Thurzo Andrej, Šufliarsky Barbora, Urbanová Wanda, Čverha Martin, Strunga Martin, Varga Ivan
Department of Stomatology and Maxillofacial Surgery, Faculty of Medicine, Comenius University in Bratislava, 81250 Bratislava, Slovakia.
Department of Oral and Maxillofacial Surgery, Faculty of Medicine, Comenius University in Bratislava and University Hospital, 81372 Bratislava, Slovakia.
Polymers (Basel). 2022 Sep 15;14(18):3858. doi: 10.3390/polym14183858.
This paper introduces a complex novel concept and methodology for the creation of personalized biomedical appliances 3D-printed from certified biocompatible photopolymer resin Dental LT Clear (V2). The explained workflow includes intraoral and CT scanning, patient virtualization, digital appliance design, additive manufacturing, and clinical application with evaluation of the appliance intended for patients with cranio-facial syndromes. The presented concept defines virtual 3D fusion of intraoral optical scan and segmented CT as sufficient and accurate data defining the 3D surface of the face, intraoral and airway morphology necessary for the 3D design of complex personalized intraoral and extraoral parts of the orthopedic appliance. A central aspect of the concept is a feasible utilization of composite resin for biomedical prototyping of the sequence of marginally different appliances necessary to keep the pace with the patient rapid growth. Affordability, noninvasiveness, and practicality of the appliance update process shall be highlighted. The methodology is demonstrated on a particular case of two-year-old infant with Pierre Robin sequence. Materialization by additive manufacturing of this photopolymer provides a highly durable and resistant-to-fracture two-part appliance similar to a Tübingen palatal plate, for example. The paper concludes with the viability of the described method and material upon interdisciplinary clinical evaluation of experts from departments of orthodontics and cleft anomalies, pediatric pneumology and phthisiology, and pediatric otorhinolaryngology.
本文介绍了一种复杂的新颖概念和方法,用于制造由经过认证的生物相容性光聚合物树脂Dental LT Clear(V2)3D打印的个性化生物医学器械。所阐述的工作流程包括口腔内和CT扫描、患者虚拟化、数字器械设计、增材制造以及临床应用,并对用于颅面综合征患者的器械进行评估。所提出的概念将口腔内光学扫描和分割CT的虚拟3D融合定义为足够且准确的数据,这些数据定义了面部的3D表面、口腔内和气道形态,这对于复杂个性化口腔内和口腔外矫形器械的3D设计是必要的。该概念的一个核心方面是可行地利用复合树脂进行生物医学原型制作,以制作与患者快速生长同步所需的一系列略有不同的器械。应突出器械更新过程的可承受性、非侵入性和实用性。该方法在一名患有皮埃尔·罗宾序列征的两岁婴儿的特定案例中得到了证明。例如,通过增材制造这种光聚合物实现的实体化提供了一种高度耐用且抗断裂的两部分器械,类似于图宾根腭板。本文最后得出结论,正畸和腭裂畸形科、小儿肺病和结核病科以及小儿耳鼻喉科的专家进行跨学科临床评估后,所描述的方法和材料具有可行性。