Transport of new non-cross-resistant antitumor compounds of the benzoperimidine family in multidrug resistant cells

流出 P-糖蛋白 细胞内 细胞毒性 多重耐药 细胞培养 运输机 K562细胞 细胞 生物 膜转运 介导转运 化学 细胞生物学 生物化学 药理学 体外 基因 抗生素 遗传学
作者
Katarzyna Tkaczyk-Gobis,Jolanta Tarasiuk,Olivier Seksek,Barbara Stefañska,Edward Borowski,Arlette Garnier-Suillerot
出处
期刊:European Journal of Pharmacology [Elsevier BV]
卷期号:413 (2-3): 131-141 被引量:19
标识
DOI:10.1016/s0014-2999(01)00728-2
摘要

Multidrug resistance (MDR) phenotype in mammalian cells is often correlated with overexpression of P-glycoprotein or multidrug resistance-associated protein (MRP1). Both proteins are energy-dependent drug efflux pumps that efficiently reduce the intracellular accumulation and hence the cytotoxicity of many natural cytotoxins. The influx and efflux of drugs across the cell membrane are in large part responsible for their intracellular concentrations, and in the search for new compounds able to overcome MDR, it is of prime importance to determine the molecular parameters whose modification would lead to an increase in the kinetics of uptake and/or to a decrease in the pump-mediated efflux. Here, we studied three members of a new family of benzoperimidine antitumor compounds which exhibit comparable cytotoxicity towards resistant cells expressing P-glycoprotein, or MRP1, and sensitive cells. We used spectrofluorometric methods to determine the kinetics of the uptake and release of these three drugs in different cell lines: the erythroleukemia cell line K562 and the resistant K562/Adr expressing P-glycoprotein, the small-cell lung cancer cell line GLC4 and resistant GLC4/Adr expressing MRP1. We also studied, using confocal microscopy, the intracellular distribution of these drugs in NIH/3T3 cells. Our data show that (i) the kinetics for the uptake of these drugs is very rapid, higher than 2×10−17 mole cell−1 s−1, (ii) the drugs are strongly accumulated in the nucleus and lysosomes, (iii) the three drugs are recognized and pumped out by both transporters, as shown by the inhibition of P-glycoprotein- and MRP1-mediated efflux of pirarubicin by benzoperimidine, with inhibitory constants of 1.5 and 2.1 μM for P-glycoprotein and MRP1, respectively, suggesting that benzoperimidine is transported by the two transporters with Km∼2 μM. In conclusion, the fast uptake kinetics of the benzoperimidines counterbalance their efflux by P-glycoprotein and MRP1.

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