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.

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