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Updated: Mar 6, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Validation of a Preclinical Drug Screening Platform for Pharmacoresistant Epilepsy
Melissa L Barker-Haliski1, Kristina Johnson2, Peggy Billingsley2
1Department of Pharmacy, University of Washington, Seattle, WA, 98195, USA. mhaliski@uw.edu.
Abstract:
The successful identification of promising investigational therapies for the treatment of epilepsy can be credited to the use of numerous animal models of seizure and epilepsy for over 80 years. In this time, the maximal electroshock test in mice and rats, the subcutaneous pentylenetetrazol test in mice and rats, and more recently the 6 Hz assay in mice, have been utilized as primary models of electrically or chemically-evoked seizures in neurologically intact rodents. In addition, rodent kindling models, in which chronic network hyperexcitability has developed, have been used to identify new agents. It is clear that this traditional screening approach has greatly expanded the number of marketed drugs available to manage the symptomatic seizures associated with epilepsy. In spite of the numerous antiseizure drugs (ASDs) on the market today, the fact remains that nearly 30% of patients are resistant to these currently available medications. To address this unmet medical need, the National Institute of Neurological Disorders and Stroke (NINDS) Epilepsy Therapy Screening Program (ETSP) revised its approach to the early evaluation of investigational agents for the treatment of epilepsy in 2015 to include a focus on preclinical approaches to model pharmacoresistant seizures. This present report highlights the in vivo and in vitro findings associated with the initial pharmacological validation of this testing approach using a number of mechanistically diverse, commercially available antiseizure drugs, as well as several probe compounds that are of potential mechanistic interest to the clinical management of epilepsy.
Insights
For 80 years, animal models aided epilepsy drug discovery. A revised approach now focuses on preclinical models for drug-resistant epilepsy, addressing a significant unmet need.
Area of Science:
- Neuroscience
- Pharmacology
- Epilepsy Research
Background:
- Traditional animal models have identified numerous antiseizure drugs (ASDs) over 80 years.
- Despite current ASDs, approximately 30% of epilepsy patients remain pharmacoresistant.
- This highlights a critical unmet medical need in epilepsy treatment.
Purpose of the Study:
- To report on the revised preclinical evaluation approach by the NINDS Epilepsy Therapy Screening Program (ETSP) initiated in 2015.
- To validate a new testing strategy focused on modeling pharmacoresistant seizures.
- To present in vivo and in vitro findings from the initial pharmacological validation of this approach.
Main Methods:
- Utilized established rodent models (maximal electroshock, pentylenetetrazol, 6 Hz assay) and rodent kindling models.
- Focused on preclinical approaches to model pharmacoresistant seizures.
- Pharmacologically validated the new testing approach using diverse ASDs and probe compounds.
Main Results:
- The study highlights in vivo and in vitro findings from the initial validation phase.
- Demonstrated the utility of the revised approach in evaluating investigational agents.
- Showcased the pharmacological profiles of commercially available ASDs and novel probe compounds.
Conclusions:
- The revised ETSP approach incorporates preclinical models for pharmacoresistant epilepsy.
- This validation is crucial for advancing the development of new epilepsy therapies.
- The findings support the potential of this strategy to address treatment-resistant epilepsy.
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