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Drug resistance in epilepsy and the ABCB1 gene: The clinical perspective
Abhijit Das1, Shabeesh Balan, Moinak Banerjee
1R. Madhavan Nayar Center for Comprehensive Epilepsy Care, Sree Chitra Tirunal Institute for Medical Sciences and Technology, Trivandrum, Kerala, India.
Abstract:
Multidrug resistance is one of the most serious problems in the treatment of epilepsy that is likely to have a complex genetic and acquired basis. Various experimental data support the hypothesis that over-expression of antiepileptic drug (AED) transporters may play a pivotal role in drug resistance. Hyyt 6however, key questions concerning their functionality remain unanswered. The idea that P-glycoprotein, encoded by the ABCB1 gene, might mediate at least part of the drug resistance was met with both enthusiasm and skepticism. As in oncology, initial optimism has been clouded subsequently by conflicting results. The first study reporting a positive association between genetic variation in the P-glycoprotein and multidrug-resistant epilepsy was published in 2003. Since then, several other genetic association studies have attempted to verify this result. However, taken overall, the role of P-glycoprotein in drug resistance in epilepsy still remains uncertain. We intend to critically review the inherent problems associated with epilepsy pharmacogenetic studies in general and with ABCB1 polymorphisms studies in particular. The lessons learnt from the ABCB1 studies can help us to guide future association genetics studies to investigate AED resistance, and thereby taking us closer to the cherished dream of personalized AED therapy.
Insights
Multidrug resistance in epilepsy is a major challenge. While P-glycoprotein (ABCB1 gene) is implicated, its exact role in antiepileptic drug resistance remains uncertain, necessitating further pharmacogenetic research.
Area of Science:
- Pharmacogenetics
- Epilepsy Research
- Drug Metabolism
Background:
- Multidrug resistance significantly complicates epilepsy treatment.
- Over-expression of antiepileptic drug (AED) transporters is a hypothesized mechanism.
- The role of P-glycoprotein, encoded by the ABCB1 gene, in this resistance is debated.
Purpose of the Study:
- To critically review the challenges in epilepsy pharmacogenetic studies.
- To specifically analyze studies on ABCB1 gene polymorphisms and drug resistance.
- To guide future research towards personalized antiepileptic drug therapy.
Main Methods:
- Literature review of genetic association studies.
- Critical analysis of methodologies in epilepsy pharmacogenetics.
- Evaluation of conflicting results regarding ABCB1 and epilepsy.
Main Results:
- Conflicting results exist regarding the association between ABCB1 genetic variation and multidrug-resistant epilepsy.
- The precise contribution of P-glycoprotein to epilepsy drug resistance remains uncertain.
- Methodological issues in pharmacogenetic studies may contribute to inconsistent findings.
Conclusions:
- The role of P-glycoprotein in epilepsy multidrug resistance requires further clarification.
- Lessons from ABCB1 studies are crucial for designing future pharmacogenetic research.
- Improved study designs can advance personalized antiepileptic drug therapy.
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