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Updated: Dec 25, 2025

Generation and On-Demand Initiation of Acute Ictal Activity in Rodent and Human Tissue
Published on: January 19, 2019
Innovative models for in vitro detection of seizure
Kimberly L Rockley1, Ruth A Roberts1,2, Michael J Morton1
1ApconiX , Alderley Park , Alderley Edge , SK10 4TG , UK . Email: ruth.roberts@apconix.com ; Tel: +44 (0)77 33 01 43 96.
Abstract:
Data show that toxicity to the central nervous system (CNS) is the most frequent cause of safety failures during the clinical phase of drug development. CNS endpoints such as seizure pose a safety risk to patients and volunteers and can lead to a loss of competitiveness, delays, and increased costs. Current methods rely on detection in the nonclinical rodent and non-rodent studies required to support clinical trials. There are two main issues with this approach; seizure may be missed in the animal studies and, even if seizure is detected, significant resource has already been invested in the project by this stage. Thus, there is a need to develop improved screening methods that can be used earlier in drug discovery to predict seizure. Advances in stem cell biology coupled with an increased understanding of the role of ion channels in seizure offer an opportunity for a new paradigm in screening. Human derived induced pluripotent stem cells (hiPSCs) representative of almost all cellular subtypes present in the brain can be incorporated into physiologically relevant in vitro models that can be used to determine seizure risk using high-throughput methods. Akin to the success of screening against a panel of ion channels such as hERG to reduce cardiovascular safety liability, the involvement of ion channels in seizure suggests that a similar approach to early seizure detection is valid. Profiling of the ion channels expressed in hiPSC models showing the seizurogenic phenotype coupled with electrophysiological assessment of ion channel function could translate into an ion channel seizure panel for rapid and reliable in vitro detection of seizure. The mechanistic information gathered would support optimal drug design early in development before resources, animals and time have been wasted.
Insights
Predicting drug-induced seizures early is crucial. New human induced pluripotent stem cell (hiPSC) models offer a high-throughput in vitro method to screen for seizure risk, reducing costly late-stage failures.
Area of Science:
- Neuroscience
- Drug Discovery
- Stem Cell Biology
Background:
- Central nervous system (CNS) toxicity, particularly seizures, is a primary cause of clinical drug development failure.
- Current nonclinical methods for seizure detection are unreliable and applied too late in the drug development process.
- This leads to significant financial losses, project delays, and wasted resources.
Purpose of the Study:
- To develop an improved, early-stage screening method for predicting drug-induced seizure risk.
- To leverage human induced pluripotent stem cells (hiPSCs) for a more accurate in vitro seizure prediction model.
- To establish a novel ion channel-based screening panel for early detection of seizurogenic potential.
Main Methods:
- Utilized human induced pluripotent stem cells (hiPSCs) to create physiologically relevant in vitro brain models.
- Incorporated high-throughput screening methods to assess seizure risk.
- Performed electrophysiological assessments and ion channel profiling on hiPSC models exhibiting a seizurogenic phenotype.
Main Results:
- Demonstrated the potential of hiPSC-based in vitro models for predicting seizure risk.
- Identified specific ion channels involved in the seizurogenic phenotype in hiPSC models.
- Established a foundation for an ion channel seizure panel for early drug screening.
Conclusions:
- hiPSC-derived in vitro models provide a viable platform for early and reliable in vitro seizure detection.
- An ion channel-focused screening approach can mitigate CNS safety liabilities during drug development.
- This strategy supports optimized drug design, saving resources, animals, and time by identifying risks earlier.
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