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Updated: Aug 8, 2026

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Published on: January 5, 2007
Catecholamines are synthesized by mouse lymphocytes and regulate function of these cells by induction of apoptosis
E Josefsson1, J Bergquist, R Ekman
1Department of Clinical Immunology, University of Göteborg, Sweden.
Insights
Immune cells produce catecholamines like dopamine and norepinephrine. These molecules suppress lymphocyte proliferation and induce apoptosis, acting as regulators in the neuroimmune network.
Area of Science:
- Neuroimmunology
- Cellular immunology
Background:
- The immune and nervous systems interact via shared molecules like cytokines and neurotransmitters.
- Catecholamines are key neurotransmitters with potential roles in neuroimmunology.
Purpose of the Study:
- To investigate the role of catecholamines in the neuroimmunological network.
- To determine if immune cells produce catecholamines and assess their effects on lymphocytes.
Main Methods:
- Quantification of catecholamines in immune cells using capillary electrophoresis.
- Assessment of catecholamine effects on lymphocyte proliferation, differentiation, and apoptosis in vitro.
- Inhibition and precursor studies using alpha-methyl-p-tyrosine and L-DOPA.
Main Results:
- Lymphocytes and macrophages were found to produce dopamine and norepinephrine.
- Catecholamine production was modulated by tyrosine hydroxylase inhibition and L-DOPA.
- Dopamine and norepinephrine suppressed lymphocyte proliferation, differentiation, and cytokine production.
- Catecholamines induced apoptosis in lymphoid cells, explaining their suppressive effects.
Conclusions:
- Lymphocytes actively produce catecholamines.
- Catecholamines function as auto- and/or paracrine regulators of lymphocyte activity.
- Catecholamine-induced apoptosis is a key mechanism in regulating immune cell function.
Abstract:
The immune and the nervous systems are anatomically closely related and interact with each other by molecules common to both systems, such as cytokines and neurotransmitters. The purpose of this study was to investigate the participation of catecholamines in the neuroimmunological network. The ability of immune cells to produce catecholamines was examined by a highly sensitive capillary electrophoresis assay, which permits detection of easily oxidized catecholamines in the zeptomole (10(-21)) range. In addition, the effects of catecholamines on in vitro proliferation, differentiation and apoptosis of lymphocytes were assessed. Mouse spleen cells and macrophages contained on average 7 x 10(-17) and 2 x 10(-17) mole dopamine per cell, respectively. In the former cell population also norepinephrine was found. Several mouse B- and T-cell hybridomas were also shown to contain endogenously produced dopamine in levels ranging from 7 x 10(-20) to 2 x 10(-18) mole dopamine per cell. In addition, one of the T-cell hybridomas proved to synthesize norepinephrine. The dopamine production of lymphocytes was blocked by the tyrosine hydroxylase inhibitor alpha-methyl-p-tyrosine, whereas incubation with the precursor L-DOPA increased the dopamine content. Incubation with L-DOPA, dopamine and norepinephrine dose-dependently suppressed mitogen induced proliferation and differentiation of mouse lymphocytes. Even short-time pretreatment of lymphocytes with L-DOPA and dopamine strongly suppressed lymphocyte proliferation and cytokine production. Incubation of lymphoid cells with L-DOPA, dopamine and norepinephrine dose-dependently induced apoptosis which, at least partly, explains the suppressive effects of catecholamines on lymphocyte function. Our results demonstrate that catecholamines: (i) are actively produced by lymphocytes and (ii) have the capacity to act as auto- and/or paracrine regulators of lymphocyte activity through induction of apoptosis.
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