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Preparation of Neutrally-charged, pH-responsive Polymeric Nanoparticles for Cytosolic siRNA Delivery
Published on: May 2, 2019
Enhancing siRNA cancer therapy: Multifaceted strategies with lipid and polymer-based carrier systems
Nazgol Karimi Dastgerdi1, Nazanin Karimi Dastgerdi2, Hulya Bayraktutan3
1Division of Molecular Therapeutics and Formulation, School of Pharmacy, University of Nottingham, NG7 2RD, UK; Department of Pharmaceutics, Faculty of Pharmacy, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
Cancers are increasing in prevalence and many challenges remain for their treatment, such as chemoresistance and toxicity. In this context, siRNA-based therapeutics have many potential advantages for cancer therapies as a result of their ability to reduce or prevent expression of specific cancer-related genes. However, the direct delivery of naked siRNA is hindered by issues like enzymatic degradation, insufficient cellular uptake, and poor pharmacokinetics. Hence, the discovery of a safe and efficient delivery vehicle is essential. This review explores various lipid and polymer-based delivery systems for siRNA in cancer treatment. Both polymers and lipids have garnered considerable attention as carriers for siRNA delivery. While all of these systems protect siRNA and enhance transfection efficacy, each exhibits its unique strengths. Lipid-based delivery systems, for instance, demonstrate high entrapment efficacy and utilize cost-effective materials. Conversely, polymeric-based delivery systems offer advantages through chemical modifications. Nonetheless, certain drawbacks still limit their usage. To address these limitations, combining different materials in formulations (lipid, polymer, or targeting agent) could enhance pharmaceutical properties, boost transfection efficacy, and reduce side effects. Furthermore, co-delivery of siRNA with other therapeutic agents presents a promising strategy to overcome cancer resistance. Lipid-based delivery systems have been demonstrated to encapsulate many therapeutic agents and with high efficiency, but most are limited in terms of the functionalities they display. In contrast, polymeric-based delivery systems can be chemically modified by a wide variety of routes to include multiple components, such as release or targeting elements, from the same materials backbone. Accordingly, by incorporating multiple materials such as lipids, polymers, and/or targeting agents in RNA formulations it is possible to improve the pharmaceutical properties and therapeutic efficacy while reducing side effects. This review focuses on strategies to improve siRNA cancer treatments and discusses future prospects in this important field.
Insights
Developing effective siRNA delivery systems is crucial for cancer therapy. This review examines lipid and polymer-based carriers, highlighting strategies to improve their efficacy and reduce side effects for better cancer treatment outcomes.
Area of Science:
- Oncology
- Nanotechnology
- Biomedical Engineering
Background:
- Cancer prevalence is rising, with chemoresistance and toxicity posing significant treatment challenges.
- Small interfering RNA (siRNA) therapeutics offer targeted gene silencing for cancer, but naked siRNA faces delivery hurdles like degradation and poor uptake.
- Efficient and safe delivery vehicles are essential for successful siRNA-based cancer therapies.
Purpose of the Study:
- To review lipid and polymer-based delivery systems for siRNA in cancer treatment.
- To explore strategies for enhancing siRNA delivery efficacy and overcoming limitations.
- To discuss future prospects for improving siRNA cancer therapeutics.
Main Methods:
- Review of existing literature on lipid and polymer-based siRNA delivery systems.
- Analysis of the strengths and weaknesses of different carrier materials.
- Exploration of combination strategies and co-delivery approaches.
Main Results:
- Lipid-based systems offer high entrapment and cost-effectiveness; polymer-based systems allow chemical modifications.
- Both systems protect siRNA and improve transfection, but have limitations.
- Combining materials (lipids, polymers, targeting agents) and co-delivery strategies can enhance properties and efficacy.
Conclusions:
- Lipid and polymer-based systems are promising for siRNA cancer delivery, each with unique advantages.
- Formulation strategies involving material combinations and co-delivery are key to overcoming current limitations.
- Further development of these advanced delivery systems holds significant potential for improved cancer treatment outcomes.
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