values. Although these findings are consistent with an overall loss of P/Q-type channel function, the mutation also caused some biophysical changes consistent with a gain of function. We also tested the direct effect of acetazolamide on both wild-type and H1736L mutated P/Q-type channels and did not observe any direct action on channel properties of this pharmacological agent used to treat EA2 patients.
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Spacey et al. (2004) studied Episodic ataxia type 2 (EA2). H1736L missense mutation in the CACNA1A gene vs. Wild-type P/Q-type channels was evaluated on Channel properties (current density, rate of inactivation, voltage dependence of activation). The novel H1736L missense mutation in the CACNA1A gene altered P/Q-type calcium channel properties, causing both loss and gain of function, while acetazolamide had no direct effect on the channels.
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