| Literature DB >> 32061248 |
Lukas Jud1, Javad Fotouhi2, Octavian Andronic3, Alexander Aichmair3, Greg Osgood4, Nassir Navab2,5, Mazda Farshad3.
Abstract
BACKGROUND: Computer-assisted solutions are changing surgical practice continuously. One of the most disruptive technologies among the computer-integrated surgical techniques is Augmented Reality (AR). While Augmented Reality is increasingly used in several medical specialties, its potential benefit in orthopedic surgery is not yet clear. The purpose of this article is to provide a systematic review of the current state of knowledge and the applicability of AR in orthopedic surgery.Entities:
Keywords: Augmented reality; Image overlay; Orthopaedic surgery; Trauma surgery
Mesh:
Year: 2020 PMID: 32061248 PMCID: PMC7023780 DOI: 10.1186/s12891-020-3110-2
Source DB: PubMed Journal: BMC Musculoskelet Disord ISSN: 1471-2474 Impact factor: 2.362
Fig. 1Flowchart of the systematic research in “PubMed” and “Cochrane Libraray”
Summary of the included studies
| Author | Title | Year | Category | Display-Type | Applicability |
|---|---|---|---|---|---|
| Wu JR et al | Real-time advanced spinal surgery via visible patient model and augmented reality system. | 2014 | Placement | Projector | Yes |
| Abe Y et al | A novel 3D guidance system using augmented reality for percutaneous vertebroplasty: technical note. | 2013 | Placement | HMD | Yes |
| Navab N et al | Camera augmented mobile C-arm (CAMC): calibration, accuracy study, and clinical applications. | 2010 | Placement | Monitor | Yes |
| Heining SM et al | Pedicle screw placement under video-augmented flouroscopic control: first clinical application in a cadaver study | 2006 | Placement | Monitor | Yes |
| Elmi-Terander A et al | Feasibility and Accuracy of Thoracolumbar Minimally Invasive Pedicle Screw Placement With Augmented Reality Navigation Technology | 2018 | Placement | Monitor | Yes |
| Elmi-Terander A et al | Pedicle Screw Placement Using Augmented Reality Surgical Navigation With Intraoperative 3D Imaging: A First In-Human Prospective Cohort Study | 2019 | Placement | Monitor | Yes |
| Ma L et al | Augmented reality surgical navigation with ultrasound-assisted registration for pedicle screw placement: a pilot study | 2017 | Placement | Projector | Yes |
| Gibby JT et al | Head-mounted display augmented reality to guide pedicle screw placement utilizing computed tomography | 2019 | Placement | HMD | Yes |
| U-Thainual P et al | MR image overlay guidance: system evaluation for preclinical use | 2013 | Placement | Monitor | Yes |
| Fischer GS et al | MRI image overlay: application to arthrography needle insertion | 2007 | Placement | Monitor | Yes |
| Fichtinger G et al | Image overlay guidance for needle insertion in CT scanner | 2005 | Placement | Monitor | Yes |
| Fischer M et al | Preclinical usability study of multiple augmented reality concepts for K-wire placement | 2016 | Placement | Monitor | Yes |
| Andress S et al | On-the-fly augmented reality for orthopedic surgery using a multimodal fiducial | 2018 | Placement | HMD | Yes |
| Befrui N et al | 3D augmented reality visualization for navigated osteosynthesis of pelvic fractures | 2018 | Placement | Monitor | Yes |
| Londei R et al | Intra-operative augmented reality in distal locking | 2015 | Placement | Monitor | Yes |
| Ma L et al | Three-dimensional augmented reality surgical navigation with hybrid optical and electromagnetic tracking for distal intramedullary nail interlocking | 2018 | Placement | Projector | Yes |
| Wang H et al | Precision insertion of percutaneous sacroiliac screws using a novel augmented reality-based navigation system: a pilot study | 2016 | Placement | HMD | Yes |
| Fotouhi J et al | Plan in 2-D, execute in 3-D: an augmented reality solution for cup placement in total hip arthroplasty | 2018 | Placement | Monitor | Yes |
| Ogawa H et al | A Pilot Study of Augmented Reality Technology Applied to the Acetabular Cup Placement During Total Hip Arthroplasty | 2018 | Placement | Monitor | Yes |
| Liu H et al | Augmented Reality Based Navigation for Computer Assisted Hip Resurfacing: A Proof of Concept Study | 2018 | Placement | HMD | Yes |
| Fallavollita P et al | An augmented reality C-arm for intraoperative assessment of the mechanical axis: a preclinical study | 2016 | Osteotomies | Monitor | Yes |
| Cho HS et al | Augmented reality in bone tumour resection: An experimental study | 2017 | Tumor Surgery | Monitor | Yes |
| Cho HS et al | Can Augmented Reality Be Helpful in Pelvic Bone Cancer Surgery? An In Vitro Study | 2018 | Tumor Surgery | Monitor | Yes |
| Gavaghan K et al | Evaluation of a portable image overlay projector for the visualisation of surgical navigation data: phantom studies | 2012 | Tumor Surgery | Projector | Yes |
| Shen F et al | Augmented reality patient-specific reconstruction plate design for pelvic and acetabular fracture surgery | 2013 | Trauma | Monitor | Yes |
| Van Duren BH et al | Augmented reality fluoroscopy simulation of the guide-wire insertion in DHS surgery: A proof of concept study | 2018 | Trauma | Monitor | Yes |
| Hiranaka T et al | Augmented reality: The use of the PicoLinker smart glasses improves wire insertion under fluoroscopy | 2017 | Trauma | HMD | Yes |
| Yeo CT et al | The effect of augmented reality training on percutaneous needle placement in spinal facet joint injections | 2011 | Training / Education | Monitor | Yes |
| Ponce B et al | Emerging technology in surgical education: combining real-time augmented reality and wearable computing devices | 2014 | Training / Education | HMD | Yes |
| Ponce B et al | Telementoring: use of augmented reality in orthopaedic education: AAOS exhibit selection | 2014 | Training / Education | Monitor | Yes |
| Condino S et al | How to Build a Patient-Specific Hybrid Simulator for Orthopaedic Open Surgery: Benefits and Limits of Mixed-Reality Using the Microsoft HoloLens | 2018 | Training / Education | HMD | Yes |
Fig. 2Reprinted by permission from AANS: Journal of Neurosurgery Spine, A novel 3D guidance system using augmented reality for percutaneous vertebroplasty: technical note, Yuichiro Abe, Shigenobu Sato, Koji Kato et al., Copyright 2013.
a) HMD with camera. b) A raw image is captured by the camera. c) Actual view of the surgeon. The software creates an augmented view and indicates the ideal insertion point and needle trajectory
Fig. 3Reprinted by permission from Springer Nature: Springer, International Journal of Computer Assisted Radiology and Surgery, MR image overlay guidance: system evaluation for preclinical use, Paweena U-Thainual, Jan Fritz, Choladawan Moonjaita et al., Copyright 2012.
a) Visualized is the MR-IOS. b) The surgeon looks through the semi-transparent mirror that is augmented with the correct insertion path
Fig. 4Visualized are the perfect circles for distal locking
Fig. 5The surgeon sees multiple virtual perspectives of the surgical site and moves the impactor until it completely overlaps with the virtual planning