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Updated: May 3, 2026

Human Pluripotent Stem Cell Based Developmental Toxicity Assays for Chemical Safety Screening and Systems Biology Data Generation
Published on: June 17, 2015
A systems toxicology approach identifies Lyn as a key signaling phosphoprotein modulated by mercury in a B lymphocyte
Joseph A Caruso1, Paul M Stemmer1, Alan Dombkowski2
1Institute of Environmental Health Sciences, Wayne State University, Detroit, MI, USA.
Abstract:
Network and protein-protein interaction analyses of proteins undergoing Hg²⁺-induced phosphorylation and dephosphorylation in Hg²⁺-intoxicated mouse WEHI-231 B cells identified Lyn as the most interconnected node. Lyn is a Src family protein tyrosine kinase known to be intimately involved in the B cell receptor (BCR) signaling pathway. Under normal signaling conditions the tyrosine kinase activity of Lyn is controlled by phosphorylation, primarily of two well known canonical regulatory tyrosine sites, Y-397 and Y-508. However, Lyn has several tyrosine residues that have not yet been determined to play a major role under normal signaling conditions, but are potentially important sites for phosphorylation following mercury exposure. In order to determine how Hg²⁺ exposure modulates the phosphorylation of additional residues in Lyn, a targeted MS assay was developed. Initial mass spectrometric surveys of purified Lyn identified 7 phosphorylated tyrosine residues. A quantitative assay was developed from these results using the multiple reaction monitoring (MRM) strategy. WEHI-231 cells were treated with Hg²⁺, pervanadate (a phosphatase inhibitor), or anti-Ig antibody (to stimulate the BCR). Results from these studies showed that the phosphoproteomic profile of Lyn after exposure of the WEHI-231 cells to a low concentration of Hg²⁺ closely resembled that of anti-Ig antibody stimulation, whereas exposure to higher concentrations of Hg²⁺ led to increases in the phosphorylation of Y-193/Y-194, Y-501 and Y-508 residues. These data indicate that mercury can disrupt a key regulatory signal transduction pathway in B cells and point to phospho-Lyn as a potential biomarker for mercury exposure.
Insights
Mercury exposure alters Lyn protein phosphorylation in B cells, mimicking B cell receptor signaling. Phospho-Lyn may serve as a biomarker for mercury intoxication.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Lyn, a Src family tyrosine kinase, is crucial for B cell receptor (BCR) signaling.
- Lyn activity is regulated by phosphorylation at specific tyrosine sites.
- Mercury (Hg²⁺) exposure can induce protein phosphorylation and dephosphorylation events.
Purpose of the Study:
- To investigate how Hg²⁺ exposure modulates phosphorylation of additional tyrosine residues in Lyn.
- To develop a targeted mass spectrometry (MS) assay for quantifying Lyn phosphorylation.
- To identify potential biomarkers for mercury exposure in B cells.
Main Methods:
- Network and protein-protein interaction analyses were performed on Hg²⁺-treated WEHI-231 B cells.
- A targeted MS assay using multiple reaction monitoring (MRM) was developed to quantify Lyn phosphorylation.
- WEHI-231 cells were exposed to Hg²⁺, a phosphatase inhibitor, or anti-Ig antibody.
Main Results:
- Lyn was identified as a key node in Hg²⁺-induced signaling pathways.
- MS surveys identified 7 phosphorylated tyrosine residues on Lyn.
- Low Hg²⁺ concentrations mimicked anti-Ig antibody stimulation of BCR signaling.
- High Hg²⁺ concentrations increased phosphorylation at Lyn residues Y-193/Y-194, Y-501, and Y-508.
Conclusions:
- Hg²⁺ disrupts critical signal transduction pathways in B cells.
- Lyn phosphorylation patterns in response to Hg²⁺ exposure are distinct.
- Phosphorylated Lyn (phospho-Lyn) shows potential as a biomarker for mercury exposure.
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