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Published on: August 11, 2011
Modulation of multidrug resistance gene expression by dexamethasone in cultured hepatoma cells
J Y Zhao1, M Ikeguchi, T Eckersberg
1Department of Molecular Pathology, University of Texas M. D. Anderson Cancer Center, Houston 77030.
Abstract:
Considerable evidence has accumulated indicating that overexpression of P-glycoproteins encoded by the multidrug-resistance (mdr) genes is responsible for the development of collateral resistance to a number of structurally and functionally dissimilar cytotoxic compounds in animal cells. There are three mdr genes (mdr1, mdr2, and mdr3) in the mouse genome and two (MDR1 and MDR2) in the human genome; however, only two mouse genes (mdr1 and mdr3) and one human gene (MDR1) can confer multidrug resistance upon transfection into otherwise drug-sensitive cells. Using RNase protection assay we report here that the steady-state levels of mdr1 and mdr3 messenger RNA were elevated in mouse hepatoma cells treated with dexamethasone (Dex); whereas no induction of mdr2 gene was found. Western blot analyses using anti-mdr1 and anti-mdr3 antibodies revealed that the encoded proteins appeared to be increased, but at much reduced levels. The induction was time and Dex concentration dependent. Nuclear run-on experiments demonstrated that the induction was at least in part by transcriptional control. The induction apparently required new protein synthesis since no increases in mdr1 and mdr3 transcripts was found when cultured cells were simultaneously treated with Dex and cycloheximide. Neither mdr1 nor mdr3 gene was induced in the Dex-treated nonhepatoma cell lines, LMtk- and NIH3T3. Similarly, MDR1 messenger RNA levels were elevated in the Dex-treated human hepatoma line, HepG2, but not in the nonhepatoma, HeLa. This study demonstrated that the hormonal regulation of mdr gene expression is gene and cell type specific.
Insights
Dexamethasone (Dex) treatment induces multidrug resistance (mdr) gene expression in mouse and human hepatoma cells. This hormonal regulation of mdr genes is specific to gene type and cell type.
Area of Science:
- Molecular Biology
- Genetics
- Pharmacology
Background:
- Overexpression of P-glycoproteins, encoded by multidrug-resistance (mdr) genes, contributes to drug resistance in animal cells.
- Specific mdr genes (mouse: mdr1, mdr3; human: MDR1) confer multidrug resistance upon transfection.
- The hormonal regulation of mdr gene expression is not fully understood.
Purpose of the Study:
- To investigate the effect of dexamethasone (Dex) on mdr gene expression in hepatoma cells.
- To determine if the induction of mdr genes by Dex is gene and cell type specific.
Main Methods:
- RNase protection assay to measure messenger RNA (mRNA) levels.
- Western blot analysis to detect protein expression.
- Nuclear run-on experiments to assess transcriptional control.
- Treatment with Dex, cycloheximide, and various cell lines (mouse hepatoma, non-hepatoma; human hepatoma, non-hepatoma).
Main Results:
- Dex treatment elevated mdr1 and mdr3 mRNA levels in mouse hepatoma cells, but not mdr2.
- Dex-induced protein levels for mdr1 and mdr3 were increased but at reduced levels compared to mRNA.
- Induction was dependent on Dex concentration and time, and required new protein synthesis.
- Dex did not induce mdr1 or mdr3 in mouse non-hepatoma cell lines (LMtk-, NIH3T3).
- MDR1 mRNA levels increased in human hepatoma (HepG2) cells but not in HeLa cells upon Dex treatment.
Conclusions:
- Hormonal regulation of mdr gene expression by Dex is both gene-specific and cell type-specific.
- The findings highlight the complex regulation of multidrug resistance genes in different cellular contexts.

