Sustained Antibiotic Release from Biodegradable Gelatin–Silica Hybrid for Orthopedic Infections

Author:

Lin Yu‐Chien12ORCID,Lee Chin‐Yun1,Jones Julian R.3,Liu Wai‐Ching4,Cho Nam‐Joon25ORCID,Hu Chih‐Chien678,Chung Ren‐Jei19

Affiliation:

1. Department of Chemical Engineering and Biotechnology National Taipei University of Technology Taipei 10608 Taiwan

2. School of Materials Science and Engineering Nanyang Technological University Singapore 639798 Singapore

3. Department of Materials Imperial College London London SW7 2BP UK

4. Department of Food and Health Sciences Technological and Higher Education Institute of Hong Kong New Territories Hong Kong

5. Centre for Cross Economy Global Nanyang Technological University Singapore 637553 Singapore

6. Bone and Joint Research Center Chang Gung Memorial Hospital Linko 333 Taiwan

7. Department of Orthopaedic Surgery Chang Gung Memorial Hospital Linko 333 Taiwan

8. College of Medicine Chang Gung University Taoyuan 333 Taiwan

9. High‐Value Biomaterials Research and Commercialization Center National Taipei University of Technology Taipei 10608 Taiwan

Abstract

AbstractAntibiotic‐loaded polymethylmethacrylate (PMMA) beads are commonly employed to treat prosthetic joint infections (PJI) and chronic osteomyelitis due to their excellent mechanical strength. However, PMMA's non‐degradability results in a burst release of antibiotics and potential renal toxicity, necessitating additional surgeries for bead removal. There is a critical need for infection control materials that can deliver antibiotics effectively, maintain adequate mechanical strength, and degrade uniformly. This study introduces a gelatin–silica hybrid antibiotic carrier, characterized by covalent bonds between the gelatin and silica networks. The incorporation of the silica network enhances the compressive strength to 32.53 ± 2.4 MPa and ensures uniform degradation over 6 months, aligning with clinical timelines. Furthermore, the gelatin–silica hybrid can support up to 10 wt% antibiotic loading without compromising its properties, making it a promising candidate for next‐generation infection control materials.

Funder

National Science and Technology Council

Ministry of Education - Singapore

Publisher

Wiley

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