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An Injectable and Drug-loaded Supramolecular Hydrogel for Local Catheter Injection into the Pig Heart
Published on: June 7, 2015
Injectable nanocomposite hydrogels for targeted intervention in cancer, wound healing, and bone and myocardial tissue
Ana Rita Pereira1, Patrícia C Pires2,3,4, Huma Hameed5
1Department of Pharmaceutical Technology, Faculty of Pharmacy of the University of Coimbra, University of Coimbra, Azinhaga de Santa Comba, 3000 - 548, Coimbra, Portugal.
Abstract:
Despite current medicine's fast-paced advances, many acute and chronic illnesses still lack truly effective and safe therapies. Cancer treatments often lead to off-target healthy tissue damage and poor therapeutic outcomes, wound standard treatments generally demonstrate poor healing efficacy and increased susceptibility to infection, and bone tissue engineering and myocardial tissue engineering can result in immunological rejection and limited availability. To tackle these issues, injectable hydrogels have emerged, and through the incorporation of nanoparticles, nanocomposite hydrogels have appeared as versatile platforms, offering improved biocompatibility, mechanical strength, stability, and precise controlled drug release, as well as targeted delivery with increased drug retention at the site of action, reducing systemic drug distribution to non-target sites. With the ability to deliver a diverse range of therapeutic entities, including low molecular weight drugs, proteins, antibodies, and even isolated cells, injectable nanocomposite hydrogels have revolutionized current therapies, working as multifunctional platforms capable of improving efficacy and safety in cancer treatment, including in chemotherapy, immunotherapy, photothermal therapy, magnetic hyperthermia, photodynamic therapy, chemodynamic therapy, radiotherapy, molecularly targeted therapy, and after tumor surgical removal, and in general, chronic diabetic or tumor-induced wound healing, as well as in bone tissue engineering and myocardial tissue engineering. This review provides a thorough summary and critical insight of current advances on injectable nanocomposite hydrogels as an innovative approach that could bring substantial contributions to biomedical research and clinical practice, with a focus on their applications in cancer therapy, wound healing management, and tissue engineering.
Insights
Injectable nanocomposite hydrogels offer advanced solutions for cancer therapy, wound healing, and tissue engineering by improving drug delivery and reducing side effects. These versatile platforms enhance treatment efficacy and safety across various biomedical applications.
Area of Science:
- Biomedical Engineering
- Materials Science
- Nanotechnology
Background:
- Current therapies for cancer, wound healing, and tissue engineering face limitations like off-target damage, poor efficacy, and immune rejection.
- Injectable hydrogels offer potential but can be improved with nanoparticle incorporation.
- Nanocomposite hydrogels enhance biocompatibility, mechanical strength, stability, and controlled drug delivery.
Purpose of the Study:
- To review advances in injectable nanocomposite hydrogels for biomedical applications.
- To highlight their role in improving cancer treatment, wound healing, and tissue engineering.
- To provide critical insight into their potential contributions to research and clinical practice.
Main Methods:
- Review of current literature on injectable nanocomposite hydrogels.
- Analysis of nanoparticle incorporation in hydrogel systems.
- Focus on applications in cancer therapy, wound healing, and tissue engineering.
Main Results:
- Injectable nanocomposite hydrogels demonstrate improved biocompatibility, mechanical properties, and stability.
- They enable precise, controlled, and targeted delivery of diverse therapeutic agents.
- These hydrogels show promise in enhancing efficacy and safety for various conditions.
Conclusions:
- Injectable nanocomposite hydrogels are versatile platforms revolutionizing biomedical therapies.
- They offer significant improvements over traditional treatments for cancer, wounds, and tissue regeneration.
- Further research and clinical application of these advanced materials are warranted.

