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Updated: May 20, 2025

Ceramic Omnidirectional Bioprinting in Cell-Laden Suspensions for the Generation of Bone Analogs
Published on: August 8, 2022
Single-step method for the immobilization of hydroxyapatite on 3D-printed porous polyetherketoneketone implants for
Semen Goreninskii1, Igor Akimchenko2, Alexander Vorobyev3
1Research Center for Translational Medicine, Sirius University of Science and Technology, 354340 Sirius Federal Territory, Olympic av ., 1, Russia; Additive Technologies Center, Tomsk Polytechnic University, Lenina av., 30, Tomsk 634050, Russia.
Abstract:
Being biocompatible and extremely rigid polymer, polyetherketoneketone (PEKK) emerged as a promising material for the development of bone implants, but its inert surface limits bone-implant integration. Herein, we report a single-step approach for the immobilization of hydroxyapatite (HAp) particles on the surface of additively fabricated porous PEKK implants based on the swelling of the implant surface with subsequent entrapment of the HAp particles. By means of the scanning electron microscopy, it was established that this approach effectively preserved the morphology (pore diameter and printed line width) of the original implants. With that, up to 35.0 ± 14.0 % of the sample surface was covered with HAp particles, leading to improved hydrophilicity (<1° water contact angle). From the energy-dispersive spectroscopy results, calcium and phosphorus content on the surface of the modified samples reached 17.4 ± 4.1 wt% and 8.0 ± 1.7 wt%, respectively. Compression test revealed no changes in the samples strength. From the in vitro experiment with bone marrow multipotent stem cells (MSC) HAp immobilization improved cell adhesion (from 121 ± 40 cells/mm² to 234 ± 8 cells/mm²) and induced their osteogenic differentiation. Thus, the proposed method may be used for the development of PEKK-based implants for bone tissue restoration.

