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Updated: Aug 13, 2026

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Changing picture of cellular drug resistance in human leukemia
Jan Maxwell Nørgaard1, Lene Hyldahl Olesen, Peter Hokland
1Department of Hematology, Aarhus University Hospital, DK-8000 Aarhus C, Denmark. janmaxgaard@dadlnet.dk
Abstract:
A relatively well documented and seemingly firm overall picture of mechanisms involved in leukemia-cell drug resistance has evolved since the 1970s, where mechanisms involved in multidrug resistance towards anti-leukemia chemotherapeutic compounds were first described. At that time, based on available data, resistance associated with overexpression of the cell-surface transmembrane ATPase P-glycoprotein (P-170, P-gp, the product of the MDR1 gene) was described as "the" cause of multidrug resistance in cancer cells. However, during the 1980s and later on other mechanisms were described as candidate causes of multidrug resistance in human leukemia. Moreover, research of the past decade has provided us with an enormous increase in the amount of data and knowledge on the cell-biological and--to an even higher extent--the molecular-genetic processes governing cell survival and death in cancer cells. This, in turn, has improved the possibilities of designing and developing better drugs and drug combinations in leukemia. Along this line, based on rational drug design, imatinib, a 2-phenylaminopyrimidine derivative, has very recently been introduced and found to be an efficient inhibitor of the altered tyrosine kinase, which arises as a product of the BCR-ABL fusion transcript in Philadelphia chromosome positive (Ph+) cases of CML. This new compound appears to be the first of a (hopefully) large family of small organic molecules with a more specific inhibiting activity against the pathogenetic defects in leukemia as well as cancer. With this novel compound, as with all other known individual drugs and classes of chemotherapeutic drugs, drug resistance is seen. To what extent drug resistance towards this novel compound (and its successors) will follow patterns of drug resistance that are already known or entirely new mechanisms of drug resistance is yet to be seen.
Insights
Drug resistance in leukemia has evolved from P-glycoprotein to include new mechanisms. Novel targeted therapies like imatinib show promise but also face emerging drug resistance challenges.
Area of Science:
- Hematology
- Oncology
- Molecular Biology
Background:
- Leukemia drug resistance mechanisms have been studied since the 1970s, initially focusing on P-glycoprotein (P-gp).
- Over time, additional mechanisms contributing to multidrug resistance in leukemia have been identified.
- Recent advances in cell biology and molecular genetics have expanded our understanding of cancer cell survival and death pathways.
Purpose of the Study:
- To review the evolution of understanding leukemia drug resistance mechanisms.
- To highlight the development of targeted therapies based on rational drug design.
- To discuss the implications of drug resistance for novel therapeutic agents.
Main Methods:
- Literature review of historical and recent research on leukemia drug resistance.
- Analysis of molecular-genetic processes governing cancer cell survival and death.
- Examination of the development and efficacy of targeted therapies like imatinib.
Main Results:
- Initial focus on P-glycoprotein (P-gp) as the primary cause of multidrug resistance has broadened.
- Newer mechanisms of drug resistance have been identified in human leukemia.
- Imatinib, a targeted therapy, effectively inhibits the BCR-ABL tyrosine kinase in Philadelphia chromosome-positive chronic myeloid leukemia (CML).
Conclusions:
- Understanding leukemia cell resistance is crucial for developing effective treatments.
- Targeted therapies like imatinib represent a new era in leukemia treatment, offering specific inhibition of pathogenetic defects.
- The emergence of drug resistance to novel agents like imatinib necessitates further research into its patterns and mechanisms.
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