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Nanomedicines for combating multidrug resistance of cancer
Ya-Xuan Zhu1, Hao-Ran Jia1, Qiu-Yi Duan1
1State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing, China.
Abstract:
Chemotherapy typically involves the use of specific chemodrugs to inhibit the proliferation of cancer cells, but the frequent emergence of a variety of multidrug-resistant cancer cells poses a tremendous threat to our combat against cancer. The fundamental causes of multidrug resistance (MDR) have been studied for decades, and can be generally classified into two types: one is associated with the activation of diverse drug efflux pumps, which are responsible for translocating intracellular drug molecules out of the cells; the other is linked with some non-efflux pump-related mechanisms, such as antiapoptotic defense, enhanced DNA repair ability, and powerful antioxidant systems. To overcome MDR, intense efforts have been made to develop synergistic therapeutic strategies by introducing MDR inhibitors or combining chemotherapy with other therapeutic modalities, such as phototherapy, gene therapy, and gas therapy, in the hope that the drug-resistant cells can be sensitized toward chemotherapeutics. In particular, nanotechnology-based drug delivery platforms have shown the potential to integrate multiple therapeutic agents into one system. In this review, the focus was on the recent development of nanostrategies aiming to enhance the efficiency of chemotherapy and overcome the MDR of cancer in a synergistic manner. Different combinatorial strategies are introduced in detail and the advantages as well as underlying mechanisms of why these strategies can counteract MDR are discussed. This review is expected to shed new light on the design of advanced nanomedicines from the angle of materials and to deepen our understanding of MDR for the development of more effective anticancer strategies. This article is categorized under: Nanotechnology Approaches to Biology > Nanoscale Systems in Biology Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease.
Insights
Nanotechnology offers synergistic strategies to overcome multidrug resistance (MDR) in cancer chemotherapy. These nanomedicines combine therapies to sensitize drug-resistant cancer cells, enhancing treatment efficacy.
Area of Science:
- Nanotechnology approaches to biology
- Nanoscale systems in biology
- Therapeutic approaches and drug discovery
- Nanomedicine for oncologic disease
Background:
- Multidrug resistance (MDR) in cancer chemotherapy is a major clinical challenge.
- MDR arises from drug efflux pumps and non-efflux mechanisms like anti-apoptosis and enhanced DNA repair.
- Overcoming MDR requires synergistic therapeutic strategies and novel drug delivery systems.
Purpose of the Study:
- To review recent nanostrategies for enhancing chemotherapy efficiency.
- To explore synergistic approaches for overcoming cancer multidrug resistance.
- To discuss the advantages and mechanisms of nanomedicines in combating MDR.
Main Methods:
- Review of recent literature on nanostrategies for cancer therapy.
- Detailed introduction of different combinatorial nanomedicine strategies.
- Discussion of underlying mechanisms of MDR and nanomedicine interventions.
Main Results:
- Nanotechnology-based platforms can integrate multiple therapeutic agents.
- Synergistic strategies effectively enhance chemotherapy efficacy against MDR cancer.
- Various nanostrategies demonstrate potential in sensitizing resistant cancer cells.
Conclusions:
- Advanced nanomedicines offer promising solutions for overcoming cancer multidrug resistance.
- Understanding MDR mechanisms is crucial for designing effective nanomedicines.
- Nanomaterials play a key role in developing next-generation anticancer strategies.
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