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Published in: European Archives of Oto-Rhino-Laryngology 2/2017

01-02-2017 | Otology

Improvement of the insertion axis for cochlear implantation with a robot-based system

Authors: Renato Torres, Guillaume Kazmitcheff, Daniele De Seta, Evelyne Ferrary, Olivier Sterkers, Yann Nguyen

Published in: European Archives of Oto-Rhino-Laryngology | Issue 2/2017

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Abstract

It has previously reported that alignment of the insertion axis along the basal turn of the cochlea was depending on surgeon’ experience. In this experimental study, we assessed technological assistances, such as navigation or a robot-based system, to improve the insertion axis during cochlear implantation. A preoperative cone beam CT and a mastoidectomy with a posterior tympanotomy were performed on four temporal bones. The optimal insertion axis was defined as the closest axis to the scala tympani centerline avoiding the facial nerve. A neuronavigation system, a robot assistance prototype, and software allowing a semi-automated alignment of the robot were used to align an insertion tool with an optimal insertion axis. Four procedures were performed and repeated three times in each temporal bone: manual, manual navigation-assisted, robot-based navigation-assisted, and robot-based semi-automated. The angle between the optimal and the insertion tool axis was measured in the four procedures. The error was 8.3° ± 2.82° for the manual procedure (n = 24), 8.6° ± 2.83° for the manual navigation-assisted procedure (n = 24), 5.4° ± 3.91° for the robot-based navigation-assisted procedure (n = 24), and 3.4° ± 1.56° for the robot-based semi-automated procedure (n = 12). A higher accuracy was observed with the semi-automated robot-based technique than manual and manual navigation-assisted (p < 0.01). Combination of a navigation system and a manual insertion does not improve the alignment accuracy due to the lack of friendly user interface. On the contrary, a semi-automated robot-based system reduces both the error and the variability of the alignment with a defined optimal axis.
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Literature
1.
go back to reference Gstoettner W, Kiefer J, Baumgartner W-D, Pok S, Peters S, Adunka O (2004) Hearing preservation in cochlear implantation for electric acoustic stimulation. Acta Otolaryngol (Stockh) 124:348–352CrossRef Gstoettner W, Kiefer J, Baumgartner W-D, Pok S, Peters S, Adunka O (2004) Hearing preservation in cochlear implantation for electric acoustic stimulation. Acta Otolaryngol (Stockh) 124:348–352CrossRef
2.
go back to reference Li PMMC, Wang H, Northrop C, Merchant SN, Nadol JB (2007) Anatomy of the round window and hook region of the cochlea with implications for cochlear implantation and other endocochlear surgical procedures. Otol Neurotol 28:641–648CrossRefPubMedPubMedCentral Li PMMC, Wang H, Northrop C, Merchant SN, Nadol JB (2007) Anatomy of the round window and hook region of the cochlea with implications for cochlear implantation and other endocochlear surgical procedures. Otol Neurotol 28:641–648CrossRefPubMedPubMedCentral
3.
go back to reference Erixon E, Högstorp H, Wadin K, Rask-Andersen H (2009) Variational anatomy of the human cochlea: implications for cochlear implantation. Otol Neurotol 30:14–22CrossRefPubMed Erixon E, Högstorp H, Wadin K, Rask-Andersen H (2009) Variational anatomy of the human cochlea: implications for cochlear implantation. Otol Neurotol 30:14–22CrossRefPubMed
4.
go back to reference Martinez-Monedero R, Niparko JK, Aygun N (2011) Cochlear coiling pattern and orientation differences in cochlear implant candidates. Otol Neurotol 32:1086–1093CrossRefPubMed Martinez-Monedero R, Niparko JK, Aygun N (2011) Cochlear coiling pattern and orientation differences in cochlear implant candidates. Otol Neurotol 32:1086–1093CrossRefPubMed
6.
go back to reference Torres R, Kazmitcheff G, Bernardeschi D, De Seta D, Bensimon JL, Ferrary E, Sterkers O, Nguyen Y (2015) Variability of the mental representation of the cochlear anatomy during cochlear implantation. Eur Arch Otorhinolaryngol. doi:10.1007/s00405-015-3763-x PubMed Torres R, Kazmitcheff G, Bernardeschi D, De Seta D, Bensimon JL, Ferrary E, Sterkers O, Nguyen Y (2015) Variability of the mental representation of the cochlear anatomy during cochlear implantation. Eur Arch Otorhinolaryngol. doi:10.​1007/​s00405-015-3763-x PubMed
