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Induction of P-glycoprotein expression and function in human intestinal epithelial cells (T84)
I S Haslam1, K Jones, T Coleman
1Epithelial Research Group, Institute for Cell and Molecular Biosciences, University of Newcastle Upon Tyne, Medical School, Newcastle Upon Tyne NE24HH, UK.
Abstract:
Intestinal induction of Pgp is known to limit the oral availability of certain drug compounds and give rise to detrimental drug-drug interactions. We have investigated the induction of P-glycoprotein (Pgp; MDR1) activity in a human intestinal epithelial cell line (T84) following pre-exposure to a panel of drug compounds, reported to be Pgp substrates, inhibitors or inducers. Human MDR1-transfected MDCKII epithelial monolayers were used to assess Pgp substrate interactions and inhibition of digoxin secretion by the selected drug compounds. The T84 cell line was used to assess induction of Pgp-mediated digoxin secretion following pre-exposure to the same compounds. Changes in gene expression (MDR1, MRP2, PXR and CAR) were determined by quantitative RT-PCR. Net transepithelial digoxin secretion was increased (1.3 fold, n=6, P<0.05) following pre-exposure to the PXR activator hyperforin (100nM, 72h), as was MDR1 mRNA expression (3.0 fold, n=4, P<0.05). A number of Pgp substrates (quinidine, amprenavir, irinotecan, topotecan, atorvastatin and erythromycin) induced net digoxin secretion, as did the non-Pgp substrate artemisinin. Various non-Pgp substrates demonstrated inhibition of digoxin secretion (verapamil, mifepristone, clotrimazole, mevastatin, diltiazem and isradipine) but did not induce Pgp-mediated digoxin secretion. Of the compounds that increased Pgp secretion, quinidine, topotecan, atorvastatin and amprenavir pre-exposure also elevated MDR1 mRNA levels, whereas erythromycin, irinotecan and artemisinin displayed no change in transcript levels. This indicates possible post-translational regulation of digoxin secretion. Finally, a strong correlation between drug modulation of MRP2 and PXR mRNA expression levels was evident.
Insights
Certain drugs can induce P-glycoprotein (Pgp) in the intestine, affecting oral drug availability and interactions. This study investigated Pgp induction by various compounds in intestinal cells, revealing complex regulatory mechanisms.
Area of Science:
- Pharmacology
- Molecular Biology
- Cell Biology
Background:
- Intestinal P-glycoprotein (Pgp; MDR1) induction impacts oral drug bioavailability and can cause drug-drug interactions.
- Understanding Pgp regulation is crucial for predicting drug efficacy and safety.
- Previous studies highlight Pgp's role in drug transport and metabolism.
Purpose of the Study:
- To investigate the induction of P-glycoprotein (Pgp) activity in a human intestinal cell line (T84) after pre-exposure to various drug compounds.
- To assess Pgp substrate interactions and inhibition using MDR1-transfected MDCKII cells.
- To examine changes in gene expression, including MDR1, MRP2, PXR, and CAR.
Main Methods:
- Utilized human MDR1-transfected MDCKII epithelial monolayers to evaluate Pgp substrate interactions and digoxin secretion inhibition.
- Employed the T84 cell line to assess Pgp-mediated digoxin secretion induction following pre-exposure to drug compounds.
- Quantified changes in MDR1, MRP2, PXR, and CAR gene expression using quantitative RT-PCR.
Main Results:
- Pre-exposure to the PXR activator hyperforin increased net transepithelial digoxin secretion and MDR1 mRNA expression.
- Several Pgp substrates, including quinidine and atorvastatin, induced digoxin secretion, with some also elevating MDR1 mRNA levels.
- A strong correlation was observed between drug modulation of MRP2 and PXR mRNA expression.
Conclusions:
- Drug-induced Pgp activity in intestinal cells can be modulated by various compounds, affecting drug transport.
- Observed induction of digoxin secretion by certain Pgp substrates suggests potential post-translational regulation mechanisms.
- The correlation between MRP2 and PXR mRNA modulation indicates complex regulatory networks involved in drug response.

