Nanotechnology integration in oncology for advanced nanoparticle based strategies in targeted cancer diagnosis and

Yosri A Fahim1, Ibrahim W Hasani2,3, Samer Kabba2

  • 1Department of Basic Medical Sciences, Health Sector, Galala University, Suez, 43511, Egypt. Yosri.Fahim@gu.edu.eg.

Discover Nano
|June 10, 2026
PubMed

Insights

Nanotechnology shows promise for cancer therapy by improving drug delivery and targeting. However, challenges in clinical translation, including variability and toxicity, must be addressed for successful integration into precision cancer treatment.

Area of Science:

  • Oncology and Nanomedicine
  • Biomaterials and Drug Delivery

Background:

  • Conventional cancer therapies face limitations like poor tumor selectivity and systemic toxicity.
  • Nanotechnology offers novel solutions for targeted drug delivery, controlled release, and combined therapy/diagnostics in oncology.

Purpose of the Study:

  • To critically review nanoparticle synthesis, characterization, and tumor-targeting mechanisms for cancer therapy.
  • To analyze the translational limitations and challenges hindering the clinical application of nanomedicines in oncology.

Main Methods:

  • Examination of various nanoparticle synthesis strategies (bottom-up, top-down, microfluidic, green methods).
  • Review of structural and physicochemical characterization techniques for nanocarriers.
  • Analysis of passive (EPR) and active targeting mechanisms for tumor delivery.

Main Results:

  • Nanoparticles enhance drug solubility, circulation time, and cellular uptake via passive and active targeting.
  • Despite preclinical success, clinical translation is inconsistent due to EPR variability, toxicity, and regulatory hurdles.
  • Approved nanomedicines demonstrate clinical impact, while others show variable benefits, highlighting a gap between promise and performance.

Conclusions:

  • Successful integration of nanotechnology into precision cancer therapy requires addressing batch variability, nanotoxicology standardization, patient heterogeneity, and regulatory challenges.
  • Further research and development are needed to overcome translational barriers and optimize nanomedicine performance in clinical settings.
  • Nanotechnology holds significant potential to revolutionize cancer treatment through improved efficacy and reduced side effects.

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