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Published on: May 16, 2019
ABC transporters during epilepsy and mechanisms underlying multidrug resistance in refractory epilepsy
Alberto Lazarowski1, Liliana Czornyj, Fabiana Lubienieki
1Clinical Biochemistry Department, School of Pharmacy and Biochemistry, University of Buenos Aires, Buenos Aires, Argentina. nadiatom@med.unc.edu
Abstract:
It is estimated 20-25% of the epileptic patients fails to achieve good control with the different antiepileptic drugs (AEDs) treatments, developing refractory epilepsy (RE). Discovered first in cancer, the activity of P-glycoprotein (P-gp) and others ABC transporters as multidrug-resistance-associated proteins (MRPs) and breast cancer resistant protein (BCRP) are directly related with the refractoriness. We have observed the overexpression of these all transporters in the brain of patients with RE, and according with other authors, all these data suggests an active drug efflux from brain. Both constitutive and seizure induced brain P-gp overexpression was also suggested. As confirmation of these clinical evidences, different models of experimental epilepsy have demonstrated P-gp overexpression on blood brain barrier (BBB) and brain parenchyma cells, as astrocytes and neurons. In our model, early P-pg detection in vessel-related cells and later additional P-gp detection in neurons, correlated with the gradual loss of protective effect of phenytoin. The progressive neuronal P-gp expression, depending on intensity and time-constancy of seizure-injury, was in agreement with the development of "P-gp-positive seizure-axis" proposed by Kwan & Brodie, who also showed that the development of RE directly correlated with the number and frequency of seizures before initiation of drug therapy. P-gp expression in excretory organs suggests that P-gp have a central role in drug elimination. Persistent low levels of AEDs in plasma and P-gp brain overexpression in several RE pediatric patients were reported. We also observed in adult RE patients, an increased liver clearance of 99mTc-hexakis-2-methoxyisobutylisonitrile (99mTc-MIBI) (a P-gp substrate), and the surgically treated cases showed P-gp brain overexpression. These results suggest the systemic hyperactivity of P-gp in RE patients, including brain P-gp over-expression should be suspected when persistent subtherapeutic levels of AEDs in plasma are detected. P-gp neuronal expression described in both clinical and experimental reports indicates that additional mechanisms could be operative from seizure-affected P-gp-positive neurons, due to AEDs targets are expressed at membrane level. An alternative mechanism was demonstrated in P-gp-expressed cells that exhibit lower membrane potential (Deltapsi(0)=-10 to -20) compared to normal physiological Deltapsi(0) of -60 mV. Under this situation and irrespective to the P-gp pharmacoresistant property or type of drug treatment selected, P-gp-expressed neurons could increase their sensitivity to new seizures perhaps as an epileptogenic mechanism. The understanding of properties of these ABC transporters can offer new tools for better selection of more effective preventive or therapeutic strategies and avoid the invasive surgical treatments for RE.
Insights
Refractory epilepsy (RE) in 20-25% of patients is linked to P-glycoprotein (P-gp) overexpression, hindering antiepileptic drug (AED) effectiveness. Targeting P-gp may improve treatment strategies for drug-resistant epilepsy.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- 20-25% of epilepsy patients develop refractory epilepsy (RE) despite various antiepileptic drug (AED) treatments.
- P-glycoprotein (P-gp) and other ATP-binding cassette (ABC) transporters are implicated in multidrug resistance, a key factor in RE.
- Overexpression of P-gp and related transporters in the brain suggests active drug efflux contributing to treatment failure.
Purpose of the Study:
- To investigate the role of P-glycoprotein (P-gp) and other ABC transporters in the development and mechanisms of refractory epilepsy (RE).
- To correlate P-gp expression levels with AED efficacy and seizure activity in both experimental models and human patients.
- To explore potential therapeutic strategies targeting ABC transporters to overcome drug resistance in epilepsy.
Main Methods:
- Analysis of P-gp and ABC transporter expression in brain tissue from RE patients and experimental epilepsy models.
- Correlation of P-gp expression with blood-brain barrier (BBB) integrity, astrocyte and neuron activity, and AED plasma levels.
- Assessment of P-gp substrate clearance (e.g., 99mTc-MIBI) in RE patients to evaluate systemic transporter activity.
- Investigation of the impact of altered membrane potential in P-gp expressing cells on neuronal excitability.
Main Results:
- Observed overexpression of P-gp, MRPs, and BCRP in the brains of RE patients, supporting active drug efflux.
- Demonstrated P-gp overexpression on the BBB and in brain parenchyma cells (astrocytes, neurons) in experimental epilepsy models.
- Correlated progressive neuronal P-gp expression with reduced phenytoin efficacy and the development of a 'P-gp-positive seizure-axis'.
- Reported persistent subtherapeutic AED levels and increased liver clearance of P-gp substrates in RE patients, suggesting systemic P-gp hyperactivity.
- Identified altered membrane potential in P-gp expressing cells, potentially contributing to seizure sensitivity and epileptogenesis.
Conclusions:
- Systemic P-gp hyperactivity, including brain P-gp overexpression, is a significant factor in refractory epilepsy (RE).
- Persistent subtherapeutic AED levels in RE patients warrant suspicion of P-gp overexpression.
- Neuronal P-gp expression may involve additional mechanisms beyond simple drug efflux, potentially contributing to epileptogenesis.
- Understanding ABC transporter properties offers new therapeutic targets for improving AED selection and avoiding surgical interventions in RE.
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