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Updated: Jul 11, 2025

A Comprehensive Procedure to Evaluate the In Vivo Performance of Cancer Nanomedicines
Published on: March 4, 2017
Application of Nanoparticles in Cancer Treatment: A Concise Review
Mariana Sell1, Ana Rita Lopes2, Maria Escudeiro3
1Polytechnic Institute of Viseu, Av. Cor. José Maria Vale de Andrade, 3504-510 Viseu, Portugal.
Abstract:
Timely diagnosis and appropriate antitumoral treatments remain of utmost importance, since cancer remains a leading cause of death worldwide. Within this context, nanotechnology offers specific benefits in terms of cancer therapy by reducing its adverse effects and guiding drugs to selectively target cancer cells. In this comprehensive review, we have summarized the most relevant novel outcomes in the range of 2010-2023, covering the design and application of nanosystems for cancer therapy. We have established the general requirements for nanoparticles to be used in drug delivery and strategies for their uptake in tumor microenvironment and vasculature, including the reticuloendothelial system uptake and surface functionalization with protein corona. After a brief review of the classes of nanovectors, we have covered different classes of nanoparticles used in cancer therapies. First, the advances in the encapsulation of drugs (such as paclitaxel and fisetin) into nanoliposomes and nanoemulsions are described, as well as their relevance in current clinical trials. Then, polymeric nanoparticles are presented, namely the ones comprising poly lactic-co-glycolic acid, polyethylene glycol (and PEG dilemma) and dendrimers. The relevance of quantum dots in bioimaging is also covered, namely the systems with zinc sulfide and indium phosphide. Afterwards, we have reviewed gold nanoparticles (spheres and anisotropic) and their application in plasmon-induced photothermal therapy. The clinical relevance of iron oxide nanoparticles, such as magnetite and maghemite, has been analyzed in different fields, namely for magnetic resonance imaging, immunotherapy, hyperthermia, and drug delivery. Lastly, we have covered the recent advances in the systems using carbon nanomaterials, namely graphene oxide, carbon nanotubes, fullerenes, and carbon dots. Finally, we have compared the strategies of passive and active targeting of nanoparticles and their relevance in cancer theranostics. This review aims to be a (nano)mark on the ongoing journey towards realizing the remarkable potential of different nanoparticles in the realm of cancer therapeutics.
Insights
Nanotechnology enhances cancer therapy by improving drug delivery and targeting. This review covers nanosystems from 2010-2023, detailing various nanoparticles and their applications in cancer treatment and theranostics.
Area of Science:
- Biomedical Engineering
- Materials Science
- Oncology
Background:
- Cancer remains a leading global cause of death, necessitating advanced therapeutic strategies.
- Nanotechnology offers significant advantages in cancer treatment by enabling targeted drug delivery and reducing side effects.
- Nanosystems are crucial for improving the efficacy and safety of antitumoral therapies.
Purpose of the Study:
- To provide a comprehensive review of novel nanosystems for cancer therapy developed between 2010 and 2023.
- To summarize the design, application, and targeting strategies of various nanoparticles in cancer treatment.
- To highlight the potential of nanotechnology in advancing cancer theranostics.
Main Methods:
- Literature review of scientific outcomes from 2010-2023 on nanosystems for cancer therapy.
- Analysis of nanoparticle design, drug encapsulation, and tumor microenvironment interactions.
- Comparison of different nanoparticle classes including liposomes, polymeric nanoparticles, quantum dots, gold nanoparticles, iron oxide nanoparticles, and carbon nanomaterials.
Main Results:
- Nanosystems demonstrate improved drug delivery, reduced toxicity, and enhanced targeting of cancer cells.
- Various nanoparticles like nanoliposomes, polymeric nanoparticles, quantum dots, gold nanoparticles, iron oxide nanoparticles, and carbon nanomaterials show promise in preclinical and clinical settings.
- Both passive and active targeting strategies are crucial for effective cancer theranostics.
Conclusions:
- Nanotechnology presents a powerful platform for developing next-generation cancer therapeutics.
- Continued research into nanosystems will significantly advance targeted cancer treatment and theranostics.
- The reviewed nanoparticles offer diverse mechanisms for improving cancer diagnosis and therapy.
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