Wojcik Thomas, Chai Feng, Hornez Vincent, Raoul Gwenael, Hornez Jean-Christophe
Univ. Lille, CHU Lille, INSERM, Department of Oral and Maxillofacial Surgery, U1008-Advanced Drug Delivery Systems, F-59000 Lille, France.
Univ. Lille, CHU Lille, INSERM, U1008, F-59000 Lille, France.
Biomedicines. 2024 Mar 26;12(4):736. doi: 10.3390/biomedicines12040736.
This study evaluated the biocompatibility and accuracy of 3D-printed β-tricalcium phosphate (β-TCP) pure ceramic scaffolds. A specific shaping process associating a digital light processing (DLP) 3D printer and a heat treatment was developed to produce pure β-TCP scaffolds leaving no polymer binder residue. The β-TCP was characterised using X-ray diffraction, infrared spectroscopy and the detection of pollutants. The open porosity of produced matrices and their resorption were studied by hydrostatic weighing and calcium release measures. The biocompatibility of the printed matrices was evaluated by mean of osteoblast cultures. Finally, macroporous cubic matrices were produced. They were scanned using a micro-Computed Tomography scanner (micro-CT scan) and compared to their numeric models. The results demonstrated that DLP 3D printing with heat treatment produces pure β-TCP matrices with enhanced biocompatibility. They also demonstrated the printing accuracy of our technique, associating top-down DLP with the sintering of green parts. Thus, this production process is promising and will enable us to explore complex phosphocalcic matrices with a special focus on the development of a functional vascular network.
本研究评估了3D打印β-磷酸三钙(β-TCP)纯陶瓷支架的生物相容性和准确性。开发了一种将数字光处理(DLP)3D打印机与热处理相结合的特定成型工艺,以生产不含聚合物粘合剂残留的纯β-TCP支架。使用X射线衍射、红外光谱和污染物检测对β-TCP进行了表征。通过静水称重和钙释放测量研究了所制备基质的开孔率及其吸收情况。通过成骨细胞培养评估了打印基质的生物相容性。最后,制备了大孔立方基质。使用微型计算机断层扫描仪(micro-CT扫描)对其进行扫描,并与它们的数字模型进行比较。结果表明,经过热处理的DLP 3D打印可生产出具有增强生物相容性的纯β-TCP基质。它们还证明了我们技术的打印精度,即将自上而下的DLP与生坯零件的烧结相结合。因此,这种生产工艺很有前景,将使我们能够探索复杂的磷酸钙基质,特别关注功能性血管网络的开发。