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.

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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