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Identification and Profiling of Environmental Chemicals That Inhibit the TGFβ/SMAD Signaling Pathway
Zhengxi Wei1, Srilatha Sakamuru1, Li Zhang1
1National Center for Advancing Translational Sciences , National Institutes of Health , Bethesda , Maryland 20892 , United States.
Abstract:
The transforming growth factor beta (TGFβ) superfamily of secreted signaling molecules and their cognate receptors regulate cell fate and behaviors relevant to many developmental and disease processes. Disruption of TGFβ signaling during embryonic development can, for example, affect morphogenesis and differentiation through complex pathways that may be SMAD (Small Mothers Against Decapentaplegic) dependent or SMAD independent. In the present study, the SMAD Binding Element (SBE)-beta lactamase (bla) HEK 293T cell line, which responds to the activation of the SMAD2/3/4 complex, was used in a quantitative high-throughput screening (qHTS) assay to identify potential TGFβ disruptors in the Tox21 10K compound library. From the primary screening we identified several kinase inhibitors, organometallic compounds, and dithiocarbamates (DTCs) that inhibited TGFβ1-induced SMAD signaling of reporter gene activation independent of cytotoxicity. Counterscreen of SBE antagonists on human embryonic neural stem cells demonstrated cytotoxicity, providing additional evidence to support evaluation of these compounds for developmental toxicity. We profiled the inhibitory patterns of putative SBE antagonists toward other developmental signaling pathways, including wingless-related integration site (WNT), retinoic acid α receptor (RAR), and sonic hedgehog (SHH). The profiling results from SBE-bla assay identify chemicals that disrupt TGFβ/SMAD signaling as part of an integrated qHTS approach for prioritizing putative developmental toxicants.
Insights
This study screened compounds to find TGFβ/SMAD signaling disruptors using a reporter cell line. Several inhibitors were identified, with some showing developmental toxicity potential in neural stem cells.
Area of Science:
- Toxicology
- Molecular Biology
- Developmental Biology
Background:
- Transforming growth factor beta (TGFβ) signaling is crucial for development and disease.
- Disruption of TGFβ pathways can impact embryonic morphogenesis and differentiation.
- SMAD-dependent and SMAD-independent pathways mediate TGFβ signaling.
Purpose of the Study:
- To identify potential TGFβ signaling disruptors using a quantitative high-throughput screening (qHTS) assay.
- To evaluate identified compounds for developmental toxicity.
- To profile disruptors' effects on other developmental pathways.
Main Methods:
- Utilized a SMAD Binding Element (SBE)-beta lactamase (bla) HEK 293T reporter cell line for screening.
- Conducted a qHTS assay on the Tox21 10K compound library.
- Performed counterscreens on human embryonic neural stem cells and profiled other signaling pathways (WNT, RAR, SHH).
Main Results:
- Identified kinase inhibitors, organometallic compounds, and dithiocarbamates (DTCs) inhibiting TGFβ1-induced SMAD signaling.
- Inhibitors were effective independently of cytotoxicity in the reporter assay.
- Counterscreening revealed cytotoxicity for some SBE antagonists in neural stem cells.
Conclusions:
- The SBE-bla assay effectively identified TGFβ/SMAD signaling disruptors.
- Identified compounds warrant further investigation for developmental toxicity.
- Integrated qHTS approach aids in prioritizing potential developmental toxicants.
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