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Updated: Aug 3, 2025

Implementation of In Vitro Drug Resistance Assays: Maximizing the Potential for Uncovering Clinically Relevant Resistance Mechanisms
Published on: December 9, 2015
Overcoming Cancer Multi-drug Resistance (MDR): Reasons, mechanisms, nanotherapeutic solutions, and challenges
Chunyan Duan1, Mingjia Yu1, Jiyuan Xu1
1School of New Energy and Environmental Protection Engineering, Foshan Polytechnic, Foshan 528137, PR China.
Abstract:
Multi-drug resistance (MDR) in cancer cells, either intrinsic or acquired through various mechanisms, significantly hinders the therapeutic efficacy of drugs. Typically, the reduced therapeutic performance of various drugs is predominantly due to the inherent over expression of ATP-binding cassette (ABC) transporter proteins on the cell membrane, resulting in the deprived uptake of drugs, augmenting drug detoxification, and DNA repair. In addition to various physiological abnormalities and extensive blood flow, MDR cancer phenotypes exhibit improved apoptotic threshold and drug efflux efficiency. These severe consequences have substantially directed researchers in the fabrication of various advanced therapeutic strategies, such as co-delivery of drugs along with various generations of MDR inhibitors, augmented dosage regimens and frequency of administration, as well as combinatorial treatment options, among others. In this review, we emphasize different reasons and mechanisms responsible for MDR in cancer, including but not limited to the known drug efflux mechanisms mediated by permeability glycoprotein (P-gp) and other pumps, reduced drug uptake, altered DNA repair, and drug targets, among others. Further, an emphasis on specific cancers that share pathogenesis in executing MDR and effluxed drugs in common is provided. Then, the aspects related to various nanomaterials-based supramolecular programmable designs (organic- and inorganic-based materials), as well as physical approaches (light- and ultrasound-based therapies), are discussed, highlighting the unsolved issues and future advancements. Finally, we summarize the review with interesting perspectives and future trends, exploring further opportunities to overcome MDR.
Insights
Multi-drug resistance (MDR) in cancer hinders treatment by efflux pumps like P-gp. This review explores MDR mechanisms and novel strategies, including nanomaterials and physical therapies, to overcome drug resistance in cancer.
Area of Science:
- Oncology
- Biochemistry
- Nanotechnology
Background:
- Multi-drug resistance (MDR) in cancer significantly reduces therapeutic efficacy.
- Overexpression of ATP-binding cassette (ABC) transporters drives MDR by limiting drug uptake and increasing efflux.
- MDR cancer cells exhibit enhanced drug efflux, altered DNA repair, and increased apoptotic thresholds.
Purpose of the Study:
- To review the multifaceted mechanisms underlying MDR in cancer.
- To highlight specific cancers with shared MDR pathogenesis and drug efflux mechanisms.
- To discuss advanced therapeutic strategies for overcoming MDR.
Main Methods:
- Review of existing literature on MDR mechanisms and therapeutic approaches.
- Analysis of ATP-binding cassette (ABC) transporter functions, including P-glycoprotein (P-gp).
- Exploration of nanomaterial-based designs and physical therapies (light, ultrasound).
Main Results:
- MDR involves complex mechanisms including drug efflux pumps, reduced drug uptake, and altered DNA repair.
- Specific cancers share common pathways in developing and executing MDR.
- Nanomaterials and physical therapies show promise in overcoming MDR.
Conclusions:
- Understanding MDR mechanisms is crucial for developing effective cancer treatments.
- Advanced strategies like combinatorial therapies, nanomaterials, and physical methods offer new avenues to combat MDR.
- Further research is needed to address unsolved issues and optimize future MDR-targeting therapies.
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