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Rapid and Robust Analysis of Cellular and Molecular Polarization Induced by Chemokine Signaling
Published on: December 12, 2014
Three-Dimensional Gradients of Cytokine Signaling between T Cells
Kevin Thurley1, Daniel Gerecht2, Elfriede Friedmann2
1Division of Theoretical Systems Biology, German Cancer Research Center, Heidelberg, Germany; Institute for Theoretical Biology, Charité-Universitätsmedizin, Berlin, Germany; Department of Pharmaceutical Chemistry, University of California, San Francisco, San Francisco, California, United States of America.
Insights
Cytokine signaling range is determined by secretion and uptake, creating local gradients crucial for immune cell communication. This paracrine signaling extends beyond cell junctions but can be limited by cell density and consumption.
Area of Science:
- Immunology
- Cell Biology
- Biophysics
Background:
- Immune responses rely on cytokines, signaling molecules acting at low concentrations.
- The spatial range of cytokine communication is critical but not well understood.
- Both localized and widespread cytokine signaling have been proposed, with unclear conditions.
Purpose of the Study:
- To analyze cytokine signaling dynamics in 3D reaction-diffusion models.
- To investigate signaling at the scales of immunological synapses and multicellular environments.
- To determine factors controlling cytokine spatial signaling range.
Main Methods:
- Spatially three-dimensional reaction-diffusion modeling.
- Analysis of cytokine dynamics, secretion, and competitive uptake.
- Focus on T-cell cytokine, interleukin-2, and regulatory T cells.
Main Results:
- Observed sharp decay in cytokine concentration within a few cell diameters for realistic parameters.
- Demonstrated that secretion and competitive uptake determine signaling range.
- Found substantial cytokine escape from narrow synapses (≥20%), enabling paracrine signaling.
- Identified conditions for local vs. long-range signaling.
Conclusions:
- Cytokine gradients between cells, not bulk concentrations, are key for immune communication.
- Paracrine signaling generally extends beyond synapses but can be spatially limited.
- Long-range signaling requires high producer density or low consumption.
- Spatially resolved data is essential for understanding cytokine signaling.
Abstract:
Immune responses are regulated by diffusible mediators, the cytokines, which act at sub-nanomolar concentrations. The spatial range of cytokine communication is a crucial, yet poorly understood, functional property. Both containment of cytokine action in narrow junctions between immune cells (immunological synapses) and global signaling throughout entire lymph nodes have been proposed, but the conditions under which they might occur are not clear. Here we analyze spatially three-dimensional reaction-diffusion models for the dynamics of cytokine signaling at two successive scales: in immunological synapses and in dense multicellular environments. For realistic parameter values, we observe local spatial gradients, with the cytokine concentration around secreting cells decaying sharply across only a few cell diameters. Focusing on the well-characterized T-cell cytokine interleukin-2, we show how cytokine secretion and competitive uptake determine this signaling range. Uptake is shaped locally by the geometry of the immunological synapse. However, even for narrow synapses, which favor intrasynaptic cytokine consumption, escape fluxes into the extrasynaptic space are expected to be substantial (≥20% of secretion). Hence paracrine signaling will generally extend beyond the synapse but can be limited to cellular microenvironments through uptake by target cells or strong competitors, such as regulatory T cells. By contrast, long-range cytokine signaling requires a high density of cytokine producers or weak consumption (e.g., by sparsely distributed target cells). Thus in a physiological setting, cytokine gradients between cells, and not bulk-phase concentrations, are crucial for cell-to-cell communication, emphasizing the need for spatially resolved data on cytokine signaling.
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