The potential of multi-compound nanoparticles to bypass drug resistance in cancer
C G Da Silva1, Godefridus J Peters2, Ferry Ossendorp3
1Translational Nanobiomaterials and Imaging, Department of Radiology, Bldg.1, C2-187h, Leiden University Medical Centre, Albinusdreef 2, 2333 ZA, Leiden, The Netherlands.
Purpose:
The therapeutic efficacy of conventional chemotherapy against several solid tumors is generally limited and this is often due to the development of resistance or poor delivery of the drugs to the tumor. Mechanisms of resistance may vary between cancer types. However, with current development of genetic analyses, imaging, and novel delivery systems, we may be able to characterize and bypass resistance, e.g., by inhibition of the right target at the tumor site. Therefore, combined drug treatments, where one drug will revert or obstruct the development of resistance and the other will concurrently kill the cancer cell, are rational solutions. However, drug exposure of one drug will defer greatly from the other due to their physicochemical properties. In this sense, multi-compound nanoparticles are an excellent modality to equalize drug exposure, i.e., one common physicochemical profile. In this review, we will discuss novel approaches that employ nanoparticle technology that addresses specific mechanisms of resistance in cancer.
Methods:
The PubMed literature was consulted and reviewed.
Results:
Nanoparticle technology is emerging as a dexterous solution that may address several forms of resistance in cancer. For instance, we discuss advances that address mechanisms of resistance with multi-compound nanoparticles which co-deliver chemotherapeutics with an anti-resistance agent. Promising anti-resistance agents are (1) targeted in vivo gene silencing methods aimed to disrupt key resistance gene expression or (2) protein kinase inhibitors to disrupt key resistance pathways or (3) efflux pumps inhibitors to limit drug cellular efflux.
Insights
Nanoparticle technology offers a novel approach to overcome cancer treatment resistance by co-delivering chemotherapy and anti-resistance agents. This strategy aims to improve drug efficacy and patient outcomes in solid tumors.
Area of Science:
- Oncology
- Nanotechnology
- Drug Delivery
Background:
- Conventional chemotherapy efficacy is limited by drug resistance and poor delivery in solid tumors.
- Mechanisms of cancer resistance vary, necessitating targeted therapeutic strategies.
- Combined drug treatments can overcome resistance, but differential drug exposure poses challenges.
Purpose of the Study:
- To review novel nanoparticle-based approaches for overcoming cancer resistance.
- To explore multi-compound nanoparticles for equalizing drug exposure and enhancing therapeutic outcomes.
- To discuss strategies addressing specific cancer resistance mechanisms.
Main Methods:
- Literature review of PubMed.
- Analysis of nanoparticle technology applications in cancer therapy.
- Identification of anti-resistance agents and delivery systems.
Main Results:
- Nanoparticle technology shows promise in addressing various cancer resistance mechanisms.
- Multi-compound nanoparticles co-deliver chemotherapeutics with anti-resistance agents.
- Effective anti-resistance strategies include gene silencing, protein kinase inhibitors, and efflux pump inhibitors.
Conclusions:
- Nanoparticle-based drug delivery systems are a promising strategy to overcome cancer resistance.
- Multi-compound nanoparticles offer a unified approach to equalize drug exposure and improve treatment efficacy.
- Targeted inhibition of resistance mechanisms via nanoparticles presents a rational therapeutic solution.
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