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Bone defects and skeletal disorders continue to demand advanced biomaterials that combine mechanical strength with enhanced bioactivity and customizability. While yttria-stabilized zirconia (YSZ) offers excellent mechanical properties and biocompatibility, its bioinert nature and processing challenges limit its effectiveness for patient-specific bone implants. This study addresses this gap by developing novel polymer-infiltrated ceramic network (PICN) scaffolds based on 3D-printed porous YSZ fabricated via Direct Ink Writing (DIW). The scaffolds were infiltrated with biodegradable polycaprolactone (PCL)/polyvinyl alcohol (PVA) blends loaded with nanohydroxyapatite (nHA) to impart bioactivity and tunable degradation. Scaffold designs with 40% and 60% infill were evaluated for infiltration efficiency, mechanical performance, degradation behavior, and apatite formation capacity. Results demonstrated high infiltration rates (up to 96% , particularly in 40% infill scaffolds), mechanical integrity comparable to cancellous bone (compressive strength within the range of 2–12 MPa ), and enhanced in vitro apatite formation, especially for scaffolds with an 80:20 PCL/PVA blend containing 15% nHA. The degradation analysis indicated that higher PVA content accelerated resorption, with the 50:50 blend showing faster surface changes, while the 80:20 blend maintained gradual porosity increase aligned with tissue replacement. Overall, this work presents a feasible strategy for fabricating patient-specific ceramic scaffolds with enhanced osseointegration potential, thereby bridging the gap between mechanical stability and biological functionality for future bone and dental implant applications.
Delgado-Pujol et al. (Wed,) studied this question.
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