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1.
IEEE Trans Biomed Eng ; 70(9): 2624-2635, 2023 09.
Artigo em Inglês | MEDLINE | ID: mdl-37027277

RESUMO

OBJECTIVE: In this paper, we focus on the carrying out and validation of minimally invasive three-dimensional (3D) ultrasound (US) imaging of the auditory system, which is based on a new miniaturized endoscopic 2D US transducer. METHODS: This unique probe consists of a 18 MHz 24 elements curved array transducer with a distal diameter of 4 mm so it can be inserted into the external auditory canal. Typical acquisition is achieved by rotating such a transducer around its own axis using a robotic platform. Reconstruction of a US volume from the set of acquired B-scans during the rotation is then performed using scan-conversion. The accuracy of the reconstruction procedure is evaluated using a dedicated phantom that includes a set of wires as reference geometry. RESULTS: Twelve acquisitions obtained from different probe poses are compared to a micro-computed tomographic model of the phantom, leading to a maximum error of 0.20 mm. Additionally, acquisitions with a cadaveric head highlight the clinical applicability of this set up. Structures of the auditory system such as the ossicles and the round window can be identified from the obtained 3D volumes. CONCLUSION: These results confirm that our technique enables the accurate imaging of the middle and inner ears without having to deteriorate the surrounding bone. SIGNIFICANCE: Since US is a real-time, wide available and non-ionizing imaging modality, our acquisition setup could facilitate the minimally invasive diagnosis and surgical navigation for otology in a fast, cost-effective and safe way.


Assuntos
Robótica , Ultrassom , Humanos , Ultrassonografia , Tomografia Computadorizada por Raios X , Imagens de Fantasmas , Transdutores , Imageamento Tridimensional/métodos
2.
Otol Neurotol ; 42(6): e779-e787, 2021 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-33871251

RESUMO

INTRODUCTION: There remains no standard imaging method that allows computer-assisted surgery of the cochlea in real time. However, recent evidence suggests that high-frequency ultrasound (HFUS) could permit real-time visualization of cochlear architecture. Registration with an imaging modality that suffers neither attenuation nor conical deformation could reveal useful anatomical landmarks to surgeons. Our study aimed to address the feasibility of an automated three-dimensional (3D) HFUS/microCT registration, and to evaluate the identification of cochlear structures using 2D/3D HFUS and microCT. METHODS: MicroCT, and 2D/3D 40 MHz US in B-mode were performed on ex vivo guinea pig cochlea. An automatic rigid registration algorithm was applied to segmented 3D images. This automatic registration was then compared to a reference method using manual annotated landmarks placed by two senior otologists. Inter- and intrarater reliabilities were evaluated using intraclass correlation coefficient (ICC) and the mean registration error was calculated. RESULTS: 3D HFUS/microCT automatic registration was successful. Excellent levels of concordance were achieved with regards intra-rater reliability for both raters with micro-CT and US images (ICC ranging from 0.98 to 1, p < 0.001) and with regards inter-rater reliability (ICC ranging from 0.99 to 1, p < 0.001). The mean HFUS/microCT automated RE for both observers was 0.17 ±â€Š0.03 mm [0.10-0.25]. Identification of the basilar membrane, modiolus, scala tympani, and scala vestibuli was possible with 2D/3D HFUS and micro-CT. CONCLUSIONS: HFUS/microCT image registration is feasible. 2D/3D HFUS and microCT allow the visualization of cochlear structures. Many potential clinical applications are conceivable.


Assuntos
Cóclea , Cirurgia Assistida por Computador , Algoritmos , Animais , Cóclea/diagnóstico por imagem , Cóclea/cirurgia , Estudos de Viabilidade , Cobaias , Imageamento Tridimensional , Reprodutibilidade dos Testes , Microtomografia por Raio-X
3.
Ann Biomed Eng ; 49(5): 1308-1317, 2021 May.
Artigo em Inglês | MEDLINE | ID: mdl-33128180

RESUMO

Cochlear implantation consists in electrically stimulating the auditory nerve by inserting an electrode array inside the cochlea, a bony structure of the inner ear. In the absence of any visual feedback, the insertion results in many cases of damages of the internal structures. This paper presents a feasibility study on intraoperative imaging and identification of cochlear structures with high-frequency ultrasound (HFUS). 6 ex-vivo guinea pig cochleae were subjected to both US and microcomputed tomography (µCT) we respectively referred as intraoperative and preoperative modalities. For each sample, registration based on simulating US from the scanner was performed to allow a precise matching between the visible structures. According to two otologists, the procedure led to a target registration error of 0.32 mm ± 0.05. Thanks to referring to a better preoperative anatomical representation, we were able to intraoperatively identify the modiolus, both scalae vestibuli and tympani and deduce the location of the basilar membrane, all of which is of great interest for cochlear implantation. Our main objective is to extend this procedure to the human case and thus provide a new tool for inner ear surgery.


Assuntos
Cóclea/diagnóstico por imagem , Animais , Cóclea/cirurgia , Implante Coclear , Estudos de Viabilidade , Feminino , Cobaias , Processamento de Imagem Assistida por Computador , Ultrassonografia de Intervenção , Microtomografia por Raio-X
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