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Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
Characterization of the C17.2 cell line as test system for endocrine disruption-induced developmental neurotoxicity
Andrea Cediel-Ulloa1, Roseline Awoga1,2, Arif Dönmez3
1Department of Organismal Biology, Uppsala University, Uppsala, Sweden.
Abstract:
Hormone signaling plays an essential role during fetal life and is vital for brain development. Endocrine-disrupting chemicals can interfere with the hormonal milieu during this critical time-period, disrupting key neurodevelopmental processes. Hence, there is a need for the development of assays that evaluate developmental neurotoxicity (DNT) induced by an endocrine mode of action. Herein, we evaluated the neural progenitor C17.2 cell line as an in vitro test system to aid in the detection of endocrine disruption-induced DNT. For this, C17.2 cells were exposed during 10 days of differentiation to agonists and antagonists of the thyroid hormone (THR), glucocorticoid (GR), retinoic acid (RAR), retinoic x (RXR), oxysterol (LXR), estrogen (ER), androgen (AR), and peroxisome proliferator activated delta (PPARβ/δ) receptors, as well as to the agonist of the vitamin D (VDR) receptor. Upon exposure and differentiation, neuronal morphology (neurite outgrowth and branching) and the percentage of neurons in culture were assessed by immunofluorescence. For this, the cells were stained for βIII-tubulin (neuronal marker). C17.2 cells decreased neurite outgrowth and branching in response to RAR, RXR and PPARβ/δ agonists. Exposure to the GR agonist increased the number of cells differentiating into neurons, while exposure to the RXR agonist had the opposite effect. With this approach, we demonstrate that C17.2 cells are responsive to GR, RAR, RXR, and PPARβ/δ agonists and hence could be useful to develop a test system for hazard assessment of endocrine disruption-induced DNT.
Insights
This study shows that C17.2 neural progenitor cells can detect developmental neurotoxicity from endocrine disruptors. These cells respond to specific hormone receptor agonists, aiding in hazard assessment for endocrine disruption-induced DNT.
Area of Science:
- Neuroscience
- Endocrinology
- Toxicology
Background:
- Hormone signaling is critical for fetal brain development.
- Endocrine-disrupting chemicals (EDCs) can interfere with hormonal signaling during development, leading to neurodevelopmental issues.
- Assays are needed to evaluate developmental neurotoxicity (DNT) caused by EDCs.
Purpose of the Study:
- To evaluate the C17.2 neural progenitor cell line as an in vitro test system for detecting DNT induced by endocrine disruption.
- To assess the responsiveness of C17.2 cells to various hormone receptor agonists and antagonists.
Main Methods:
- C17.2 cells were differentiated for 10 days.
- Cells were exposed to agonists/antagonists of thyroid hormone (THR), glucocorticoid (GR), retinoic acid (RAR), retinoic x (RXR), oxysterol (LXR), estrogen (ER), androgen (AR), peroxisome proliferator activated delta (PPARβ/δ), and vitamin D (VDR) receptors.
- Neuronal morphology (neurite outgrowth, branching) and neuronal differentiation percentage were assessed via immunofluorescence staining for βIII-tubulin.
Main Results:
- RAR, RXR, and PPARβ/δ agonists decreased neurite outgrowth and branching.
- GR agonist exposure increased neuronal differentiation.
- RXR agonist exposure decreased neuronal differentiation.
Conclusions:
- C17.2 cells demonstrate responsiveness to GR, RAR, RXR, and PPARβ/δ agonists.
- The C17.2 cell line shows potential as a valuable in vitro system for hazard assessment of DNT induced by endocrine disruption.
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