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Published on: February 11, 2015
Spatial requirements for ITAM signaling in an intracellular natural killer cell model membrane
Gene Chong1, Alexander D MacKerell1
1Computer Aided Drug Design Center, Department of Pharmaceutical Sciences, School of Pharmacy, University of Maryland, Baltimore, MD 21201, United States.
Insights
Antibody binding causes FcγRIIIa-FcεRIγ complexes to cluster, initiating natural killer (NK) cell signaling. Molecular simulations reveal how Lck phosphorylates ITAMs and Syk binds phosphotyrosines, driving downstream signaling in NK cells.
Area of Science:
- Immunology
- Molecular Cell Biology
- Computational Biology
Background:
- FcγRIIIa-FcεRIγ complexes activate natural killer (NK) cells upon antibody stimulation.
- Intracellular signaling involves Lck-mediated ITAM phosphorylation and Syk kinase binding.
- The mechanism by which FcR clustering triggers ITAM signaling remains unclear.
Purpose of the Study:
- To elucidate the molecular mechanisms of FcR clustering-induced ITAM signaling.
- To model the spatial arrangements of FcγRIIIa-FcεRIγ complexes and their impact on signaling.
Main Methods:
- Molecular modeling and dynamics (MD) simulations were used to generate structural ensembles of FcγRIIIa-FcεRIγ complexes at varying distances (120, 80, and 50 Å).
- Site-Identification by Ligand Competitive Saturation with Monte Carlo sampling (SILCS-MC) was employed to model Lck phosphorylation of ITAMs.
- Analysis focused on ITAM phosphorylation patterns and Syk kinase binding dynamics.
Main Results:
- At 80 Å separation, Lck efficiently phosphorylates multiple ITAMs within and across FcγRIIIa-FcεRIγ complexes.
- Syk kinase can bind two phosphotyrosines (pY) within a single ITAM, similar to T cell receptor signaling.
- At 50 Å separation (unique to NK cells), Syk can bind pYs in different ITAMs across FcγRIIIa-FcεRIγ complexes, suggesting distinct signaling pathways.
Conclusions:
- FcR clustering induces diverse ITAM spatial orientations, facilitating Lck phosphorylation.
- Subsequent Syk activity on these phosphorylated ITAMs drives downstream signaling in NK cells.
- The 50 Å complex separation offers a unique mechanism for Syk engagement in NK cells.
Abstract:
FcγRIIIa-FcεRIγ complexes, upon stimulation by antibodies, cluster to initiate intracellular signaling and activate natural killer (NK) cells. Intracellular signaling involves Lck phosphorylation of ITAMs of each monomer of a FcεRIγ homodimer in a FcγRIIIa-FcεRIγ complex and subsequent binding of two phosphotyrosines (pY) in tandem by a Syk family kinase. However, how FcR clustering triggers ITAM signaling is not resolved. Molecular modeling and dynamics (MD) simulations are applied to generate ensembles of structures of the FcγRIIIa and FcεRIγ homodimeric cytoplasmic tails of FcγRIIIa-FcεRIγ complexes based on the transmembrane helices and cytoplasmic tails spaced 120, 80, and 50 Å apart to model different extents of clustering. Site-identification by ligand competitive saturation method with Monte Carlo sampling (SILCS-MC) is used to model how Lck could phosphorylate a diversity of ITAM conformations. At 80 Å separation between FcγRIIIa-FcεRIγ complexes, Lck can perform multiple phosphorylations on individual and multiple ITAMs across complexes, including potential sequential phosphorylation events. Syk may then potentially bind the two pYs within a single ITAM in tandem in isolated FcγRIIIa-FcεRIγ complexes, as observed in CD3ε and ζ chains of T cell receptors by the Syk family kinase ZAP-70. In addition, at 50 Å separation between complexes, unique to natural killer cells over T cells, Syk could potentially bind in tandem to pYs in different ITAMs across FcγRIIIa-FcεRIγ complexes. Thus, we predict that an ensemble of spatial orientations of the ITAMS of FcγRIIIa-FcεRIγ complexes that occur upon clustering lead to ITAM phosphorylation by Lck and subsequent Syk activity thereby facilitating downstream signaling.
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