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Updated: Dec 17, 2025

Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
An automated and high-throughput-screening compatible pluripotent stem cell-based test platform for developmental and
Gesa Witt1, Oliver Keminer1, Jennifer Leu1
1Fraunhofer IME ScreeningPort, Schnackenburgallee 114, 22525, Hamburg, Germany.
Abstract:
The embryonic stem cell test (EST) represents the only validated and accepted in vitro system for the detection and classification of compounds according to their developmental and reproductive teratogenic potency. The widespread implementation of the EST, however, in particular for routine application in pharmaceutical development, has not been achieved so far. Several drawbacks still limit the high-throughput screening of potential drug candidates in this format: The long assay period, the use of non-homogeneous viability assays, the low throughput analysis of marker protein expression and the compatibility of the assay procedures to automation. We have therefore introduced several advancements into the EST workflow: A reduction of the assay period, an introduction of homogeneous viability assays, and a straightforward analysis of marker proteins by flow cytometry and high content imaging to assess the impact of small molecules on differentiation capacity. Most importantly, essential parts of the assay procedure have been adapted to lab automation in 96-well format, thus enabling the interrogation of several compounds in parallel. In addition, extensive investigations were performed to explore the predictive capacity of this next-generation EST, by testing a set of well-known embryotoxicants that encompasses the full range of chemical-inherent embryotoxic potencies possible. Due to these significant improvements, the augmented workflow provides a basis for a sensitive, more rapid, and reproducible high throughput screening compatible platform to predict in vivo developmental toxicity from in vitro data which paves the road towards application in an industrial setting. Graphical abstract •The embryonic stem cell test to predict teratogenicity was made automation-compatible. •Several key improvements to the assay procedure have been introduced to increase performance. •The workflow was adapted to human iPS cells and isogenic fibroblast donor cells.
Insights
The embryonic stem cell test (EST) for predicting teratogenicity is now automation-compatible. Key improvements enhance its performance for high-throughput screening of developmental toxicity in drug development.
Area of Science:
- Toxicology
- Developmental Biology
- In Vitro Assays
Background:
- The embryonic stem cell test (EST) is the sole validated in vitro system for classifying teratogenic potency.
- Widespread adoption in pharmaceutical development is hindered by limitations like long assay times and low throughput.
- Current EST formats lack automation compatibility, restricting routine use.
Purpose of the Study:
- To enhance the EST workflow for high-throughput screening (HTS) compatibility in pharmaceutical development.
- To reduce assay duration and improve analysis methods for developmental toxicity prediction.
- To adapt the EST for automation and assess its predictive capacity for in vivo developmental toxicity.
Main Methods:
- Reduced assay period and introduced homogeneous viability assays.
- Implemented flow cytometry and high-content imaging for marker protein analysis.
- Adapted assay procedures for lab automation in a 96-well format, using human iPS cells.
Main Results:
- Achieved a reduction in assay period and improved analysis of differentiation capacity.
- Successfully adapted essential assay parts for lab automation, enabling parallel compound interrogation.
- Validated the augmented EST with known embryotoxicants, demonstrating its predictive capacity.
Conclusions:
- The augmented EST workflow provides a sensitive, rapid, and reproducible HTS-compatible platform.
- This next-generation EST predicts in vivo developmental toxicity from in vitro data, suitable for industrial application.
- The automation-compatible EST facilitates efficient screening of drug candidates for teratogenicity.
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