A Comprehensive 3D-Molded Bone Flap Protocol for Patient-Specific Cranioplasty

Autor: Juan Pablo Borges Rodrigues Maricevich, Amanda Amorin Nunes, Pedro Yoshito Noritomi, Tagore Martins de Morais Lima, Joana Campos Vicentini, José Mauro Granjeiro, Renato Rozental, Thiago Nunes Palhares, Mônica Diuana Calasans Maia, Caio Moreno Perret Novo, Raphael Bertani, Claudia Capitao, Pedro Henrique Moreira de Freitas, Hugo C Schiavini, Ruy Castro Monteiro da Silva Filho, Stefano F.A. Rozental, Marcelo Magaldi Oliveira, Pedro Cesar Rodrigues, Barbara Pilon, Jorge Vicente Lopes da Silva, Silvia Raquel Albuquerque, Alexandre Malta Rossi
Rok vydání: 2021
Předmět:
Popis: We present a detailed step-by-step approach for the low-cost production and surgical implantation of cranial prostheses, aimed at restoring aesthetics, cerebral protection, and facilitating neurological rehabilitation. This protocol uses combined scan computed tomography (CT) cross-sectional images, in DICOM format, along with a 3D printing (additive manufacturing) setup. The in-house developed software InVesalius®️ is an open-source tool for medical imaging manipulation. The protocol describes image acquisition (CT scanning) procedures, and image post-processing procedures such as image segmentation, surface/volume rendering, mesh generation of a 3D digital model of the cranial defect and the desired prostheses, and their preparation for use in 3D printers. Furthermore, the protocol describes a detailed powder bed fusion additive manufacturing process, known as Selective Laser Sintering (SLS), using Polyamide (PA12) as feedstock to produce a 3-piece customized printed set per patient. Each set consists of a “cranial defect printout” and a “testing prosthesis” to assemble parts for precision testing, and a cranial “prostheses mold” in 2 parts to allow for the intraoperative modeling of the final implant cast using the medical grade Poly(methyl methacrylate) (PMMA) in a time span of a few min. The entire 3D processing time, including modelling, design, production, post-processing and qualification, takes approximately 42 h. Modeling the PMMA flap with a critical thickness of 4 mm by means of Finite Element Method (FEM) assures mechanical and impact properties to be slightly weaker than the bone tissue around it, a safety design to prevent fracturing the skull after a possible subsequent episode of head injury. On a parallel track, the Protocol seeks to provide guidance in the context of equipment, manufacturing cost and troubleshooting. Customized 3D PMMA prostheses offers a reduced operating time, good biocompatibility, and great functional and aesthetic outcomes. Additionally, it offers greater than 15-fold cost advantage over the usage of other materials, including metallic parts produced by additive manufacturing.
Databáze: OpenAIRE