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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.
Abstract:
Cancer is becoming a leading cause of death in the last years. Although we have seen great advances, most human cancers remain incurable because many patients either do not respond or relapse to treatment. Several lines of research are disclosing new therapeutic targets which lead to new active drugs. However, there are still unsolved problems related to stabilization of the pharmaceutical ingredient in aqueous and biological media, pharmacokinetic and pharmacodynamic profiles and cellular uptake to name just a few. In this context, nanotechnology with the emerging tools of nanoengineering offers many possibilities to guide the design of new products with improved safety and efficacy. The presence of several reacting groups and the sensitivity of their properties to small changes in composition make nanocarriers tunable not only to modify their stability in a particular environment but also to respond to changes in biological situations in the right place and time frame. This review summarizes the main preparation methods and formulation strategies of nano and microcarriers designed for drug delivery applications for cancer treatment and will attempt to give a glimpse on how their structure, shape, physico-chemical properties and chemical composition may affect their overall stability and interactions with biological systems. We will also cover aspects of nanoengineering that are opening new opportunities for the development of more effective nanomedicines, emphasizing on the challenges that have to be kept in mind when dealing with biological activities of nanocarriers that depend not only on their chemical composition but also on those of the structures formed by them and by their interactions with biological systems. From this, a very important issue that emerges is that nanocarriers frequently display an intrinsic bioactivity (i.e.: immunomodulatory). Therefore, it should be stressed that nanocarriers cannot be considered as inert, biocompatible excipients. Furthermore, their biological activity will mostly depend on the physical and chemical properties of the structures of the nanoparticles that are presented to living systems. As an approach to the rational design of new pharmaceutical products, nanoengineering is providing new tools for the precise control of the properties of nanocarriers for cancer treatment.
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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