Multi-electrode, intracochlear implants are effective treatment of deafness, but the results vary between individuals. Pre- and post- operative spiral CT can provide 3D maps of cochlear morphology and electrode array position in the cochlea, subject to resolution limitations. Knowledge of 3D electrode locations relative to cochlear anatomy provides the foundation for modeling and investigation of electrical stimulation parameters to optimize speech recognition. There is a critical and immediate need to geometrically model the individual cochlea in vivo with precise anatomic localization of implanted electrodes. This geometric model is a prerequisite for development of electroanatomic models of the implanted cochlea, and may help explain part of intersubject speech recognition variability. Geometric relations between an electrode array and intracochlear features provide the basis for rational design of interventions, devices, and their programming. The long term objective is to define implanted cochlear morphology and improve speech recognition using this 3D geometric information.
The specific aims are to (1) localize implant electrodes in 3D with post- operative X-ray sterophotogrammetry, and incorporate this information in corresponding spiral CT images; (2) deblur and unwrap the cochlea in volumetric spiral CT images pre- and post-operatively; (3) develop and validate geometric models of individual implanted cochleas, and demonstrate their clinical feasibility and utility in patient studies. Validation will be done with immage resolution phantoms, specimens of the human cochleas implanted with various types of cochlear implants, and cadaver heads in which these phantoms and specimens are embedded. The gold standard for validation will be established by independent measurements obtained using Reflex microscopy and micro CT of these phantoms and specimens. On completion, implanted cochlear morphology will be characterized in vivo by synthesizing individualized 3D geometric models based on X-ray stereophotogrammetry and spiral CT. X-ray imaging and image analysis methods for pre- and post-implantation diagnostic and research applications will be validated, and applied in patient studies. A Web- based resource of spiral CT for cochlear implantation will disseminate the image and modeling techniques and software.

Agency
National Institute of Health (NIH)
Institute
National Institute on Deafness and Other Communication Disorders (NIDCD)
Type
Research Project (R01)
Project #
1R01DC003590-01A2
Application #
2852281
Study Section
Special Emphasis Panel (ZRG1-IFCN-6 (01))
Project Start
1999-04-01
Project End
2004-03-31
Budget Start
1999-04-01
Budget End
2000-03-31
Support Year
1
Fiscal Year
1999
Total Cost
Indirect Cost
Name
University of Iowa
Department
Radiation-Diagnostic/Oncology
Type
Schools of Medicine
DUNS #
041294109
City
Iowa City
State
IA
Country
United States
Zip Code
52242
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Yoo, Sun K; Wang, Ge; Collison, Fred et al. (2004) Three-dimensional localization of cochlear implant electrodes using epipolar stereophotogrammetry. IEEE Trans Biomed Eng 51:838-46
Lee, Seung Wook; Wang, Ge (2004) Grangeat-type helical half-scan computerized tomography algorithm for reconstruction of a short object. Med Phys 31:4-16
Ye, Yangbo; