Utility of 3D printed temporal bones in pre-surgical planning for complex BoneBridge cases

被引:0
作者
Payal Mukherjee
Kai Cheng
Sean Flanagan
Simon Greenberg
机构
[1] The University of Sydney,RPA Institute of Academic Surgery
[2] The University of Sydney,Vestibular Research Laboratory, School of Psychology
[3] St. Vincent’s Hospital,undefined
[4] St. George Hospital,undefined
来源
European Archives of Oto-Rhino-Laryngology | 2017年 / 274卷
关键词
3D printing; Presurgical planning; Bone conduction implants; BoneBridge; Microtia; Atresia; Modified radical mastoidectomy; Intact canal wall mastoidectomy;
D O I
暂无
中图分类号
学科分类号
摘要
With the advent of single-sided hearing loss increasingly being treated with cochlear implantation, bone conduction implants are reserved for cases of conductive and mixed hearing loss with greater complexity. The BoneBridge (BB, MED-EL, Innsbruck, Austria) is an active fully implantable device with no attenuation of sound energy through soft tissue. However, the floating mass transducer (FMT) part of the device is very bulky, which limits insertion in complicated ears. In this study, 3D printed temporal bones of patients were used to study its utility in preoperative planning on complicated cases. Computed tomography (CT) scans of 16 ears were used to 3D print their temporal bones. Three otologists graded the use of routine preoperative planning provided by MED-EL and that of operating on the 3D printed bone of the patient. Data were collated to assess the advantage and disadvantage of the technology. There was a statistically significant benefit in using 3D printed temporal bones to plan surgery for difficult cases of BoneBridge surgery compared to the current standard. Surgeons preferred to have the printed bones in theatre to plan their drill sites and make the transition of the planning to the patient’s operation more precise. 3D printing is an innovative use of technology in the use of preoperative planning for complex ear surgery. Surgical planning can be done on the patient’s own anatomy which may help to decrease operating time, reduce cost, increase surgical precision and thus reduce complications.
引用
收藏
页码:3021 / 3028
页数:7
相关论文
共 50 条
[21]   Error Minimization in Pre-surgical Model of Brain Tumor for 3-D Printing [J].
Mahatme C. ;
Giri J. .
Journal of The Institution of Engineers (India): Series C, 2023, 104 (01) :101-111
[22]   The Quantitative Impact of Using 3D Printed Anatomical Models for Surgical Planning Optimization: Literature Review [J].
Betancourt, Maria Clara ;
Araujo, Carlos ;
Marin, Sara ;
Buritica, Wanda .
3D PRINTING AND ADDITIVE MANUFACTURING, 2023, 10 (05) :1130-1139
[23]   Modelling and fabrication procedure for a 3D printed cardiac model - surgical planning of Left Ventricular Aneurysm [J].
Buonamici, Francesco ;
Mussi, Elisa ;
Santarelli, Chiara ;
Carrabba, Nazario ;
Stefano, Pierluigi ;
Marchionni, Niccolo ;
Carfagni, Monica .
METHODSX, 2022, 9
[24]   Homemade 3D mirror imaging models utility for surgical treatment of complex fractures of scapula * [J].
Maria Martinez-Gomiz, Jose ;
Perez-Espana Muniesa, Manuel ;
Rodriguez Martin, Juan ;
Larrainzar Garijo, Ricardo ;
Chana-Rodriguez, Francisco .
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED, 2021, 52 :S109-S116
[25]   Virtual Surgical Planning and 3D-Printed Surgical Guides in Facial Allotransplantation [J].
Vyas, Krishna ;
Suchyta, Marissa ;
Gibreel, Waleed ;
Martinez-Jorge, Jorys ;
Bite, Uldis ;
Sharaf, Basel A. ;
Bradley, Elizabeth A. ;
Amer, Hatem ;
Bakri, Karim ;
Mardini, Samir .
SEMINARS IN PLASTIC SURGERY, 2022, 36 (03) :199-207
[26]   Pre-Moisturized β-hemihydrate for 3D Printed Molds [J].
Selvaraj, Solaman B. ;
Singamneni, Sarat .
MATERIALS AND MANUFACTURING PROCESSES, 2016, 31 (08) :1102-1112
[27]   Planning for complex inferior vena cava filter retrievals: the implementation and effectiveness of 3D printed models [J].
Lee, Joonhyuk ;
Rybicki, Frank J. ;
Ravi, Prashanth ;
Chadalavada, Seetharam C. .
3D PRINTING IN MEDICINE, 2024, 10 (01)
[28]   Observation of Patients' 3D Printed Anatomical Features and 3D Visualisation Technologies Improve Spatial Awareness for Surgical Planning and in-Theatre Performance [J].
Branson, Toby M. ;
Shapiro, Leonard ;
Venter, Rudolph G. .
BIOMEDICAL VISUALISATION, VOL 10, 2021, 1334 :23-37
[29]   3D Printed Patient-Specific Complex Hip Arthroplasty Models Streamline the Preoperative Surgical Workflow: A Pilot Study [J].
Jiang, Michael ;
Coles-Black, Jasamine ;
Chen, Gordon ;
Alexander, Matthew ;
Chuen, Jason ;
Hardidge, Andrew .
FRONTIERS IN SURGERY, 2021, 8
[30]   3D surgical planning of pediatric tumors: a review [J].
Pereira, Helena Rico ;
Barzegar, Mojtaba ;
Hamadelseed, Osama ;
Esteve, Arnau Valls ;
Munuera, Josep .
INTERNATIONAL JOURNAL OF COMPUTER ASSISTED RADIOLOGY AND SURGERY, 2022, 17 (04) :805-816