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Published in: Journal of Robotic Surgery 2/2018

01-06-2018 | Original Article

Robotic-assisted microvascular surgery: skill acquisition in a rat model

Authors: Nicholas S. Clarke, Johnathan Price, Travis Boyd, Stefano Salizzoni, Kenton J. Zehr, Alejandro Nieponice, Pietro Bajona

Published in: Journal of Robotic Surgery | Issue 2/2018

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Abstract

Microsurgery is a technically demanding field with long learning curves. Robotic-assisted microsurgery has the ability to decrease these learning curves. We, therefore, sought to assess the feasibility of robotic-assisted microvascular surgery in a rat model, and whether this could be translated into a worthwhile skills acquisition exercise for residents. Twenty-eight rats underwent microvascular anastomosis. Procedures were performed by a trained microvascular surgeon with no robotic experience (n = 14), or a trained robotic surgeon with no microvascular experience (n = 14). Anesthetized rats were subjected to complete transection and end-to-end anastomosis of the abdominal aorta using 10–0 prolene. Manually (n = 6) and robotic-assisted (n = 8) procedures were performed by both surgeons. A successful procedure required a patent anastomosis and no bleeding. After approximately 35 days, angiography and histopathological studies of the anastomoses were performed. Median times for robotic-assisted anastomoses were 37.5 (34.2–42.7) min for the microsurgeon and 38.5 (32.7–52) min for robotic surgeon. In the manual group, it took 17 (13.5–23) min for microsurgeon and 44 (34.5–60) min for robotic surgeon. Within the robotic-assisted group, there was a trend toward improvement in both surgeons, but greater in the microsurgeon. Robotic-assisted microvascular anastomosis in a rat model is a feasible skill acquisition exercise. By eliminating the need for a skilled microsurgical assistant, as well as, improved microsurgical technology, the robotic system may prove to be a crucial player in future microsurgical skill training.
Literature
1.
go back to reference Rozen JM et al (2012) Robotics, simulation, and telemedicine in plastic surgery. In: Neligan, C (ed) Plastic surgery: principles. Saunders Elsevier Health, Amsterdam, Netherlands, ISBN: 978-1-4557-1052-2 Rozen JM et al (2012) Robotics, simulation, and telemedicine in plastic surgery. In: Neligan, C (ed) Plastic surgery: principles. Saunders Elsevier Health, Amsterdam, Netherlands, ISBN: 978-1-4557-1052-2
2.
go back to reference Delmo Walter EM et al (2008) Biventricular repair in children with complete atrioventricular septal defect and a small left ventricle. Eur J Cardiothorac Surg 33(1):40–47CrossRefPubMed Delmo Walter EM et al (2008) Biventricular repair in children with complete atrioventricular septal defect and a small left ventricle. Eur J Cardiothorac Surg 33(1):40–47CrossRefPubMed
3.
4.
go back to reference Patel NV, Pedersen JC (2012) Robotic harvest of the rectus abdominis muscle: a preclinical investigation and case report. J Reconstr Microsurg 28(7):477–480CrossRefPubMed Patel NV, Pedersen JC (2012) Robotic harvest of the rectus abdominis muscle: a preclinical investigation and case report. J Reconstr Microsurg 28(7):477–480CrossRefPubMed
7.
go back to reference Alrasheed T et al (2014) Robotic microsurgery: validating an assessment tool and plotting the learning curve. Plast Reconstr Surg 134(4):794–803CrossRefPubMed Alrasheed T et al (2014) Robotic microsurgery: validating an assessment tool and plotting the learning curve. Plast Reconstr Surg 134(4):794–803CrossRefPubMed
8.
go back to reference Schiff J, Li PS, Goldstein M (2004) Robotic microsurgical vasovasostomy and vasoepididymostomy: a prospective randomized study in a rat model. J Urol 171(4):1720–1725CrossRefPubMed Schiff J, Li PS, Goldstein M (2004) Robotic microsurgical vasovasostomy and vasoepididymostomy: a prospective randomized study in a rat model. J Urol 171(4):1720–1725CrossRefPubMed
9.
