Evaluation of osseointegration of plasma-treated polyaryletherketone maxillofacial implants

Author:

Maruf D S Abdullah Al1,Ren Jiongyu2,Cheng Kai3,Xin Hai1,Lewin Will4,Pickering Edmund2,Kruse Hedi Verena4,Leinkram David5,Parthasarathi Krishnan5,Wise Innes6,Filippi Benjamin7,Beirne Stephen7,Froggatt Cate5,Wykes James5,Howes Dale5,Suchowerska Natalka8,Woodruff Maria A2,Crook Jeremy M4,McKenzie David R8,Clark Jonathan R5

Affiliation:

1. Central Clinical School, Faculty of Medicine and Health, The University of Sydney

2. School of Mechanical, Medical and Process Engineering, Queensland University of Technology

3. Royal Prince Alfred Institute of Academic Surgery, Sydney Local Health District

4. Arto Hardy Family Biomedical Innovation Hub, Chris O'Brien Lifehouse

5. Integrated Prosthetics and Reconstruction, Department of Head and Neck Surgery, Chris O’Brien Lifehouse

6. Laboratory Animal Services, The University of Sydney

7. Intelligent Polymer Research Institute, The University of Wollongong

8. School of Physics, Faculty of Science, The University of Sydney

Abstract

Abstract Osseointegration is a crucial property of biomaterials used for bone defect repair. While titanium is the gold standard in craniofacial surgeries, various polymeric biomaterials are being explored as alternatives. However, polymeric materials can be bioinert, hindering integration with surrounding tissues. In this investigation, plasma ion immersion implantation (PIII)-treated polyether ether ketone (PEEK) and polyether ketone (PEK) implants were assessed in a sheep maxilla and mandible model. Defects were filled with PIII-treated PEEK and PEK implants, produced through fused filament fabrication (FFF) and selective laser sintering (SLS), respectively. Positive controls were grade 23 titanium implants via selective laser melting, while untreated PEEK implants served as negative controls. Surface analyses using scanning electron microscopy and atomic force microscopy revealed favorable properties. Osseointegration was qualitatively and quantitatively assessed at 8-, 10-, and 12-weeks post-implantation, showing significantly improved outcomes for both PIII-treated PEEK and PEK implants compared to untreated controls. The study suggests PIII treatment enhances FFF-printed PEEK's osseointegration, and PIII-treated SLS-printed PEK achieves comparable osseointegration to 3D printed titanium. These findings underscore surface modification strategies' potential for polymeric biomaterials, offering insights into developing alternative implant materials for craniofacial surgeries, with enhanced biocompatibility and osseointegration capabilities for improved clinical outcomes.

Publisher

Research Square Platform LLC

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