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Updated: Feb 1, 2026

Generation of Human Chimeric Antigen Receptor Regulatory T Cells
Published on: January 3, 2025
Cooperative assembly of a four-molecule signaling complex formed upon T cell antigen receptor activation
Asit Manna1, Huaying Zhao2, Junya Wada1
1Laboratory of Cellular and Molecular Biology, Center for Cancer Research, National Cancer Institute, Bethesda, MD 20892.
Abstract:
The T cell antigen receptor encounters foreign antigen during the immune response. Receptor engagement leads to activation of specific protein tyrosine kinases, which then phosphorylate multiple enzymes and adapter proteins. One such enzyme, phospholipase-Cγ1, is responsible for cleavage of a plasma membrane lipid substrate, a phosphoinositide, into two second messengers, diacylglycerol, which activates several enzymes including protein kinase C, and an inositol phosphate, which induces intracellular calcium elevation. In T cells, phospholipase-Cγ1 is recruited to the plasma membrane as part of a four-protein complex containing three adapter molecules. We have used recombinant proteins and synthetic phosphopeptides to reconstitute this quaternary complex in vitro. Extending biophysical tools to study concurrent interactions of the four protein components, we demonstrated the formation and determined the composition of the quaternary complex using multisignal analytical ultracentrifugation, and we characterized the thermodynamic driving forces of assembly by isothermal calorimetry. We demonstrate that the four proteins reversibly associate in a circular arrangement of binding interfaces, each protein interacting with two others. Three interactions are of high affinity, and the fourth is of low affinity, with the assembly of the quaternary complex exhibiting significant enthalpy-entropy compensation as in an entropic switch. Formation of this protein complex enables subsequent recruitment of additional molecules needed to activate phospholipase-Cγ1. Understanding the formation of this complex is fundamental to full characterization of a central pathway in T cell activation. Such knowledge is critical to developing ways in which this pathway can be selectively inhibited.
Insights
Researchers elucidated the assembly of a four-protein complex crucial for T cell activation. This complex formation, involving specific protein interactions, is key to understanding and potentially inhibiting T cell signaling pathways.
Area of Science:
- Immunology
- Molecular Biology
- Biochemistry
Background:
- T cell activation involves the T cell antigen receptor (TCR) encountering foreign antigens.
- Receptor engagement triggers protein tyrosine kinases, initiating signaling cascades.
- Phospholipase-Cγ1 (PLCγ1) activation is a critical downstream event, generating second messengers like diacylglycerol and inositol phosphate.
Purpose of the Study:
- To reconstitute and characterize the quaternary protein complex that recruits phospholipase-Cγ1 to the plasma membrane in T cells.
- To elucidate the binding interfaces, composition, and thermodynamic driving forces of this complex assembly.
- To understand the fundamental mechanisms underlying T cell activation signaling.
Main Methods:
- In vitro reconstitution using recombinant proteins and synthetic phosphopeptides.
- Multisignal analytical ultracentrifugation to determine complex formation and composition.
- Isothermal calorimetry to characterize the thermodynamic driving forces of assembly.
Main Results:
- Demonstrated reversible, circular assembly of the four-protein complex with specific binding interfaces.
- Identified three high-affinity and one low-affinity protein interactions within the complex.
- Observed significant enthalpy-entropy compensation, indicative of an entropic switch mechanism during assembly.
Conclusions:
- The formation of this specific four-protein complex is a prerequisite for phospholipase-Cγ1 activation and subsequent T cell signaling.
- Understanding the intricate assembly mechanism provides critical insights into a central pathway of T cell activation.
- This knowledge is essential for developing targeted inhibitors of T cell activation pathways.
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