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.

Toxicology Research
|March 25, 2020
PubMed

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.