7.
go back to reference Schipper J, Aschendorff A, Arapakis I, Klenzner T, Teszler CB, Ridder GJ, Laszig R (2004) Navigation as a quality management tool in cochlear implant surgery. J Laryngol Otol 118:764–770PubMed Schipper J, Aschendorff A, Arapakis I, Klenzner T, Teszler CB, Ridder GJ, Laszig R (2004) Navigation as a quality management tool in cochlear implant surgery. J Laryngol Otol 118:764–770PubMed
8.
go back to reference Nguyen Y, Miroir M, Kazmitcheff G, Ferrary E, Sterkers O, Grayeli AB (2011) From conception to application of a tele-operated assistance robot for middle ear surgery. Surg Innov 19:241–251CrossRefPubMed Nguyen Y, Miroir M, Kazmitcheff G, Ferrary E, Sterkers O, Grayeli AB (2011) From conception to application of a tele-operated assistance robot for middle ear surgery. Surg Innov 19:241–251CrossRefPubMed
9.
go back to reference Grayeli AB, Esquia-Medina G, Nguyen Y, Mazalaigue S, Vellin JF, Lombard B, Kalamarides M, Ferrary E, Sterkers O (2009) Use of anatomic or invasive markers in association with skin surface registration in image-guided surgery of the temporal bone. Acta Otolaryngol (Stockh) 129:405–410CrossRef Grayeli AB, Esquia-Medina G, Nguyen Y, Mazalaigue S, Vellin JF, Lombard B, Kalamarides M, Ferrary E, Sterkers O (2009) Use of anatomic or invasive markers in association with skin surface registration in image-guided surgery of the temporal bone. Acta Otolaryngol (Stockh) 129:405–410CrossRef
10.
go back to reference Nguyen Y, Miroir M, Vellin JF, Mazalaigue S, Bensimon JL, Bernardeschi D, Ferrary E, Sterkers O, Grayeli AB (2011) Minimally invasive computer-assisted approach for cochlear implantation: a human temporal bone study. Surg Innov 18:259–267CrossRefPubMed Nguyen Y, Miroir M, Vellin JF, Mazalaigue S, Bensimon JL, Bernardeschi D, Ferrary E, Sterkers O, Grayeli AB (2011) Minimally invasive computer-assisted approach for cochlear implantation: a human temporal bone study. Surg Innov 18:259–267CrossRefPubMed
11.
go back to reference Bernardeschi D, Nguyen Y, Villepelet A, Ferrary E, Mazalaigue S, Kalamarides M, Sterkers O (2013) Use of bone anchoring device in electromagnetic computer-assisted navigation in lateral skull base surgery. Acta Otolaryngol (Stockh) 133:1047–1052CrossRef Bernardeschi D, Nguyen Y, Villepelet A, Ferrary E, Mazalaigue S, Kalamarides M, Sterkers O (2013) Use of bone anchoring device in electromagnetic computer-assisted navigation in lateral skull base surgery. Acta Otolaryngol (Stockh) 133:1047–1052CrossRef
12.
go back to reference Verbist BM, Skinner MW, Cohen LT, Leake PA, James C, Boëx C, Holden TA, Finley CC, Roland PS, Roland JT Jr, Haller M, Patrick JF, Jolly CN, Faltys MA, Briaire JJ, Frijns JH (2010) Consensus panel on a cochlear coordinate system applicable in histologic, physiologic, and radiologic studies of the human cochlea. Otol Neurotol 31:722–730CrossRefPubMedPubMedCentral Verbist BM, Skinner MW, Cohen LT, Leake PA, James C, Boëx C, Holden TA, Finley CC, Roland PS, Roland JT Jr, Haller M, Patrick JF, Jolly CN, Faltys MA, Briaire JJ, Frijns JH (2010) Consensus panel on a cochlear coordinate system applicable in histologic, physiologic, and radiologic studies of the human cochlea. Otol Neurotol 31:722–730CrossRefPubMedPubMedCentral
13.
go back to reference Wimmer W, Venail F, Williamson T, Akkari M, Gerber N, Weber S, Caversaccio M, Uziel A, Bell B (2014) Semiautomatic cochleostomy target and insertion trajectory planning for minimally invasive cochlear implantation. BioMed Res Int 2014:596498CrossRefPubMedPubMedCentral Wimmer W, Venail F, Williamson T, Akkari M, Gerber N, Weber S, Caversaccio M, Uziel A, Bell B (2014) Semiautomatic cochleostomy target and insertion trajectory planning for minimally invasive cochlear implantation. BioMed Res Int 2014:596498CrossRefPubMedPubMedCentral
14.
go back to reference Gerber N, Gavaghan KA, Bell BJ, Williamson TM, Weisstanner C, Caversaccio MD, Weber S (2013) High-accuracy patient-to-image registration for the facilitation of image-guided robotic microsurgery on the head. IEEE Trans Biomed Eng 60:960–968CrossRefPubMed Gerber N, Gavaghan KA, Bell BJ, Williamson TM, Weisstanner C, Caversaccio MD, Weber S (2013) High-accuracy patient-to-image registration for the facilitation of image-guided robotic microsurgery on the head. IEEE Trans Biomed Eng 60:960–968CrossRefPubMed
