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bioRxiv · 10.1101/2025.09.11.675682

Weak SLP-76-PLC-γ1 interaction in the LAT-nucleated multi-protein complex fine-tunes TCR signal strength to optimize T cell responsiveness

Abstract

Upon TCR engagement several protein tyrosine kinases are recruited and activated, and adapter proteins and enzymes are phosphorylated on tyrosine residues, leading to further events characterizing activated T cells. Phosphorylation of the LAT adapter protein enables binding of the enzyme PLC-{gamma}1 and of a dimer of two additional adapter proteins Gads and SLP-76, forming a tetrameric structure. Within this heterotetramer there is a weak interaction between SLP-76 and PLC-{gamma}1, and the relevant binding sites of SLP-76 and PLC-{gamma}1 are highly conserved in vertebrates. To address the biological relevance of this weak interaction, we introduced a mutation in the SLP-76 that enhanced its affinity for PLC-{gamma}1 and found that this mutation increased PLC-{gamma}1 activity and altered thymocyte development and peripheral T cell responses due to enhanced TCR signal strength. The conserved weak SLP-76-PLC-{gamma}1 interaction is critical for the controlled activation of PLC-{gamma}1, thus fine-tuning TCR signal strength to optimize T cell-mediated immunity.

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Yamane, H., Wada, J., Stassenko, E. N., Convertino, N. D., Lee, M. E., Vacchio, M. S., Li, W., Rathnayake, U. M., Balagopalan, L., Chari, R., Hagenau, H., Awasthi, P., McGavern, D., Bosselut, R., Samelson, L. E.. 2025-09-17. Weak SLP-76-PLC-γ1 interaction in the LAT-nucleated multi-protein complex fine-tunes TCR signal strength to optimize T cell responsiveness. https://doi.org/10.1101/2025.09.11.675682

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