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Published on: March 3, 2023
Implantable drug delivery systems for the treatment of osteomyelitis
Megan Smith1, Matthew Roberts1, Raida Al-Kassas1
1School of Pharmacy and Biomolecular Sciences, Faculty of Science, Liverpool John Moores University, Liverpool, UK.
Abstract:
Osteomyelitis is an infection of the bone tissue and bone marrow which is becoming increasingly difficult to treat due to the infection causing pathogens associated. Staphylococcus aureus is one of the main bacteria that causes this infection, which has a broad spectrum of antibiotic resistance making it extremely difficult to treat. Conventional metal implants used in orthopedic applications often have the drawback of implant induced osteomyelitis as well as the requirement of a second surgery to remove the implant once it is no longer required. Recently, attention has been focused on the design and fabrication of biodegradable implants for the treatment of bone infection. The main benefit of biodegradable implants over polymethylmethacrylate (PMMA) based non-degradable systems is that they do not require a second surgery for removal and so making degradable implants safer and easier to use. The main purpose of a biodegradable implant is to provide the necessary support and conductivity to allow the bone to regenerate whilst themselves degrading at a rate that is compatible with the rate of formation of new bone. They must be highly biocompatible to ensure there is no inflammation or irritation within the surrounding tissue. During this review, the latest research into antibiotic loaded biodegradable implants will be explored. Their benefits and drawbacks will be compared with those non-degradable PMMA beads, which is the stable material used within antibiotic loaded implants. Biodegradable implants most frequently used are based on biodegradable natural and synthetic polymers. Implants can take the form of many different structures; the most commonly fabricated structure is a scaffold. Other structures that will be explored within this review are hydrogels, nanoparticles and surface coatings, all with their own benefits/drawbacks.
Insights
Biodegradable implants offer a safer alternative to conventional metal implants for treating bone infections like osteomyelitis. These implants avoid secondary removal surgeries and support bone regeneration while degrading naturally.
Area of Science:
- Biomaterials Science
- Orthopedic Surgery
- Infectious Diseases
Background:
- Osteomyelitis, a challenging bone infection often caused by antibiotic-resistant *Staphylococcus aureus*, necessitates advanced treatment strategies.
- Conventional metal implants can induce further infection and require removal, increasing patient risk and healthcare costs.
- Biodegradable implants are emerging as a promising alternative, designed to support bone regeneration and degrade naturally.
Approach:
- This review explores the latest research on antibiotic-loaded biodegradable implants for osteomyelitis treatment.
- It compares the benefits and drawbacks of biodegradable systems with non-degradable polymethylmethacrylate (PMMA) beads.
- Various implant structures, including scaffolds, hydrogels, nanoparticles, and surface coatings, are examined.
Key Points:
- Biodegradable implants eliminate the need for a second surgery, enhancing safety and ease of use compared to PMMA-based systems.
- These implants provide structural support and conductivity for bone regeneration, degrading at a rate synchronized with new bone formation.
- Biocompatibility is crucial to prevent inflammation and ensure seamless integration with surrounding tissues.
Conclusions:
- Biodegradable implants represent a significant advancement in managing bone infections, offering improved patient outcomes and reduced treatment burdens.
- Further research into diverse biodegradable structures and antibiotic delivery systems will optimize their clinical application.
- The development of these advanced materials holds the potential to revolutionize orthopedic infection treatment.
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