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Updated: Jun 25, 2025

Generation of Human Chimeric Antigen Receptor Regulatory T Cells
Published on: January 3, 2025
Phospho-mimetic CD3ε variants prevent TCR and CAR signaling
Nadine M Woessner1,2,3, Simon M Brandl1,2,3, Sara Hartmann1,2,3
1Faculty of Biology, University of Freiburg, Freiburg, Germany.
Introduction:
Antigen binding to the T cell antigen receptor (TCR) leads to the phosphorylation of the immunoreceptor tyrosine-based activation motifs (ITAMs) of the CD3 complex, and thereby to T cell activation. The CD3ε subunit plays a unique role in TCR activation by recruiting the kinase LCK and the adaptor protein NCK prior to ITAM phosphorylation. Here, we aimed to investigate how phosphorylation of the individual CD3ε ITAM tyrosines impacts the CD3ε signalosome.
Methods:
We mimicked irreversible tyrosine phosphorylation by substituting glutamic acid for the tyrosine residues in the CD3ε ITAM.
Results:
Integrating CD3ε phospho-mimetic variants into the complete TCR-CD3 complex resulted in reduced TCR signal transduction, which was partially compensated by the involvement of the other TCR-CD3 ITAMs. By using novel CD3ε phospho-mimetic Chimeric Antigen Receptor (CAR) variants, we avoided any compensatory effects of other ITAMs in the TCR-CD3 complex. We demonstrated that irreversible CD3ε phosphorylation prevented signal transduction upon CAR engagement. Mechanistically, we demonstrated that glutamic acid substitution at the N-terminal tyrosine residue of the CD3ε ITAM (Y39E) significantly reduces NCK binding to the TCR. In contrast, mutation at the C-terminal tyrosine of the CD3ε ITAM (Y50E) abolished LCK recruitment to the TCR, while increasing NCK binding. Double mutation at the C- and N-terminal tyrosines (Y39/50E) allowed ZAP70 to bind, but reduced the interaction with LCK and NCK.
Conclusions:
The data demonstrate that the dynamic phosphorylation of the CD3ε ITAM tyrosines is essential for CD3ε to orchestrate optimal TCR and CAR signaling and highlights the key role of CD3ε signalosome to tune signal transduction.
Insights
Dynamic phosphorylation of CD3ε ITAM tyrosines is crucial for T cell receptor (TCR) and chimeric antigen receptor (CAR) signaling. This study reveals how CD3ε signalosome phosphorylation regulates T cell activation, impacting LCK and NCK recruitment.
Area of Science:
- Immunology
- Molecular Biology
- Cell Signaling
Background:
- The T cell receptor (TCR) complex initiates T cell activation through phosphorylation of CD3 complex ITAMs.
- The CD3ε subunit is critical for recruiting LCK and NCK before ITAM phosphorylation, playing a unique role in TCR activation.
Purpose of the Study:
- To investigate the impact of individual CD3ε ITAM tyrosine phosphorylation on the CD3ε signalosome.
- To understand the role of CD3ε phosphorylation dynamics in orchestrating TCR and CAR signaling.
Main Methods:
- Mimicked irreversible tyrosine phosphorylation by substituting glutamic acid for tyrosine residues in CD3ε ITAMs.
- Utilized novel CD3ε phospho-mimetic Chimeric Antigen Receptor (CAR) variants to isolate CD3ε effects.
Main Results:
- Irreversible CD3ε phosphorylation reduced TCR signal transduction, with partial compensation by other ITAMs.
- Phospho-mimetic CD3ε variants in CARs prevented signal transduction upon engagement.
- Specific mutations affected LCK and NCK binding: Y39E reduced NCK binding, Y50E abolished LCK recruitment while increasing NCK binding, and Y39/50E allowed ZAP70 binding but reduced LCK/NCK interaction.
Conclusions:
- Dynamic phosphorylation of CD3ε ITAM tyrosines is essential for optimal TCR and CAR signaling.
- The CD3ε signalosome plays a key role in tuning T cell signal transduction.
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