Related Experiment Video
Updated: Jan 31, 2026

Adaptation of Microelectrode Array Technology for the Study of Anesthesia-induced Neurotoxicity in the Intact Piglet Brain
Published on: May 12, 2018
Screening for Neurotoxicity with Microelectrode Array
Jenifer A Bradley1, Christopher J Strock1
1Cyprotex US, LLC. An Evotec Company, Watertown, Massachusetts.
Abstract:
Neurotoxicity and seizurogenic liabilities are difficult to detect using currently available in vitro cytotoxicity assays. This is primarily due to the inherent limitations of these assays to predict adverse neural network disruptions and chemically induced perturbations. Many of these detrimental effects are detected with in vivo studies after substantial time and monetary resources have already been invested. Due to these late-stage unforeseen side effects, the implementation of a reliable high throughput in vitro method for assessing seizure-inducing and neurotoxic compound effects early in the drug discovery process would be ideal. We have developed an in vitro screening tool to identify chemical entities that cause neurotoxic and seizurogenic effects. This article describes the preparation and use of a 48-well microelectrode array (MEA) platform along with custom data analysis algorithms and commercially available analysis tools to screen for neurotoxic liabilities and seizurogenic effects using recorded spike file data generated from cryogenically preserved rat cortical neurons. © 2018 by John Wiley & Sons, Inc.
Insights
A new in vitro screening tool uses microelectrode arrays (MEAs) to detect neurotoxicity and seizure-inducing potential in compounds. This method aids early drug discovery by identifying harmful effects before costly in vivo studies.
Area of Science:
- Neuroscience
- Toxicology
- Drug Discovery
Background:
- Current in vitro cytotoxicity assays struggle to predict neurotoxicity and seizurogenic liabilities.
- Limitations in predicting neural network disruptions lead to late-stage detection of adverse effects in vivo.
- Significant time and financial resources are often invested before identifying these detrimental effects.
Purpose of the Study:
- To develop a reliable, high-throughput in vitro method for assessing neurotoxic and seizure-inducing compound effects.
- To enable early identification of liabilities during the drug discovery process.
- To reduce late-stage failures in drug development.
Main Methods:
- Utilized a 48-well microelectrode array (MEA) platform for in vitro screening.
- Employed custom data analysis algorithms alongside commercial tools.
- Analyzed spike file data from cryogenically preserved rat cortical neurons.
Main Results:
- Successfully developed an in vitro screening tool capable of identifying neurotoxic and seizurogenic chemical entities.
- Demonstrated the utility of MEA technology for detecting adverse neural effects.
- Provided a method for early-stage assessment of compound safety.
Conclusions:
- The developed MEA-based platform offers a promising solution for early detection of neurotoxicity and seizurogenic liabilities.
- This high-throughput screening tool can significantly improve the efficiency of drug discovery.
- Implementing this method can help mitigate risks associated with late-stage identification of adverse neural effects.
More Related Videos
08:11Surgical Training for the Implantation of Neocortical Microelectrode Arrays Using a Formaldehyde-fixed Human Cadaver Model
Published on: November 19, 2017
07:37Construction and Implementation of Carbon Fiber Microelectrode Arrays for Chronic and Acute In Vivo Recordings
Published on: August 5, 2021
Related Concept Videos
Genetic Screens
Forward genetic screens
Forward or “classical” genetic screens involve creating random mutations in an organism’s DNA using radiation, mutagens, or insertion of additional bases, which...
Classification of Elements and Compounds
Compounds are pure substances composed of two or more elements in fixed, definite proportions. Compounds are classified as ionic or molecular (covalent) based on the bonds...
Microtubules
CRISPR
The Nucleolus
The Born-Haber Cycle