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P-glycoprotein as multidrug transporter: a critical review of current multidrug resistant cell lines
1Department of Oncology, University of Copenhagen, Herlev Hospital, Denmark.
Abstract:
MDR has been studied extensively in mammalian cell lines. According to usual practice, the MDR phenotype is characterized by the following features: cross resistance to multiple chemotherapeutic agents (lipophilic cations), defective intracellular drug accumulation and retention, overexpression of P-gp (often accompanied by gene amplification), and reversal of the phenotype by addition of calcium channel blockers. An hypothesis for the function of P-gp has been proposed in which P-gp acts as a carrier protein that actively extrudes MDR compounds out of the cells. However, basic questions, such as what defines the specificity of the pump and how is energy for active efflux transduced, remain to be answered. Furthermore, assuming that P-gp acts as a drug transporter, one will expect a relationship between P-gp expression and accumulation defects in MDR cell lines. A review of papers reporting 97 cell lines selected for resistance to the classical MDR compounds has revealed that a connection exists in most of the reported cell lines. However, several exceptions can be pointed out. Furthermore, only a limited number of well characterized series of sublines with different degrees of resistance to a single agent have been reported. In many of these, a correlation between P-gp expression and transport properties can not be established. Co-amplification of genes adjacent to the mdr1 gene, mutations [122], splicing of mdr1 RNA [123], modulation of P-gp by phosphorylation [124] or glycosylation [127], or experimental conditions [26,78] could account for some of the complexity of the phenotype and the absence of correlation in some of the cell lines. However, both cell lines with overexpression of P-gp without increased efflux [i.e., 67,75] and cell lines without P-gp expression and accumulation defects/increased efflux [i.e., 25,107] have been reported. Thus, current results from MDR cell lines contradict--but do not exclude--that P-gp acts as multidrug transporter. Other models for the mechanism of resistance have been proposed: (1) An energy-dependent permeability barrier working with greater efficacy in resistant cells. This hypothesis is supported by studies of influx which, although few, all except one demonstrate decreased influx in resistant cells; (2) Resistant cells have a greater endosomal volume, and a greater exocytotic activity accounts for the efflux.(ABSTRACT TRUNCATED AT 400 WORDS)
Insights
Multidrug resistance (MDR) in mammalian cells involves P-glycoprotein (P-gp) efflux pumps. However, the direct correlation between P-gp expression and drug accumulation defects in MDR cell lines is complex and not always observed.
Area of Science:
- Cell Biology
- Biochemistry
- Pharmacology
Background:
- Multidrug resistance (MDR) is extensively studied in mammalian cell lines.
- The MDR phenotype typically includes cross-resistance to chemotherapeutics, defective drug accumulation, and P-glycoprotein (P-gp) overexpression.
- P-gp is hypothesized to function as an active efflux carrier, but its specificity and energy transduction remain unclear.
Purpose of the Study:
- To investigate the relationship between P-gp expression and drug accumulation defects in multidrug-resistant cell lines.
- To analyze existing literature for correlations and exceptions regarding P-gp function in MDR.
- To explore alternative models for MDR mechanisms.
Main Methods:
- Literature review of 97 cell lines selected for resistance to classical MDR compounds.
- Analysis of reported correlations between P-gp expression and transport properties in MDR sublines.
- Examination of studies on drug influx and cellular characteristics in resistant cells.
Main Results:
- A connection between P-gp expression and accumulation defects exists in most reported MDR cell lines.
- Several exceptions were noted, with some cell lines showing P-gp overexpression without increased efflux, and others lacking P-gp but exhibiting accumulation defects.
- Limited well-characterized subline series with varying resistance levels hindered definitive correlation establishment.
Conclusions:
- Current findings from MDR cell lines present a complex picture that contradicts, but does not exclude, P-gp acting solely as a multidrug transporter.
- Alternative MDR mechanisms, such as an energy-dependent permeability barrier or increased endosomal volume with exocytotic activity, are proposed.
- Further research is needed to fully elucidate the multifaceted mechanisms underlying multidrug resistance.