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Updated: Aug 27, 2025

Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Emerging nanotechnology-based therapeutics to combat multidrug-resistant cancer
Priya Yadav1, Suresh V Ambudkar2, N Rajendra Prasad3
1Department of Biochemistry and Biotechnology, Annamalai University, Annamalainagar, Tamil Nadu, 608 002, India. priyayadav87@gmail.com.
Abstract:
Cancer often develops multidrug resistance (MDR) when cancer cells become resistant to numerous structurally and functionally different chemotherapeutic agents. MDR is considered one of the principal reasons for the failure of many forms of clinical chemotherapy. Several factors are involved in the development of MDR including increased expression of efflux transporters, the tumor microenvironment, changes in molecular targets and the activity of cancer stem cells. Recently, researchers have designed and developed a number of small molecule inhibitors and derivatives of natural compounds to overcome various mechanisms of clinical MDR. Unfortunately, most of the chemosensitizing approaches have failed in clinical trials due to non-specific interactions and adverse side effects at pharmacologically effective concentrations. Nanomedicine approaches provide an efficient drug delivery platform to overcome the limitations of conventional chemotherapy and improve therapeutic effectiveness. Multifunctional nanomaterials have been found to facilitate drug delivery by improving bioavailability and pharmacokinetics, enhancing the therapeutic efficacy of chemotherapeutic drugs to overcome MDR. In this review article, we discuss the major factors contributing to MDR and the limitations of existing chemotherapy- and nanocarrier-based drug delivery systems to overcome clinical MDR mechanisms. We critically review recent nanotechnology-based approaches to combat tumor heterogeneity, drug efflux mechanisms, DNA repair and apoptotic machineries to overcome clinical MDR. Recent successful therapies of this nature include liposomal nanoformulations, cRGDY-PEG-Cy5.5-Carbon dots and Cds/ZnS core-shell quantum dots that have been employed for the effective treatment of various cancer sub-types including small cell lung, head and neck and breast cancers.
Insights
Multidrug resistance (MDR) in cancer hinders chemotherapy. Nanomedicine offers a promising solution by enhancing drug delivery and overcoming MDR mechanisms for improved cancer treatment outcomes.
Area of Science:
- Oncology
- Nanomedicine
- Drug Delivery
Background:
- Multidrug resistance (MDR) is a major cause of chemotherapy failure.
- Factors contributing to MDR include efflux transporters, tumor microenvironment, and cancer stem cells.
- Current chemosensitizing agents often fail due to side effects and lack of specificity.
Purpose of the Study:
- To review the factors contributing to MDR in cancer.
- To discuss the limitations of current chemotherapy and nanocarrier-based drug delivery systems.
- To critically evaluate nanotechnology-based approaches for overcoming MDR.
Main Methods:
- Review of scientific literature on MDR mechanisms and nanomedicine.
- Analysis of nanotechnology-based strategies to combat tumor heterogeneity, drug efflux, DNA repair, and apoptosis.
- Examination of specific nanomaterial examples like liposomal nanoformulations and quantum dots.
Main Results:
- Nanomedicine approaches improve drug bioavailability, pharmacokinetics, and therapeutic efficacy.
- Multifunctional nanomaterials effectively target MDR mechanisms.
- Successful examples include liposomal nanoformulations, carbon dots, and core-shell quantum dots.
Conclusions:
- Nanotechnology-based drug delivery systems show significant potential to overcome clinical MDR.
- These approaches offer improved therapeutic effectiveness for various cancer types.
- Further research into nanomedicine is crucial for advancing cancer treatment.
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