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Periprosthetic Joint Infection: Biofilm Pathogenesis, Immune Dysregulation, and Emerging Prosthetic Interface
Le Wan1, Chan-Young Lee1, Woo-Chul Jung1
1Center for Joint Disease, Department of Orthopedic Surgery, Chonnam National University Medical School and Hospital, Hwasun-gun 58128, Republic of Korea.
Abstract:
Periprosthetic joint infection (PJI) remains a major clinical challenge after total joint arthroplasty because of its association with prolonged antimicrobial therapy, repeated surgery, implant failure, functional disability, and substantial socioeconomic burden. Current strategies, including systemic antibiotics, debridement with implant retention, staged revision, and antibiotic-loaded cement spacers, remain indispensable but are limited by mature biofilm tolerance, protected microbial reservoirs, insufficient local drug penetration, persistent inflammation, and compromised periprosthetic bone repair. Increasing evidence indicates that PJI is not merely bacterial colonization of an implant surface, but a dynamic prosthetic interface disorder involving biofilm persistence, immune dysregulation, inflammatory osteolysis, and failed osseointegration. This review summarizes recent advances in anti-infective prosthetic interface design, emphasizing the transition from passive antibacterial coatings toward multifunctional immuno-antibacterial osseointegrative systems. The pathogenic basis of PJI is first discussed, including conditioning film formation, bacterial adhesion, biofilm maturation, protected reservoirs, immune evasion, and osteolysis. Current clinical management limitations are then evaluated, followed by emerging biomaterial strategies, including anti-adhesive and contact-killing surfaces, active antimicrobial coatings, mature biofilm disruption, biological antibiofilm therapies, smart infection-responsive delivery systems, and osteoimmunomodulatory interfaces. Particular attention is given to balancing early antibacterial activity with cytocompatibility, immune resolution, angiogenesis, mechanical durability, and long-term osseointegration. Finally, key translational barriers are highlighted, including load-bearing and tribological constraints, insufficiently standardized mature biofilm and animal models, limited clinical evidence for advanced smart materials, manufacturing reproducibility, sterilization compatibility, regulatory complexity, and application-specific clinical readiness. Future anti-PJI interfaces should evolve beyond unidirectional bacterial killing toward stage-specific systems integrating biofilm control, immune restoration, vascularized bone regeneration, and durable mechanical performance.
Insights
Periprosthetic joint infection (PJI) is a complex challenge after joint replacement. New biomaterials aim to create multifunctional interfaces that fight infection, regulate immunity, and promote bone healing for better outcomes.
Area of Science:
- Biomaterials Science
- Infectious Diseases
- Orthopedic Surgery
Background:
- Periprosthetic joint infection (PJI) poses significant challenges post-arthroplasty, leading to complications like implant failure and functional decline.
- Current treatments are limited by biofilm resistance, poor drug penetration, and impaired bone repair, highlighting PJI as a complex prosthetic interface disorder.
Purpose of the Study:
- To review recent advancements in anti-infective prosthetic interface design for managing PJI.
- To emphasize the shift towards multifunctional systems integrating antibacterial, immunomodulatory, and osseointegrative properties.
Main Methods:
- Discussion of the pathogenic mechanisms of PJI, including biofilm formation and immune dysregulation.
- Evaluation of current clinical management limitations and emerging biomaterial strategies.
- Focus on balancing antibacterial efficacy with cytocompatibility, immune resolution, and osseointegration.
Main Results:
- Emerging strategies include anti-adhesive surfaces, active antimicrobial coatings, biofilm disruption, and smart delivery systems.
- Osteoimmunomodulatory interfaces are crucial for managing inflammation and promoting bone repair.
- Balancing early antibacterial action with long-term osseointegration and mechanical integrity is key.
Conclusions:
- Future anti-PJI interfaces must be stage-specific, integrating biofilm control, immune restoration, and bone regeneration.
- Overcoming translational barriers like material durability, standardized models, and regulatory hurdles is essential for clinical readiness.
- The evolution towards smart, multifunctional interfaces promises improved management of PJI and better patient outcomes.
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