Design, clinical applications and post-surgical assessment of bioresorbable 3D-printed craniofacial composite implants†

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Sara Targońska, Monika Dobrzyńska-Mizera, Maria Laura Di Lorenzo, Monika Knitter, Alessandra Longo, Maciej Dobrzyński, Monika Rutkowska, Szczepan Barnaś, Bogdan Czapiga, Maciej Stagraczyński, Michał Mikulski, Małgorzata Muzalewska, Marek Wyleżoł, Justyna Rewak-Soroczyńska, Nicole Nowak, Jacek Andrzejewski, John Reeks and Rafal J. Wiglusz
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Abstract

This study details the design, fabrication, clinical trials’ evaluation, and analysis after the clinical application of 3D-printed bone reconstruction implants made of nHAp@PLDLLA [nanohydroxyapatite@poly(L-lactide-co-D,L-lactide)] biomaterial. The 3D-printed formulations have been tested as bone reconstruction Cranioimplants in 3 different medical cases, including frontal lobe, mandibular bone, and cleft palate reconstructions. Replacing one of the implants after 6 months provided a unique opportunity to evaluate the post-surgical implant obtained from a human patient. This allowed us to quantify physicochemical changes and develop a spatial map of osseointegration and material degradation kinetics as a function of specific locations. To the best of our knowledge, hydrolytic degradation and variability in the physicochemical and mechanical properties of the biomimetic, 3D-printed implants have not been quantified in the literature after permanent placement in the human body. Such analysis has revealed the constantly changing properties of the implant, which should be considered to optimize the design of patient-specific bone substitutes. Moreover, it has been proven that the obtained composition can produce biomimetic, bioresorbable and bone-forming alloplastic substitutes tailored to each patient, allowing for shorter surgery times and faster patient recovery than currently available methods.

Abstract Image

Abstract Image

生物可吸收三维打印颅面复合植入物的设计、临床应用和术后评估。
本研究详细介绍了由 nHAp@PLDLLA [纳米羟基磷灰石@聚(L-内酯-co-D,L-内酯)] 生物材料制成的三维打印骨重建植入体的设计、制造、临床试验评估和临床应用后的分析。三维打印制剂已作为骨重建颅骨植入物在 3 个不同的病例中进行了测试,包括额叶、下颌骨和腭裂重建。6 个月后,我们更换了其中一个植入物,这为评估从人类患者身上获得的手术后植入物提供了一个独特的机会。这使我们能够量化物理化学变化,并根据特定位置绘制出骨结合和材料降解动力学的空间图。据我们所知,仿生 3D 打印植入物在永久植入人体后,其水解降解和物理化学及机械性能的变化尚未在文献中进行量化。此类分析揭示了植入物不断变化的特性,在优化患者特异性骨替代物的设计时应考虑到这一点。此外,研究还证明,所获得的成分可以为每位患者量身定制仿生、可生物吸收和成骨的异体替代物,与目前可用的方法相比,手术时间更短,患者恢复更快。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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