go back to reference Le Roux PD et al (2001) Robot-assisted microsurgery: a feasibility study in the rat. Neurosurgery 48(3):584–589CrossRefPubMed Le Roux PD et al (2001) Robot-assisted microsurgery: a feasibility study in the rat. Neurosurgery 48(3):584–589CrossRefPubMed
10.
go back to reference Temple CL, Ross DC (2011) A new, validated instrument to evaluate competency in microsurgery: the University of Western Ontario Microsurgical Skills Acquisition/Assessment instrument [outcomes article]. Plast Reconstr Surg 127(1):215–222CrossRefPubMed Temple CL, Ross DC (2011) A new, validated instrument to evaluate competency in microsurgery: the University of Western Ontario Microsurgical Skills Acquisition/Assessment instrument [outcomes article]. Plast Reconstr Surg 127(1):215–222CrossRefPubMed
11.
go back to reference Kasten SJ, Chung KC (2014) Discussion: robotic microsurgery: validating an assessment tool and plotting the learning curve. Plast Reconstr Surg 134(4):804–807CrossRefPubMed Kasten SJ, Chung KC (2014) Discussion: robotic microsurgery: validating an assessment tool and plotting the learning curve. Plast Reconstr Surg 134(4):804–807CrossRefPubMed
12.
13.
14.
15.
go back to reference Karamanoukian RL et al (2006) Transfer of training in robotic-assisted microvascular surgery. Ann Plast Surg 57(6):662–665CrossRefPubMed Karamanoukian RL et al (2006) Transfer of training in robotic-assisted microvascular surgery. Ann Plast Surg 57(6):662–665CrossRefPubMed
16.
go back to reference Feins RH et al (2017) Simulation-based training in cardiac surgery. Ann Thorac Surg 103(1):312–321CrossRefPubMed Feins RH et al (2017) Simulation-based training in cardiac surgery. Ann Thorac Surg 103(1):312–321CrossRefPubMed
17.
go back to reference Mokadam NA et al (2017) Experience with the cardiac surgery simulation curriculum: results of the resident and faculty survey. Ann Thorac Surg 103(1):322–328CrossRefPubMed Mokadam NA et al (2017) Experience with the cardiac surgery simulation curriculum: results of the resident and faculty survey. Ann Thorac Surg 103(1):322–328CrossRefPubMed
18.
go back to reference Stephenson ER Jr et al (1998) Robotically assisted microsurgery for endoscopic coronary artery bypass grafting. Ann Thorac Surg 66(3):1064–1067CrossRefPubMed Stephenson ER Jr et al (1998) Robotically assisted microsurgery for endoscopic coronary artery bypass grafting. Ann Thorac Surg 66(3):1064–1067CrossRefPubMed
19.
go back to reference Brecht R et al (2013) Transcatheter valve replacement: new concepts for microsurgery inside the heart. Innovations (Phila) 8(1):29–36CrossRef Brecht R et al (2013) Transcatheter valve replacement: new concepts for microsurgery inside the heart. Innovations (Phila) 8(1):29–36CrossRef
20.
go back to reference Onan B, Bakir I (2016) Robotic mitral valve replacement in pectus excavatum. J Card Surg 31(5):306–308CrossRefPubMed Onan B, Bakir I (2016) Robotic mitral valve replacement in pectus excavatum. J Card Surg 31(5):306–308CrossRefPubMed
21.
go back to reference Gudeloglu A, Brahmbhatt JV, Parekattil SJ (2014) Robotic-assisted microsurgery for an elective microsurgical practice. Semin Plastic Surg 28(1):11–19CrossRef Gudeloglu A, Brahmbhatt JV, Parekattil SJ (2014) Robotic-assisted microsurgery for an elective microsurgical practice. Semin Plastic Surg 28(1):11–19CrossRef
22.
go back to reference Willems JIP et al (2016) A comparison of robotically assisted microsurgery versus manual microsurgery in challenging situations. Plast Reconstr Surg 137(4):1317–1324CrossRefPubMed Willems JIP et al (2016) A comparison of robotically assisted microsurgery versus manual microsurgery in challenging situations. Plast Reconstr Surg 137(4):1317–1324CrossRefPubMed
Metadata
Title
Robotic-assisted microvascular surgery: skill acquisition in a rat model
Authors
Nicholas S. Clarke
Johnathan Price
Travis Boyd
Stefano Salizzoni
Kenton J. Zehr
Alejandro Nieponice
Pietro Bajona
Publication date
01-06-2018
Publisher
Springer London
Published in
Journal of Robotic Surgery / Issue 2/2018
Print ISSN: 1863-2483
Electronic ISSN: 1863-2491
DOI
https://doi.org/10.1007/s11701-017-0738-5

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