Infectious mandibular bone defects present significant clinical challenges due to the complex pathological microenvironment, risk of persistent bacterial colonization, and insufficient bone regeneration. Poly (ether ketone) (PEEK) is considered a promising alternative to metallic implants owing to its bone-mimetic mechanical properties; however, its intrinsic hydrophobicity and bioinertness hinder osseointegration and functional recovery. Here, a bifunctional 3D-printed porous PEEK scaffold coated with an alginate hydrogel encapsulating magnesium-aloe emodin (MgAe) nanosheets (AP@MgAe) was developed to achieve simultaneous antibacterial and osteogenic functions. MgAe nanosheets were synthesized via metal-quinone coordination-driven self-assembly, enabling the co-delivery of bioactive Mg(2+) and aloe emodin in a pH-responsive and sustained-release manner within the hydrogel coating. In vitro, AP@MgAe scaffolds exhibited potent antibacterial activity against S. aureus, excellent cytocompatibility, and enhanced osteogenic differentiation of rat bone marrow-derived mesenchymal stem cells (BMSCs). In vivo, AP@MgAe scaffolds effectively suppressed infection, attenuated inflammation, and promoted bone formation and osseointegration in a rat model of infectious mandibular bone defects. Collectively, this work introduces a novel metal-quinone framework-integrated 3D-printed PEEK platform, offering a clinically promising, antibiotic-free, and bifunctional strategy for treating infection-associated bone defects.
Bifunctional 3D-printed PEEK scaffolds incorporating hydrogel-encapsulated magnesium-quinone nanosheets for antibacterial activity and mandibular bone regeneration.
双功能 3D 打印 PEEK 支架,包含水凝胶包裹的镁醌纳米片,用于抗菌活性和下颌骨再生。
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| 期刊: | Materials Today Bio | 影响因子: | 10.200 |
| 时间: | 2025 | 起止号: | 2025 Nov 25; 35:102607 |
| doi: | 10.1016/j.mtbio.2025.102607 | ||
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