Formulation, Quality Control and Safety Issues of Nanocarriers Used for Cancer Treatment

Ismael D Bianco1,2,3, Marcelo R Ceballos1, Cristian Casado1

  • 1Centro de Excelencia en Productos y Procesos de Córdoba (CEPROCOR), Ministerio de Ciencia y Tecnología de Córdoba, Pabellón CEPROCOR, X 5164AAP, Santa María de Punilla, Córdoba - Argentina.

Insights

Nanotechnology and nanoengineering offer tunable nanocarriers for improved cancer drug delivery. Careful design is crucial, as nanocarriers possess intrinsic bioactivity impacting efficacy and safety.

Area of Science:

  • Biomedical Engineering
  • Materials Science
  • Nanotechnology

Background:

  • Cancer remains a leading cause of death with many incurable cases due to treatment resistance.
  • Existing cancer therapies face challenges in drug stability, pharmacokinetics, and cellular uptake.
  • Nanotechnology presents novel solutions for designing advanced drug delivery systems.

Purpose of the Study:

  • To review preparation methods and formulation strategies for nano/microcarriers in cancer drug delivery.
  • To explore how nanocarrier properties (structure, shape, composition) affect stability and biological interactions.
  • To highlight nanoengineering's role in developing effective nanomedicines for cancer treatment.

Main Methods:

  • Review of current literature on nano/microcarrier preparation and formulation for cancer therapy.
  • Analysis of structure-property relationships influencing nanocarrier stability and biological interactions.
  • Discussion of nanoengineering approaches for precise control over nanocarrier characteristics.

Main Results:

  • Nanocarriers offer tunable properties for enhanced drug delivery, addressing stability and uptake issues.
  • Nanocarrier structure, shape, and composition significantly impact their interaction with biological systems.
  • Nanocarriers exhibit intrinsic bioactivity, such as immunomodulatory effects, and are not inert excipients.

Conclusions:

  • Nanoengineering enables rational design of nanocarriers with controlled properties for cancer treatment.
  • Understanding nanocarrier bioactivity is essential for developing safe and effective nanomedicines.
  • Tailoring nanocarrier characteristics is key to overcoming challenges in cancer drug delivery.

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