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Transcriptional regulation of multidrug resistance-1 gene by interleukin-2 in lymphocytes
Shizuyo Tsujimura1, Kazuyoshi Saito, Shingo Nakayamada
1First Department of Internal Medicine, University of Occupational and Environmental Health, School of Medicine, Yahata-nishi, Kitakyushu, Japan.
Abstract:
P-glycoprotein, encoded by the multidrug resistance (MDR)-1 gene, expels various drugs from cells resulting in drug resistance. However, its functional relevance to lymphocytes and the regulatory mechanism remain unclear. Although MDR-1 is known to be induced by various cytotoxic stimuli, it is poorly understood whether the activation stimuli such as cytokines induce MDR-1 transcription. We investigated the transcriptional regulation of MDR-1 in lymphocytes by activation stimuli, particularly by interleukin (IL)-2. IL-2 induced translocation of YB-1, a specific transcriptional factor for MDR-1, from the cytoplasm into nucleus of lymphocytes in a dose-dependent manner and resulted in the sequential events; transcription of MDR-1, expression of P-glycoprotein on the cell surface, and excretion of the intracellular dexamethasone added in vitro. Transfection of YB-1 anti-sense oligonucleotides inhibited P-glycoprotein expression induced by IL-2. Cyclosporin A, a competitive inhibitor of P-glycoprotein, recovered intracellular dexamethasone levels in lymphocytes. We provide the first evidence that IL-2, a representative lymphocyte-activation stimulus, induces YB-1 activation followed by P-glycoprotein expression in lymphocytes. Our findings imply that lymphocytes activation by IL-2 in vivo, in the context of the pathogenesis of autoimmune diseases, results in P-glycoprotein-mediated multidrug resistance, and that P-glycoprotein could be an important target for the treatment of refractory autoimmune diseases.
Insights
Interleukin-2 (IL-2) activates lymphocytes, leading to P-glycoprotein expression and multidrug resistance. This suggests P-glycoprotein as a therapeutic target for autoimmune diseases.
Area of Science:
- Immunology
- Molecular Biology
- Pharmacology
Background:
- P-glycoprotein, encoded by the MDR-1 gene, confers multidrug resistance by expelling drugs from cells.
- The role of P-glycoprotein in lymphocytes and its regulation by activation stimuli like cytokines are not well understood.
Purpose of the Study:
- To investigate the transcriptional regulation of the MDR-1 gene in lymphocytes by activation stimuli, focusing on interleukin-2 (IL-2).
Main Methods:
- Lymphocytes were treated with IL-2 to observe YB-1 translocation, MDR-1 transcription, and P-glycoprotein expression.
- YB-1 anti-sense oligonucleotides and cyclosporin A were used to assess the role of YB-1 and P-glycoprotein.
Main Results:
- IL-2 induced dose-dependent translocation of the transcription factor YB-1 into the nucleus of lymphocytes.
- This led to MDR-1 transcription, P-glycoprotein expression, and subsequent efflux of dexamethasone.
- Inhibition of YB-1 or P-glycoprotein reversed these effects.
Conclusions:
- IL-2 activates YB-1, inducing P-glycoprotein expression and multidrug resistance in lymphocytes.
- This P-glycoprotein-mediated drug resistance in activated lymphocytes may contribute to autoimmune diseases.
- P-glycoprotein represents a potential therapeutic target for treating refractory autoimmune conditions.
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