A Review of the CACNA Gene Family: Its Role in Neurological Disorders

Author:

Szymanowicz Oliwia1ORCID,Drużdż Artur2,Słowikowski Bartosz3,Pawlak Sandra1,Potocka Ewelina1,Goutor Ulyana1,Konieczny Mateusz1,Ciastoń Małgorzata1,Lewandowska Aleksandra1,Jagodziński Paweł P.3ORCID,Kozubski Wojciech4,Dorszewska Jolanta1ORCID

Affiliation:

1. Laboratory of Neurobiology, Department of Neurology, Poznan University of Medical Sciences, 61-701 Poznan, Poland

2. Department of Neurology, Municipal Hospital in Poznan, 61-285 Poznan, Poland

3. Department of Biochemistry and Molecular Biology, Poznan University of Medical Sciences, 61-701 Poznan, Poland

4. Department of Neurology, Poznan University of Medical Sciences, 61-701 Poznan, Poland

Abstract

Calcium channels are specialized ion channels exhibiting selective permeability to calcium ions. Calcium channels, comprising voltage-dependent and ligand-gated types, are pivotal in neuronal function, with their dysregulation is implicated in various neurological disorders. This review delves into the significance of the CACNA genes, including CACNA1A, CACNA1B, CACNA1C, CACNA1D, CACNA1E, CACNA1G, and CACNA1H, in the pathogenesis of conditions such as migraine, epilepsy, cerebellar ataxia, dystonia, and cerebellar atrophy. Specifically, variants in CACNA1A have been linked to familial hemiplegic migraine and epileptic seizures, underscoring its importance in neurological disease etiology. Furthermore, different genetic variants of CACNA1B have been associated with migraine susceptibility, further highlighting the role of CACNA genes in migraine pathology. The complex relationship between CACNA gene variants and neurological phenotypes, including focal seizures and ataxia, presents a variety of clinical manifestations of impaired calcium channel function. The aim of this article was to explore the role of CACNA genes in various neurological disorders, elucidating their significance in conditions such as migraine, epilepsy, and cerebellar ataxias. Further exploration of CACNA gene variants and their interactions with molecular factors, such as microRNAs, holds promise for advancing our understanding of genetic neurological disorders.

Publisher

MDPI AG

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