15.
go back to reference Aschendorff A, Maier W, Jaekel K, Wesarg T, Arndt S, Laszig R, Voss P, Metzger M, Schulze D (2009) Radiologically assisted navigation in cochlear implantation for X-linked deafness malformation. Cochlear Implants Int 10(Suppl 1):14–18CrossRefPubMed Aschendorff A, Maier W, Jaekel K, Wesarg T, Arndt S, Laszig R, Voss P, Metzger M, Schulze D (2009) Radiologically assisted navigation in cochlear implantation for X-linked deafness malformation. Cochlear Implants Int 10(Suppl 1):14–18CrossRefPubMed
16.
go back to reference Cho B, Matsumoto N, Hashizume M (2013) Navigation for cochlear implantation. In: Conference of the Proceeding IEEE Engineering in Medicine and Biology Society, pp 5727–5730 Cho B, Matsumoto N, Hashizume M (2013) Navigation for cochlear implantation. In: Conference of the Proceeding IEEE Engineering in Medicine and Biology Society, pp 5727–5730
17.
go back to reference Hong J, Matsumoto N, Ouchida R, Komune S, Hashizume M (2009) Medical navigation system for otologic surgery based on hybrid registration and virtual intraoperative computed tomography. IEEE Trans Biomed Eng 56:426–432CrossRefPubMed Hong J, Matsumoto N, Ouchida R, Komune S, Hashizume M (2009) Medical navigation system for otologic surgery based on hybrid registration and virtual intraoperative computed tomography. IEEE Trans Biomed Eng 56:426–432CrossRefPubMed
18.
go back to reference Ansó J, Stahl C, Gerber N, Williamson T, Gavaghan K, Rösler KM, Caversaccio MD, Weber S, Bell B (2014) Feasibility of using EMG for early detection of the facial nerve during robotic direct cochlear access. Otol Neurotol 35:545–554CrossRefPubMed Ansó J, Stahl C, Gerber N, Williamson T, Gavaghan K, Rösler KM, Caversaccio MD, Weber S, Bell B (2014) Feasibility of using EMG for early detection of the facial nerve during robotic direct cochlear access. Otol Neurotol 35:545–554CrossRefPubMed
19.
go back to reference Bell B, Williamson T, Gerber N, Gavaghan K, Wimmer W, Kompis M, Weber S, Caversaccio M (2014) An image-guided robot system for direct cochlear access. Cochlear Implants Int 15(Suppl 1):S11–S13CrossRefPubMed Bell B, Williamson T, Gerber N, Gavaghan K, Wimmer W, Kompis M, Weber S, Caversaccio M (2014) An image-guided robot system for direct cochlear access. Cochlear Implants Int 15(Suppl 1):S11–S13CrossRefPubMed
20.
go back to reference Gerber N, Bell B, Gavaghan K, Weisstanner C, Caversaccio M, Weber S (2014) Surgical planning tool for robotically assisted hearing aid implantation. Int J Comput Assist Radiol Surg 9:11–20CrossRefPubMed Gerber N, Bell B, Gavaghan K, Weisstanner C, Caversaccio M, Weber S (2014) Surgical planning tool for robotically assisted hearing aid implantation. Int J Comput Assist Radiol Surg 9:11–20CrossRefPubMed
21.
go back to reference Venail F, Bell B, Akkari M, Wimmer W, Williamson T, Gerber N, Gavaghan K, Canovas F, Weber S, Caversaccio M, Uziel A (2015) Manual electrode array insertion through a robot-assisted minimal invasive cochleostomy: feasibility and comparison of two different electrode array subtypes. Otol Neurotol 36:1015–1022CrossRefPubMed Venail F, Bell B, Akkari M, Wimmer W, Williamson T, Gerber N, Gavaghan K, Canovas F, Weber S, Caversaccio M, Uziel A (2015) Manual electrode array insertion through a robot-assisted minimal invasive cochleostomy: feasibility and comparison of two different electrode array subtypes. Otol Neurotol 36:1015–1022CrossRefPubMed
22.
go back to reference Soteriou E, Grauvogel J, Laszig R, Grauvogel TD (2016) Prospects and limitations of different registration modalities in electromagnetic ENT navigation. Eur Arch Otolaryngol. doi:10.1007/s00405-016-4063-9 Soteriou E, Grauvogel J, Laszig R, Grauvogel TD (2016) Prospects and limitations of different registration modalities in electromagnetic ENT navigation. Eur Arch Otolaryngol. doi:10.​1007/​s00405-016-4063-9
Metadata
Title
Improvement of the insertion axis for cochlear implantation with a robot-based system
Authors
Renato Torres
Guillaume Kazmitcheff
Daniele De Seta
Evelyne Ferrary
Olivier Sterkers
Yann Nguyen
Publication date
01-02-2017
Publisher
Springer Berlin Heidelberg
Published in
European Archives of Oto-Rhino-Laryngology / Issue 2/2017
Print ISSN: 0937-4477
Electronic ISSN: 1434-4726
DOI
https://doi.org/10.1007/s00405-016-4329-2

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