» Articles » PMID: 28220752

Putting 3D Modelling and 3D Printing into Practice: Virtual Surgery and Preoperative Planning to Reconstruct Complex Post-traumatic Skeletal Deformities and Defects

Overview
Journal SICOT J
Publisher EDP Sciences
Specialty Orthopedics
Date 2017 Feb 22
PMID 28220752
Citations 35
Authors
Affiliations
Soon will be listed here.
Abstract

3D printing technology has revolutionized and gradually transformed manufacturing across a broad spectrum of industries, including healthcare. Nowhere is this more apparent than in orthopaedics with many surgeons already incorporating aspects of 3D modelling and virtual procedures into their routine clinical practice. As a more extreme application, patient-specific 3D printed titanium truss cages represent a novel approach for managing the challenge of segmental bone defects. This review illustrates the potential indications of this innovative technique using 3D printed titanium truss cages in conjunction with the Masquelet technique. These implants are custom designed during a virtual surgical planning session with the combined input of an orthopaedic surgeon, an orthopaedic engineering professional and a biomedical design engineer. The ability to 3D model an identical replica of the original intact bone in a virtual procedure is of vital importance when attempting to precisely reconstruct normal anatomy during the actual procedure. Additionally, other important factors must be considered during the planning procedure, such as the three-dimensional configuration of the implant. Meticulous design is necessary to allow for successful implantation through the planned surgical exposure, while being aware of the constraints imposed by local anatomy and prior implants. This review will attempt to synthesize the current state of the art as well as discuss our personal experience using this promising technique. It will address implant design considerations including the mechanical, anatomical and functional aspects unique to each case.

Citing Articles

Advances in growth factor-containing 3D printed scaffolds in orthopedics.

Zhan L, Zhou Y, Liu R, Sun R, Li Y, Tian Y Biomed Eng Online. 2025; 24(1):14.

PMID: 39920740 PMC: 11806769. DOI: 10.1186/s12938-025-01346-z.


FixThePig: a custom 3D-printed femoral intramedullary nailing for preclinical research applications.

Manon J, Englebert A, Evrard R, Schubert T, Cornu O Front Bioeng Biotechnol. 2024; 12:1478676.

PMID: 39493302 PMC: 11528544. DOI: 10.3389/fbioe.2024.1478676.


Applying 3D-Printed Porous Ti6Al4V Prostheses to Repair Osteomyelitis-Induced Partial Bone Defects of Lower Limbs: Finite Element Analysis and Clinical Outcomes.

Liu B, Tan Q, Wang Z, Hou G, Wang C, Tian Y Orthop Surg. 2024; 17(1):115-124.

PMID: 39429061 PMC: 11735359. DOI: 10.1111/os.14268.


3D-printed titanium porous prosthesis combined with the Masquelet technique for the management of large femoral bone defect caused by osteomyelitis.

Chen Z, Xing Y, Li X, Liu B, Liu N, Huo Y BMC Musculoskelet Disord. 2024; 25(1):474.

PMID: 38880911 PMC: 11181595. DOI: 10.1186/s12891-024-07576-x.


Effect of osteophyte removal on simulated range of motion using 3-dimensional preoperative planning software for reverse total shoulder arthroplasty.

Ruzbarsky J, Peebles A, Watkins L, Kruse A, Lilley B, Eble S JSES Int. 2024; 8(1):104-110.

PMID: 38312277 PMC: 10837730. DOI: 10.1016/j.jseint.2023.08.011.


References
1.
Cobos J, Lindsey R, Gugala Z . The cylindrical titanium mesh cage for treatment of a long bone segmental defect: description of a new technique and report of two cases. J Orthop Trauma. 2000; 14(1):54-9. DOI: 10.1097/00005131-200001000-00011. View

2.
Masquelet A, Fitoussi F, Begue T, Muller G . [Reconstruction of the long bones by the induced membrane and spongy autograft]. Ann Chir Plast Esthet. 2000; 45(3):346-53. View

3.
Munjal S, Leopold S, Kornreich D, Shott S, Finn H . CT-generated 3-dimensional models for complex acetabular reconstruction. J Arthroplasty. 2000; 15(5):644-53. DOI: 10.1054/arth.2000.6629. View

4.
Handels H, Ehrhardt J, Plotz W, Poppl S . Three-dimensional planning and simulation of hip operations and computer-assisted construction of endoprostheses in bone tumor surgery. Comput Aided Surg. 2001; 6(2):65-76. DOI: 10.1002/igs.1010. View

5.
Masquelet A . Muscle reconstruction in reconstructive surgery: soft tissue repair and long bone reconstruction. Langenbecks Arch Surg. 2003; 388(5):344-6. DOI: 10.1007/s00423-003-0379-1. View