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Published on: April 16, 2015
Copper deficiency reduces interleukin-2 (IL-2) production and IL-2 mRNA in human T-lymphocytes
1Department of Food, Nutrition & Food Service Management, The University of North Carolina Greensboro, 27412-5001, USA.
Insights
Copper deficiency in human T-cells reduces interleukin-2 (IL-2) production by impacting IL-2 mRNA levels. This study used an in vitro model to investigate the effects of cellular copper depletion on T-cell function.
Area of Science:
- Immunology
- Nutritional Biochemistry
- Cell Biology
Background:
- Dietary copper deficiency is linked to reduced interleukin-2 (IL-2) production in rodent models.
- The human relevance and underlying mechanisms of this relationship remain unclear.
Purpose of the Study:
- To investigate the impact of cellular copper deficiency on IL-2 production in human T-lymphocytes.
- To elucidate the molecular mechanisms by which copper status affects IL-2 synthesis.
Main Methods:
- Developed an in vitro model using Jurkat T-cells treated with a copper chelator (2,3,2-tetraamine).
- Assessed cell copper levels, Cu,Zn-superoxide dismutase (Cu,Zn-SOD) activity, IL-2 production, and IL-2 mRNA levels.
- Evaluated the effects of copper supplementation and iron status.
Main Results:
- Copper deficiency significantly reduced IL-2 production (60-70%) and IL-2 mRNA levels (40-70%) in activated Jurkat cells.
- Chelator treatment did not affect cell viability, growth, or mitochondrial activity.
- Copper supplementation prevented the decrease in IL-2 production and mRNA levels, while iron status remained unaffected.
Conclusions:
- Cellular copper deficiency impairs IL-2 production in human T-cells.
- This impairment is associated with reduced synthesis and/or stability of IL-2 mRNA.
- Findings highlight the critical role of copper in human T-cell immune function.
Abstract:
Although dietary copper (Cu) deficiency has been associated with decreased production of interleukin-2 (IL-2) by activated splenic mononuclear cells in rodent models, the basis for this relationship and its relevance for humans remain unknown. To address these matters, we have developed an in vitro model of cellular copper deficiency by treating Jurkat, a human T-lymphocyte cell line, with low concentrations of 2,3,2-tetraamine (2,3,2-tet), a high affinity copper chelator. Exposure to 5-20 micromol/L 2,3,2-tet for 35 h decreased cell copper and the activity of Cu,Zn-superoxide dismutase (Cu,Zn-SOD) by 30-40% and IL-2 production by 60-70% in cultures activated with phytohemagglutinin and phorbol myristate acetate. Similarly, IL-2 mRNA levels were 40-70% lower in chelator-treated cells than in untreated cells at 3-12 h after activation. In contrast, chelator treatment had no significant effect on cell viability, growth, protein synthesis or mitochondrial activity. The presence of a slight molar excess of copper, but not zinc or iron, during exposure to 2,3,2-tet prevented the chelator-induced decrease in Cu,Zn-SOD activity and the reductions in IL-2 mRNA and bioactivity. Moreover, binding of diferric transferrin (Tf) and cellular uptake of Tf-59Fe by Jurkat cells were not increased by 2,3,2-tet, indicating that chelator-treated cells were not iron deficient. Finally, incubation of human peripheral blood mononuclear cells (PBMC) with 2,3,2-tet decreased mitogen-induced IL-2 production by 50% compared with untreated controls. These data indicate that a decline in copper status decreases IL-2 production by activated human T-cells due to reduced synthesis and/or stability of IL-2 mRNA.
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