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Iron oxide nanoparticles coated with bioactive materials: a viable theragnostic strategy to improve osteosarcoma
Amy Sarah Benjamin1, Sunita Nayak2
1School of Advanced Sciences, Vellore Institute of Technology, Vellore, Tamil Nadu, 632014, India.
Abstract:
Osteosarcoma (OS) is distinguished as a high-grade malignant tumor, characterized by rapid systemic metastasis, particularly to the lungs, resulting in very low survival rates. Understanding the complexities of tumor development and mutation is the need of the hour for the advancement of targeted therapies in cancer care. A significant innovation in this area is the use of nanotechnology, specifically nanoparticles, to tackle various challenges in cancer treatment. Iron oxide nanoparticles stand out in both therapeutic and diagnostic applications, offering a versatile platform for targeted drug delivery, hyperthermia, magneto-thermal therapy, and combinational therapy using modulation of ferroptosis pathways. These nanoparticles are easy to synthesize, non-toxic, biocompatible, and display enhanced circulation time within the system. They can also be easily conjugated to anti-cancer drugs, targeting agents, or genetic vectors that respond to specific stimuli or pH changes. The surface functionalization of these nanoparticles using bioactive molecules unveils a promising and effective nanoparticle system for assisting osteosarcoma therapy. This review will summarize the current conventional therapies for osteosarcoma and their disadvantages, the synthesis and modification of iron oxide nanoparticles documented in the literature, cellular targeting and uptake mechanism, with focus on their functionalization using natural biomaterials and application strategies towards management of osteosarcoma. The review also compiles the translational challenges and future prospects that must be addressed for clinical advancements of iron oxide based osteosarcoma treatment in the future.
Insights
Iron oxide nanoparticles offer a promising approach for osteosarcoma treatment, enabling targeted drug delivery and hyperthermia. Their biocompatibility and functionalization potential pave the way for advanced cancer therapies.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Osteosarcoma (OS) is a high-grade malignant tumor with poor survival rates due to rapid metastasis.
- Current therapies for osteosarcoma have limitations, necessitating innovative treatment strategies.
- Nanotechnology, particularly iron oxide nanoparticles, presents a novel platform for cancer treatment and diagnostics.
Purpose of the Study:
- To review conventional osteosarcoma therapies and their drawbacks.
- To explore the synthesis, modification, and application of iron oxide nanoparticles in osteosarcoma management.
- To discuss the potential of functionalized iron oxide nanoparticles for targeted therapy and future clinical translation.
Main Methods:
- Literature review of iron oxide nanoparticle synthesis and functionalization.
- Analysis of cellular targeting and uptake mechanisms of nanoparticles.
- Examination of application strategies for osteosarcoma treatment, including drug delivery and hyperthermia.
Main Results:
- Iron oxide nanoparticles are versatile, non-toxic, and biocompatible, with enhanced circulation time.
- Surface functionalization with bioactive molecules enhances their efficacy for osteosarcoma therapy.
- These nanoparticles can be conjugated with drugs or targeting agents for stimuli-responsive delivery.
Conclusions:
- Iron oxide nanoparticles show significant potential for improving osteosarcoma treatment outcomes.
- Functionalized nanoparticles offer a promising avenue for targeted drug delivery, hyperthermia, and combinational therapies.
- Addressing translational challenges is crucial for the clinical advancement of iron oxide-based osteosarcoma therapies.
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