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Co-delivery systems: hope for clinical application?
Sepideh Nezhadi1, Farid Abedin Dorkoosh2,3
1Department of Pharmaceutics, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Cancer is a multidimensional and challenging disease to handle. Current statistics reveal that we are far from satisfying cancer treatment. Taking advantage of different therapeutic agents that affect multiple pathways has been established as highly productive. Nevertheless, owing to several hindrances to conventional combination therapy, such as lack of tumor targeting, non-uniform pharmacokinetic of the combined drugs, and off-target side effects, it is well documented that this treatment approach is unlikely to address all the difficulties observed in monotherapy. Co-delivery systems could enhance the therapeutic efficacy of the combination therapy by targeting cancer cells and improving the pharmacokinetic and physicochemical properties of the therapeutic agents. Nevertheless, it seems that present knowledge in responding to the challenges in cancer treatment is still inadequate and far from optimal treatment, which highlights the urgent need for systematic studies direct to identify various aspects of co-delivery systems. Accordingly, to gather informative data, save time, and achieve superior results, the following steps are necessary: (1) implementing computational methods to predict drug-drug interactions (DDIs) in vitro and in vivo, (2) meticulous cancer studies at the cellular and molecular levels to obtain specific criteria for selecting preclinical and clinical models, (3) extensive physiological and pharmacokinetic study of nanocarriers behavior in preclinical models, and (4) finding the optimal formulation and analyzing its behavior in cellular and animal models facilitates bridging in vivo models to clinical trials. This review aims to deliver an overview of co-delivery systems, rationales, and suggestions for further studies in this field.
Insights
Co-delivery systems offer improved cancer treatment by targeting tumors and enhancing drug properties. Further systematic studies are crucial for optimizing these systems for clinical success.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Cancer treatment faces challenges with conventional combination therapy due to poor targeting and side effects.
- Co-delivery systems show promise in enhancing therapeutic efficacy by improving drug properties and targeting cancer cells.
- Current knowledge on co-delivery systems is insufficient, necessitating systematic research for optimal cancer treatment.
Purpose of the Study:
- To provide an overview of co-delivery systems in cancer therapy.
- To discuss the rationales behind using co-delivery systems.
- To suggest directions for future research in cancer co-delivery systems.
Main Methods:
- Implementing computational methods for predicting drug-drug interactions (DDIs).
- Conducting cellular and molecular cancer studies to select appropriate preclinical and clinical models.
- Performing physiological and pharmacokinetic studies of nanocarrier behavior.
- Optimizing formulations and analyzing their behavior in cellular and animal models.
Main Results:
- Co-delivery systems can overcome limitations of conventional combination cancer therapy.
- Systematic studies are essential for advancing co-delivery system development.
- Integrating computational, cellular, and preclinical models is key to successful clinical translation.
Conclusions:
- Co-delivery systems represent a promising strategy for improving cancer treatment outcomes.
- Further systematic research is urgently needed to optimize co-delivery systems.
- Bridging preclinical findings to clinical trials requires rigorous formulation and behavior analysis.
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