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Recent advances in gene therapy-based cancer monotherapy and synergistic bimodal therapy using upconversion
Marzieh Sohrabi1, Zahra Babaei1, Vahid Haghpanah1
1Endocrinology and Metabolism Research Center, Endocrinology and Metabolism Clinical Sciences Institute, Tehran University of Medical Sciences, Tehran, Iran.
Abstract:
In accordance with human genetics and genomics advances over the past years, it can be found that cancer is created through a somatic aberration in the host genome. Accordingly, researchers use therapeutic methods in genetic manipulation to discover the possible cure for the disease. In combination with traditional cancer treatments, gene therapy (GT) is essential in future cancer therapy. The development of powerful nanocarriers for targeted, controlled, and efficient intracellular delivery of therapeutic biomolecules that increase pharmacokinetics indicates that the development of GT is highly dependent on nanotechnology. Among nanocarriers, upconversion nanoparticles (UCNPs) have become the focus of great attention in the realm of inorganic nanomedicines following the strategy of "diagnosis for treatment" due to their outstanding features including safety, deep penetration of near-infrared (NIR) light into tissue, and reduction of unfavorable side effects of NIR-triggered therapies. Moreover, various individual therapies can be intelligently combined into a single nanotranostic system based on a UCNP platform for multimodal synergistic treatment. Given that the preparation of multifunctional nanomaterials is a prerequisite for the realization of cancer treatment, especially synergistic therapies, the recognition of the main components of advanced nanoparticles can help researchers in choosing the proper platform for cancer treatment. In view of this, the main goal of this review is to highlight the latest advances in the construction and application of upconversion nanoparticles as carriers for gene delivery and gene editing in cancer monotherapy and bimodal synergistic therapy, with an emphasis on the structural and biological aspects of these studies.
Insights
Upconversion nanoparticles (UCNPs) offer a promising platform for advanced cancer gene therapy. These nanomaterials enable targeted gene delivery and synergistic therapies, improving treatment outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Genetics
Background:
- Cancer arises from somatic genomic aberrations.
- Gene therapy (GT) combined with traditional treatments is crucial for future cancer care.
- Nanotechnology is vital for effective gene delivery in GT.
Purpose of the Study:
- To review advances in upconversion nanoparticles (UCNPs) for cancer gene therapy.
- To highlight UCNPs in monotherapy and bimodal synergistic treatments.
- To focus on structural and biological aspects of UCNP applications.
Main Methods:
- Utilizing upconversion nanoparticles (UCNPs) as nanocarriers.
- Developing UCNP-based nanotranostic systems for targeted delivery.
- Investigating UCNPs for gene delivery and gene editing applications.
Main Results:
- UCNPs demonstrate safety and deep tissue penetration with near-infrared (NIR) light.
- UCNPs facilitate controlled intracellular delivery of therapeutic biomolecules.
- UCNP platforms enable the combination of therapies for synergistic effects.
Conclusions:
- Upconversion nanoparticles are key inorganic nanomedicines for cancer treatment.
- UCNPs are essential for developing multifunctional nanomaterials for synergistic cancer therapies.
- This review emphasizes the potential of UCNPs in advancing cancer gene therapy.
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