Spatial modelling of brief and long interactions between T cells and dendritic cells
Publication date
2007
Authors
Beltman, J.B.
Marée, A.F.M.
Boer, R.J. de
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Document Type
Article
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Abstract
In the early phases of an immune response, T cells of appropriate antigen specificity become activated by antigen-presenting
cells in secondary lymphoid organs. Two-photon microscopy imaging experiments have shown that this stimulation occurs in
distinct stages during which T cells exhibit different motilities and interactions with dendritic cells (DCs). In this paper, we
utilize the Cellular Potts Model, a model formalism that takes cell shapes and cellular interactions explicitly into account,
to simulate the dynamics of, and interactions between, T cells and DCs in the lymph node paracortex. Our three-dimensional
simulations suggest that the initial decrease in T-cell motility after antigen appearance is due to ‘stop signals’ transmitted by
activated DCs to T cells. The long-lived interactions that occur at a later stage can only be explained by the presence of both
stop signals and a high adhesion between specific T cells and antigen-bearing DCs. Furthermore, our results indicate that longlasting
contacts with T cells are promoted when DCs retract dendrites that detect a specific contact at lower velocities than other
dendrites. Finally, by performing long simulations (after prior fitting to short time scale data) we are able to provide an estimate
of the average contact duration between T cells and DCs.
Keywords
Cellular Potts Model, DC T-cell interactions, immunological synapse, T-cell motility, two-photon microscopy