Architektura genetyczna epilepsji: różne mechanizmy i zmienność kliniczna
PubMed➕ 20.08.2026Epilepsia Open
The genetic architecture of epilepsy across molecular mechanisms and clinical heterogeneity
W skrócie
Epilepsja to grupa chorób neurologicznych, które mogą być spowodowane różnymi przyczynami genetycznymi i molekularnymi. Badacze odkryli, że za epilepsję odpowiadają zarówno rzadkie mutacje w pojedynczych genach, jak i kombinacja wielu typowych wariantów genetycznych, a także zaburzenia procesów w mózgu wpływające na równowagę między pobudzeniem a hamowaniem komórek nerwowych. Artykuł pokazuje, jak wiedza o genetyce epilepsji może pomóc w lepszym diagnozowaniu choroby, przewidywaniu jej przebiegu i opracowywaniu bardziej skutecznych leków dostosowanych do indywidualnego pacjenta.
Oryginalny abstract (angielski)
Epilepsy comprises a highly heterogeneous group of neurological disorders unified by a persistent predisposition to recurrent seizures, yet driven by remarkably diverse genetic, molecular, and network-level mechanisms. Advances in genomic technologies have revealed that epilepsy arises from a multilayered genetic architecture encompassing rare high-penetrance monogenic variants, common polygenic risk factors, brain-restricted somatic mosaicism, and extensive gene-environment interactions. These genetic substrates converge on core biological pathways regulating neuronal excitability, synaptic transmission, metabolic homeostasis, neuroinflammation, and circuit development. In this review, we synthesize contemporary insights into the genetic and molecular pathophysiology of seizures and epilepsy, with emphasis on mechanisms that destabilize excitation-inhibition balance, promote epileptogenesis, and drive pharmacoresistance. We highlight how ion channel dysfunction, synaptic vesicle cycling defects, mTOR pathway hyperactivation, glial and metabolic failure, and inflammatory cascades interact to lower seizure threshold and remodel neural networks. Beyond classical monogenic and polygenic models, we discuss the emerging role of somatic mutations, polygenic modifiers of rare variants, and dynamic brain-state-dependent seizure susceptibility. We further integrate genetic mechanisms with clinical heterogeneity, including age of onset, seizure type, penetrance, pleiotropy, and treatment response, and review translational implications for precision medicine, pharmacogenomics, and emerging molecular therapies such as antisense oligonucleotides, gene regulation strategies, and cell-based interventions. Understanding the genetic architecture of epilepsy is increasingly informing diagnostic pathways, prognostic stratification, and the development of precision-based therapeutic approaches. PLAIN LANGUAGE SUMMARY: Epilepsy genetics extends beyond single-gene disorders and involves multiple interacting layers of genomic variation. In this review, we integrate evidence across rare variants, polygenic risk, somatic mosaicism, and genetic modifiers to provide a broader framework for understanding seizure susceptibility and clinical diversity. By highlighting convergent biological pathways and their effects on neuronal networks, this work supports more refined approaches to epilepsy classification and future precision medicine strategies.
Metadane publikacji
Journal
Epilepsia Open
Data publikacji
19.08.2026
PMID
42615388
DOI
10.1002/epi4.70310
Autorzy
Seyedtaghia MR, Babanzadeh J, Scala M, Perilli L, Striano P
Słowa kluczowe
anti‐seizure medication, drug resistance epilepsy, epilepsy, genomics, seizure