Literature DB >> 16175863

Microsurgical robotic system for the deep surgical field: development of a prototype and feasibility studies in animal and cadaveric models.

Akio Morita1, Shigeo Sora, Mamoru Mitsuishi, Shinichi Warisawa, Katopo Suruman, Daisuke Asai, Junpei Arata, Shoichi Baba, Hidechika Takahashi, Ryo Mochizuki, Takaaki Kirino.   

Abstract

OBJECT: To enhance the surgeon's dexterity and maneuverability in the deep surgical field, the authors developed a master-slave microsurgical robotic system. This concept and the results of preliminary experiments are reported in this paper.
METHODS: The system has a master control unit, which conveys motion commands in six degrees of freedom (X, Y, and Z directions; rotation; tip flexion; and grasping) to two arms. The slave manipulator has a hanging base with an additional six degrees of freedom; it holds a motorized operating unit with two manipulators (5 mm in diameter, 18 cm in length). The accuracy of the prototype in both shallow and deep surgical fields was compared with routine freehand microsurgery. Closure of a partial arteriotomy and complete end-to-end anastomosis of the carotid artery (CA) in the deep operative field were performed in 20 Wistar rats. Three routine surgical procedures were also performed in cadavers. The accuracy of pointing with the nondominant hand in the deep surgical field was significantly improved through the use of robotics. The authors successfully closed the partial arteriotomy and completely anastomosed the rat CAs in the deep surgical field. The time needed for stitching was significantly shortened over the course of the first 10 rat experiments. The robotic instruments also moved satisfactorily in cadavers, but the manipulators still need to be smaller to fit into the narrow intracranial space.
CONCLUSIONS: Computer-controlled surgical manipulation will be an important tool for neurosurgery, and preliminary experiments involving this robotic system demonstrate its promising maneuverability.

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Year:  2005        PMID: 16175863     DOI: 10.3171/jns.2005.103.2.0320

Source DB:  PubMed          Journal:  J Neurosurg        ISSN: 0022-3085            Impact factor:   5.115


  9 in total

1.  Robotic ocular surgery.

Authors:  A Tsirbas; C Mango; E Dutson
Journal:  Br J Ophthalmol       Date:  2006-10-04       Impact factor: 4.638

2.  Surgical bedside master console for neurosurgical robotic system.

Authors:  Jumpei Arata; Hajime Kenmotsu; Motoki Takagi; Tatsuya Hori; Takahiro Miyagi; Hideo Fujimoto; Yasukazu Kajita; Yuichiro Hayashi; Kiyoyuki Chinzei; Makoto Hashizume
Journal:  Int J Comput Assist Radiol Surg       Date:  2012-05-15       Impact factor: 2.924

3.  Neurosurgical robotic system for brain tumor removal.

Authors:  Jumpei Arata; Yasunori Tada; Hiroaki Kozuka; Tomohiro Wada; Yoshitaka Saito; Norio Ikedo; Yuichiro Hayashi; Masazumi Fujii; Yasukazu Kajita; Masaaki Mizuno; Toshihiko Wakabayashi; Jun Yoshida; Hideo Fujimoto
Journal:  Int J Comput Assist Radiol Surg       Date:  2010-07-13       Impact factor: 2.924

4.  Force-detecting gripper and force feedback system for neurosurgery applications.

Authors:  Takeshi Yoneyama; Tetsuyou Watanabe; Hiroyuki Kagawa; Junichiro Hamada; Yutaka Hayashi; Mitsutoshi Nakada
Journal:  Int J Comput Assist Radiol Surg       Date:  2013-01-13       Impact factor: 2.924

5.  Finger-attachment device for the feedback of gripping and pulling force in a manipulating system for brain tumor resection.

Authors:  Hiroyuki Chinbe; Takeshi Yoneyama; Tetsuyou Watanabe; Katsuyoshi Miyashita; Mitsutoshi Nakada
Journal:  Int J Comput Assist Radiol Surg       Date:  2017-07-10       Impact factor: 2.924

6.  Cooperative robot assistant for vitreoretinal microsurgery: development of the RVRMS and feasibility studies in an animal model.

Authors:  Yi-Qi Chen; Ji-Wei Tao; Ling-Ya Su; Liang Li; Shi-Xin Zhao; Yang Yang; Li-Jun Shen
Journal:  Graefes Arch Clin Exp Ophthalmol       Date:  2017-04-08       Impact factor: 3.117

7.  Toward Improving Safety in Neurosurgery with an Active Handheld Instrument.

Authors:  Sara Moccia; Simone Foti; Arpita Routray; Francesca Prudente; Alessandro Perin; Raymond F Sekula; Leonardo S Mattos; Jeffrey R Balzer; Wendy Fellows-Mayle; Elena De Momi; Cameron N Riviere
Journal:  Ann Biomed Eng       Date:  2018-07-16       Impact factor: 3.934

8.  Virtual reality simulation of robotic transsphenoidal brain tumor resection: Evaluating dynamic motion scaling in a master-slave system.

Authors:  Saúl A Heredia-Pérez; Kanako Harada; Miguel A Padilla-Castañeda; Murilo Marques-Marinho; Jorge A Márquez-Flores; Mamoru Mitsuishi
Journal:  Int J Med Robot       Date:  2018-10-18       Impact factor: 2.547

Review 9.  Medical Engineering and Microneurosurgery: Application and Future.

Authors:  Akio Morita; Shigeo Sora; Hirofumi Nakatomi; Kanako Harada; Naohiko Sugita; Nobuhito Saito; Mamoru Mitsuishi
Journal:  Neurol Med Chir (Tokyo)       Date:  2016-07-26       Impact factor: 1.742

  9 in total

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