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Molecular mechanisms of multidrug resistance in cancer chemotherapy
Abstract:
The occurrence of multidrug resistance (MDR) is one of the main obstacles in the successful chemotherapeutic treatment of cancer. MDR cell lines are resistant to the so-called naturally occurring anti-cancer drugs, such as anthracyclines, Vinca alkaloids and epipodophyllotoxins, but are not cross-resistant to alkylating agents, antimetabolites and cisplatin. So far, three separate forms of MDR have been characterized in more detail: classical MDR, non-Pgp MDR and atypical MDR. Although all three MDR phenotypes have much in common with respect to cross-resistance patterns, the underlying mechanisms certainly differ. Atypical MDR is associated with quantitative and qualitative alterations in topoisomerase II alpha, a nuclear enzyme that actively participates in the lethal action of cytotoxic drugs. Atypical MDR cells do not overexpress P-glycoprotein, and are unaltered in their ability to accumulate drugs. In this review we will focus on classical and non-Pgp MDR. The molecular mechanism of classical and non-Pgp MDR is transcriptional activation of membrane-bound transport proteins. These transport proteins belong to the ATP-binding cassette (ABC) superfamily of transport systems. The classical MDR phenotype is characterized by a reduced ability to accumulate drugs, due to activity of an energy-dependent uni-directional, membrane-bound, drug-efflux pump with broad substrate specificity. The classical MDR drug pump is composed of a transmembrane glycoprotein (P-glyco-protein-Pgp) with a molecular weight of 170 kD, and is, in man, encoded by the so-called multidrug resistance (MDR1) gene. Typically, non-Pgp MDR has no P-gly-coprotein expression, yet has about the same cross-resistance pattern as classical MDR. This non-Pgp MDR phenotype is caused by overexpression of the multidrug resistance-associated protein (MRP) gene, which encodes a 190 kD membrane-bound glycoprotein (MRP). MRP probably works by direct extrusion of cytotoxic drugs from the cell and/or by mediating sequestration of the drugs into intracellular compartments, both leading to a reduction in effective intracellular drug concentrations. For the classical MDR phenotype, evidence is accumulating that it plays a role indeed, in clinical drug resistance, especially in some hematological malignancies (acute myeloid leukemia, multiple myeloma and non-Hodgkin's lymphoma) and solid tumors (soft tissue sarcomas and neuroblastoma). The association of MRP with clinical drug resistance has not been elaborated, yet, and studies on MRP expression in human cancer have just begun. We found that overexpression of MRP, as determined by RNase protection assay as well as by immunohistochemistry, occurs in several human cancers, among which are cancer of the lung, esophagus, breast and ovary, and leukemias. Further studies are indicated to establish whether elevated MRP expression at diagnosis is an unfavorable prognostic factor for clinical outcome of chemotherapy.
Insights
Multidrug resistance (MDR) hinders cancer chemotherapy. This review details classical and non-P-glycoprotein MDR mechanisms, focusing on P-glycoprotein and MRP transporter proteins and their roles in clinical drug resistance.
Area of Science:
- Oncology
- Molecular Biology
- Pharmacology
Background:
- Multidrug resistance (MDR) is a significant challenge in cancer chemotherapy, limiting the efficacy of numerous anti-cancer drugs.
- Existing research has identified distinct MDR phenotypes, including classical MDR, non-P-glycoprotein (non-Pgp) MDR, and atypical MDR, each with unique underlying mechanisms.
Purpose of the Study:
- To review the molecular mechanisms of classical and non-Pgp MDR, focusing on the roles of P-glycoprotein (Pgp) and multidrug resistance-associated protein (MRP).
- To discuss the clinical relevance of these MDR mechanisms in various human cancers.
Main Methods:
- Review of existing literature on MDR mechanisms, focusing on transcriptional activation of ATP-binding cassette (ABC) superfamily transporters.
- Analysis of the roles of Pgp (encoded by MDR1 gene) in classical MDR and MRP (encoded by MRP gene) in non-Pgp MDR.
- Examination of evidence linking MDR phenotypes to clinical drug resistance in hematological malignancies and solid tumors.
Main Results:
- Classical MDR involves drug efflux mediated by Pgp, a 170 kD glycoprotein, leading to reduced intracellular drug accumulation.
- Non-Pgp MDR is associated with the overexpression of MRP, a 190 kD glycoprotein, which extrudes drugs or sequesters them intracellularly.
- Overexpression of MRP has been observed in various human cancers, including lung, breast, ovarian cancers, and leukemias.
Conclusions:
- Classical MDR, mediated by Pgp, is implicated in clinical drug resistance in several hematological and solid tumors.
- MRP overexpression is found in multiple human cancers, suggesting its potential role in clinical drug resistance, although further studies are needed.
- Elevated MRP expression may serve as a prognostic factor for chemotherapy outcomes, warranting further investigation.