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Updated: Aug 30, 2025

Nanomechanics of Drug-target Interactions and Antibacterial Resistance Detection
Published on: October 25, 2013
Advances in nanobiotechnology-propelled multidrug resistance circumvention of cancer
Jie Chen1,2, Xin Yu3, Xinyu Liu3
1Central Laboratory, Shanghai Tenth People's Hospital, Tongji University School of Medicine, No. 301 Yan-chang-zhong Road, Shanghai 200072, P. R. China. zhang1986kun@126.com.
Abstract:
Multidrug resistance (MDR) is one of the main reasons for the failure of tumor chemotherapy and has a negative influence on the therapeutic effect. MDR is primarily attributable to two mechanisms: the activation of efflux pumps for drugs, which can transport intracellular drug molecules from cells, and other mechanisms not related to efflux pumps, e.g., apoptosis prevention, strengthened DNA repair, and strong oxidation resistance. Nanodrug-delivery systems have recently attracted much attention, showing some unparalleled advantages such as drug targeting and reduced drug efflux, drug toxicity and side effects in reversing MDR. Notably, in drug-delivery platforms based on nanotechnology, multiple therapeutic strategies are integrated into one system, which can compensate for the limitations of individual strategies. In this review, the mechanisms of tumor MDR as well as common vectors and nanocarrier-combined therapy strategies to reverse MDR were summarized to promote the understanding of the latest progress in improving the efficiency of chemotherapy and synergistic strategies. In particular, the adoption of nanotechnology has been highlighted and the principles underlying this phenomenon have been elucidated, which may provide guidance for the development of more effective anticancer strategies.
Insights
Multidrug resistance (MDR) in cancer chemotherapy can be overcome using nanodrug-delivery systems. These systems enhance drug targeting and reduce resistance mechanisms, improving treatment efficacy.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Multidrug resistance (MDR) significantly limits the effectiveness of cancer chemotherapy.
- MDR arises from mechanisms like increased drug efflux and resistance to apoptosis.
- Nanotechnology offers novel strategies to overcome MDR.
Purpose of the Study:
- To review the mechanisms underlying tumor MDR.
- To summarize nanodrug-delivery systems and nanocarrier-combined therapies for reversing MDR.
- To highlight the role of nanotechnology in improving chemotherapy and synergistic strategies.
Main Methods:
- Literature review of MDR mechanisms.
- Analysis of nanodrug-delivery systems and nanocarrier strategies.
- Focus on nanotechnology applications in overcoming MDR.
Main Results:
- Nanodrug-delivery systems demonstrate advantages in drug targeting and reducing drug efflux.
- Integrated nanotech platforms can combine multiple therapeutic strategies to address MDR limitations.
- Nanotechnology shows promise in enhancing chemotherapy efficiency.
Conclusions:
- Understanding MDR mechanisms is crucial for developing effective anticancer strategies.
- Nanotechnology-based approaches offer significant potential for reversing MDR.
- Further development of nanotech-driven synergistic strategies can improve cancer treatment outcomes.
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