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Updated: May 2, 2026

A Simple Method to Identify Kinases That Regulate Embryonic Stem Cell Pluripotency by High-throughput Inhibitor Screening
Published on: May 12, 2017
Regulation of pluripotent cell differentiation by a small molecule, staurosporine
James Nicholas Hughes1, Chong Kum Edwin Wong2, Kevin Xiuwen Lau3
1School of Molecular and Biomedical Science, University of Adelaide, Adelaide, South Australia 5005, Australia.
Abstract:
Research in the embryo and in culture has resulted in a sophisticated understanding of many regulators of pluripotent cell differentiation. As a consequence, protocols for the differentiation of pluripotent cells generally rely on a combination of exogenous growth factors and endogenous signalling. Little consideration has been given to manipulating other pathways to achieve pluripotent cell differentiation. The integrity of cell:cell contacts has been shown to influence lineage choice during pluripotent cell differentiation, with disruption of cell:cell contacts promoting mesendoderm formation and maintenance of cell:cell contacts resulting in the preferential formation of neurectoderm. Staurosporine is a broad spectrum inhibitor of serine/threonine kinases which has several effects on cell function, including interruption of cell:cell contacts, decreasing focal contact size, inducing epithelial to mesenchyme transition (EMT) and promoting cell differentiation. The possibility that staurosporine could influence lineage choice from pluripotent cells in culture was investigated. The addition of staurosporine to differentiating mouse EPL resulted in preferential formation of mesendoderm and mesoderm populations, and inhibited the formation of neurectoderm. Addition of staurosporine to human ES cells similarly induced primitive streak marker gene expression. These data demonstrate the ability of staurosporine to influence lineage choice during pluripotent cell differentiation and to mimic the effect of disrupting cell:cell contacts. Staurosporine induced mesendoderm in the absence of known inducers of formation, such as serum and BMP4. Staurosporine induced the expression of mesendoderm markers, including markers that were not induced by BMP4, suggesting it acted as a broad spectrum inducer of molecular gastrulation. This approach has identified a small molecule regulator of lineage choice with potential applications in the commercial development of ES cell derivatives, specifically as a method for forming mesendoderm progenitors or as a culture adjunct to prevent the formation of ectoderm progenitors during pluripotent cell differentiation.
Insights
Staurosporine, a kinase inhibitor, promotes mesendoderm formation in pluripotent stem cells by disrupting cell-cell contacts. This small molecule offers a novel method for generating specific cell lineages for research and development.
Area of Science:
- Stem cell biology
- Developmental biology
- Molecular pharmacology
Background:
- Pluripotent cell differentiation protocols typically use growth factors and signaling pathways.
- Cell-cell contact integrity influences lineage choice, with disruption favoring mesendoderm.
- Staurosporine is a kinase inhibitor affecting cell contacts, EMT, and differentiation.
Purpose of the Study:
- To investigate staurosporine's effect on lineage choice during pluripotent stem cell differentiation.
- To explore staurosporine as a regulator of mesendoderm formation.
- To assess staurosporine's potential in stem cell-based development.
Main Methods:
- Treatment of differentiating mouse embryonic PGC-like (EPL) cells with staurosporine.
- Treatment of human embryonic stem (ES) cells with staurosporine.
- Analysis of lineage-specific marker gene expression.
Main Results:
- Staurosporine induced preferential mesendoderm and mesoderm formation in EPL cells.
- Neurectoderm formation was inhibited by staurosporine.
- Staurosporine treatment of human ES cells upregulated primitive streak markers.
- Staurosporine promoted mesendoderm in the absence of serum or BMP4, acting as a broad inducer of molecular gastrulation.
Conclusions:
- Staurosporine influences lineage choice in pluripotent cells, mimicking cell-cell contact disruption.
- It acts as a potent inducer of mesendoderm, independent of common inducers.
- This finding presents staurosporine as a valuable tool for generating mesendoderm progenitors and controlling ectoderm formation in stem cell cultures.
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