Research Article

Surgery Dissector: Surgical Device Production With 3D Print Technology

Volume: 1 Number: 1 June 17, 2019
  • İlker Deniz Cingöz
  • Şafak Özyörük
  • Buğra Hüsemoğlu *
  • Meryem Cansu Şahin
EN TR

Surgery Dissector: Surgical Device Production With 3D Print Technology

Abstract

Three dimensional (3D) print technology usage is becoming more popular in medicine and surgical sciences. There is a couple of study about using 3D print technology for surgical device production and neurosurgery in the literature. In order to adjust dissector measurements to use during the surgical operation, from patient’s CT and MRS outputs, spinal canal diameters, nerve root attached foramen diameters and disc gap wideness of the patient were measured. With these measurements, surgery dissector modelling was done by using Solidworks 3D CAD program in Dokuz Eylul University, Department of Biomechanics. Polylacticacid (PLA) filament was used in the devices during print process. In our study, surgical dissectors’ sterilization was done with vapor in 1200C and used in an operation for lumbar narrow canal diagnosed patient whose measurements were checked before the surgery. There isn’t any intraoperative complication observed during 3D printed surgery dissector usage. Although it seems that single using 3D printed surgery dissector is a disadvantage, it costs cheaper than existing surgery dissectors. In this article, we share our experiment about surgery’s one of the most important device named “surgery dissector” production with 3D print technology and it’s usage.

Keywords

References

  1. 1. Cohen J. Understanding, avoiding, and managing dermal filler complications. Dermatol Surg 2008;34(Suppl 1):S92.
  2. 2. Kaya I., Aydın H.E., Cingoz I.D. Nöroşirürji’de 3 Boyutlu Baskılar ve Baskılama. Türk Nöroşir Derg 28(3):1-5, 2018
  3. 3. Karlin L, Weinstock P, Hedequist D, Prabhu SP: The surgical treatment of spinal deformity in children with myelomeningocele: The role of personalized three-dimensional printed models. J Pediatr Orthop B 26(4):375- 382, 2017
  4. 4. Kondo K, Nemoto M, Masuda H, Okonogi S, Nomoto J, Harada N, et al: Anatomical reproducibility of a head model molded by a three-dimensional printer. Neurol Med Chir 55:592–598, 2015
  5. 5. Zein N, et al. 3-dimentional (3D) print of liver for preoperative planning in live donor liver transplantation. Liver Transpl 2013;19:1304.
  6. 6. Klein G, Lu Y, Wang M. 3D printing and neurosurgerydready for prime time? World Neurosurg 2013;80:233.
  7. 7. Giovinco N, et al. A novel combination of printed 3- dimensional anatomic templates and computer-assisted surgical simulation for virtual preoperative planning in Charcot foot reconstruction. J Foot Ankle Surg 2012;51:387.
  8. 8. Kondor S, et al. On demand additive manufacturing of a basic surgical kit. J Med Devices J Med Devices 2013;7:030916.

Details

Primary Language

English

Subjects

Surgery

Journal Section

Research Article

Authors

İlker Deniz Cingöz This is me
0000-0002-0452-7606
Türkiye

Şafak Özyörük This is me
0000-0003-4297-3508
Türkiye

Buğra Hüsemoğlu * This is me
0000-0003-1979-160X
Türkiye

Meryem Cansu Şahin This is me
0000-0002-5743-3734
Türkiye

Publication Date

June 17, 2019

Submission Date

February 12, 2020

Acceptance Date

-

Published in Issue

Year 2019 Volume: 1 Number: 1

APA
Cingöz, İ. D., Özyörük, Ş., Hüsemoğlu, B., & Şahin, M. C. (2019). Surgery Dissector: Surgical Device Production With 3D Print Technology. Journal of Medical Innovation and Technology, 1(1), 5-8. https://izlik.org/JA63EC39SB
AMA
1.Cingöz İD, Özyörük Ş, Hüsemoğlu B, Şahin MC. Surgery Dissector: Surgical Device Production With 3D Print Technology. Journal of Medical Innovation and Technology. 2019;1(1):5-8. https://izlik.org/JA63EC39SB
Chicago
Cingöz, İlker Deniz, Şafak Özyörük, Buğra Hüsemoğlu, and Meryem Cansu Şahin. 2019. “Surgery Dissector: Surgical Device Production With 3D Print Technology”. Journal of Medical Innovation and Technology 1 (1): 5-8. https://izlik.org/JA63EC39SB.
EndNote
Cingöz İD, Özyörük Ş, Hüsemoğlu B, Şahin MC (June 1, 2019) Surgery Dissector: Surgical Device Production With 3D Print Technology. Journal of Medical Innovation and Technology 1 1 5–8.
IEEE
[1]İ. D. Cingöz, Ş. Özyörük, B. Hüsemoğlu, and M. C. Şahin, “Surgery Dissector: Surgical Device Production With 3D Print Technology”, Journal of Medical Innovation and Technology, vol. 1, no. 1, pp. 5–8, June 2019, [Online]. Available: https://izlik.org/JA63EC39SB
ISNAD
Cingöz, İlker Deniz - Özyörük, Şafak - Hüsemoğlu, Buğra - Şahin, Meryem Cansu. “Surgery Dissector: Surgical Device Production With 3D Print Technology”. Journal of Medical Innovation and Technology 1/1 (June 1, 2019): 5-8. https://izlik.org/JA63EC39SB.
JAMA
1.Cingöz İD, Özyörük Ş, Hüsemoğlu B, Şahin MC. Surgery Dissector: Surgical Device Production With 3D Print Technology. Journal of Medical Innovation and Technology. 2019;1:5–8.
MLA
Cingöz, İlker Deniz, et al. “Surgery Dissector: Surgical Device Production With 3D Print Technology”. Journal of Medical Innovation and Technology, vol. 1, no. 1, June 2019, pp. 5-8, https://izlik.org/JA63EC39SB.
Vancouver
1.İlker Deniz Cingöz, Şafak Özyörük, Buğra Hüsemoğlu, Meryem Cansu Şahin. Surgery Dissector: Surgical Device Production With 3D Print Technology. Journal of Medical Innovation and Technology [Internet]. 2019 Jun. 1;1(1):5-8. Available from: https://izlik.org/JA63EC39SB