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Published on: April 16, 2015
GATA-3 transcriptional imprinting in Th2 lymphocytes: a mathematical model
Thomas Höfer1, Holger Nathansen, Max Löhning
1Theoretische Biophysik, Institut für Biologie, Humboldt-Universität Berlin, Invalidenstrasse 42, 10115 Berlin, Germany. thomas.hoefer@rz.hu-berlin.de
Insights
Immunological memory relies on T helper cells recalling cytokine expression. A mathematical model shows GATA-3 autoactivation creates a bistable system, enabling memory of transient signals and potentially extinguishing Th2 memory.
Area of Science:
- Immunology
- Computational Biology
- Molecular Biology
Background:
- Immunological memory involves rapid cytokine recall by T helper (Th) lymphocytes.
- Two distinct Th1 and Th2 cytokine profiles are induced during naive Th cell activation.
- GATA-3 transcription factor drives Th2 development and is activated by IL-4.
Purpose of the Study:
- To develop a mathematical model of GATA-3 expression dynamics.
- To investigate the role of GATA-3 autoactivation in Th2 cell memory.
- To explore conditions that might abolish Th2 cytokine memory.
Main Methods:
- Mathematical modeling of GATA-3 transcription.
- Analysis of independent activation by IL-4 and GATA-3.
- Simulation of bistable system dynamics and signal thresholds.
Main Results:
- GATA-3 autoactivation creates a bistable system with basal and high expression states.
- A threshold for autoactivation ensures distinct GATA-3 expression levels.
- Transient IL-4 signals can induce a stable high GATA-3 expression state, conferring memory.
Conclusions:
- GATA-3 autoactivation provides a molecular mechanism for immunological memory in Th2 cells.
- The bistable nature of GATA-3 expression allows memory of transient inductive signals.
- Understanding these dynamics may offer insights into extinguishing unwanted Th2 memory.
Abstract:
Immunological memory involves the fast recall of cytokine expression by T helper (Th) lymphocytes. Two distinct profiles of cytokine expression, Th1 and Th2, can be induced by antigen and polarizing signals during activation of naive Th cells and can subsequently be reexpressed on stimulation by antigen alone. The transcription factor GATA-3 induces Th2 development. GATA-3 is activated by the Th2-polarizing stimulus, IL-4, and has recently been observed to autoactivate its transcription. Based on these experimental data, we developed a mathematical model of GATA-3 expression that assumes independent activation of GATA-3 transcription by IL-4 and by GATA-3. Cooperativity of GATA-3 transcriptional activation is shown to create a threshold for autoactivation, resulting in the coexistence of two distinct GATA-3 expression states: a state of basal expression and a state of high expression sustained by autoactivation. Suprathreshold IL-4 signals induce a transition from basal to high GATA-3 expression. Thus, GATA-3 autoactivation creates a bistable system that can memorize a transient inductive signal. The model further predicts conditions under which the state of high GATA-3 expression can be abolished, which may extinguish the Th2 cytokine memory.
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