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Shaukat, Z.

Publications and source records attributed to Shaukat, Z..

2 recordsLinked to original sources

Identification of new KCNT1-epilepsy drugs by in silico, cell and Drosophila modelling.

ObjectiveHyperactive KCNT1 potassium channels, caused by gain-of-function mutations, are associated with a range of epilepsy disorders. Patients typically experience drug-resistant seizures and in cases with infantile onset, developmental regression can follow. KCNT1-related disorders include epilepsy of infancy with migrating focal seizures and sleep related hypermotor epilepsy. There are currently no effective treatments for KCNT1-epilepsies, but suppressing over-active channels poses a potential strategy. MethodsUsing KCNT1 channel structural data, we in silico screened a library of known drugs for those predicted to block the channel pore to reduce the current amplitude and inhibit channel activity. ResultsEight known drugs were investigated in vitro for their effects on patient-specific mutant KCNT1 channels, with four drugs showing significant reduction of K+ current amplitudes. The action of the four drugs was then analyzed in vivo and two were found to reduce the seizure phenotype in humanized Drosophila KCNT1-epilepsy models. InterpretationThis study identified two known drugs, antrafenine and nelfinavir mesylate, that reduce KCNT1 channel activity and reduce seizure activity in whole animals, suggesting their potential use as new treatments for KCNT1-epilepsy. The sequential in silico, in vitro and in vivo mechanism-based drug selection strategy used here may have broader application for other human disorders where a disease mechanism has been identified.

pharmacology and toxicology↗

Modelling human KCNT1-epilepsy in Drosophila: a seizure phenotype and drug responses

Mutations in the KCNT1 potassium channel cause severe forms of epilepsy which are resistant to current treatments. In vitro studies have shown that KCNT1-epilepsy mutations are gain of function, significantly increasing K+ current amplitudes. To investigate if Drosophila can be used to model human KCNT1 epilepsy, we generated Drosophila melanogaster lines carrying human KCNT1 with the patient mutation G288S, R398Q or R928C. Expression of each mutant channel in GABAergic neurons gave a seizure phenotype which was sensitive to drugs currently used to treat patients with KCNT1-epilepsy. Cannabidiol showed the greatest reduction of the seizure phenotype while some drugs increased the seizure phenotype. Our study shows that Drosophila can be used to model human KCNT1-epilepsy and potentially used as a tool to assess new treatments for KCNT1 epilepsy.

neuroscience↗