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4. Sodium channel expression and transcript variation in the developing brain of human, Rhesus monkey, and mouse

5. Loss-of-function variants in the KCNQ5 gene are implicated in genetic generalized epilepsies

6. Antisense oligonucleotide therapy for KCNT1 encephalopathy

9. Characterization of the GABRB2-Associated Neurodevelopmental Disorders

10. Kv3.1 channelopathy: a novel loss-of-function variant and the mechanistic basis of its clinical phenotypes

11. Genetic and Pharmacological Studies Reveal Acid Sensing Ion Channel 1a as a Novel Therapeutic Target Against Cardiac Ischaemia-Reperfusion Injury

12. Therapeutic Inhibition of Acid-Sensing Ion Channel 1a Recovers Heart Function After Ischemia-Reperfusion Injury.

15. In Vitro Differentiated Human Stem Cell-Derived Neurons Reproduce Synaptic Synchronicity Arising during Neurodevelopment

16. Genetic and Pharmacological Studies Reveal Acid Sensing Ion Channel 1a as a Novel Therapeutic Target Against Cardiac Ischaemia-Reperfusion Injury

17. SCN1A gain of function in early infantile encephalopathy

18. Encephalopathies with KCNC1 variants: genotype-phenotype-functional correlations

19. Using a Multiplex Nucleic Acid in situ Hybridization Technique to Determine HCN4 mRNA Expression in the Adult Rodent Brain

20. Gain-of-function HCN2 variants in genetic epilepsy

21. Development of a rapid functional assay that predicts GLUT1 disease severity

22. Rare GABRA3 variants are associated with epileptic seizures, encephalopathy and dysmorphic features

23. Myoclonus Epilepsy and Ataxia due to KCNC1 Mutation: Analysis of 20 Cases and K plus Channel Properties

24. Functional variants in HCN4 and CACNA1H may contribute to genetic generalized epilepsy.

25. Models for discovery of targeted therapy in genetic epileptic encephalopathies

26. Genetics and differenzial developmental expression of the Na+ channel gene SCN2A reveal molecular correlates for early-onset (neonatal-infantile) seizures and late-onset episodic ataxia, myoclonus and pain

33. Mutations in the sodium channel gene SCN2A cause neonatal epilepsy with late-onset episodic ataxia

34. Dominant KCNA2 mutation causes episodic ataxia and pharmacoresponsive epilepsy

35. Employing state-of-the-art technology to explore mechanisms of epilepsy and novel therapeutic options

36. DE NOVO LOSS- OR GAIN-OF-FUNCTION MUTATIONS IN KCNA2 CAUSE EPILEPTIC ENCEPHALOPATHY

37. Mutations in the sodium channel gene SCN2A cause neonatal epilepsy with late-onset episodic ataxia

38. V28. KCNA2 mutations cause epileptic encephalopathy by gain- or loss-of channel function

40. Paroxysmal exercise-induced dyskinesia and epilepsy is due to mutations in SLC2A1, encoding the glucose transporter GLUT1

42. Paroxysmal choreoathetosis/spasticity (DYT9) is caused by a GLUT1 defect

43. Genetics and differenzial developmental expression of the Na+ channel gene SCN2A reveal molecular correlates for early-onset (neonatal-infantile) seizures and late-onset episodic ataxia, myoclonus and pain

46. Paroxysmal exercise-induced dyskinesia and epilepsy is due to mutations in SLC2A1, encoding the glucose transporter GLUT1

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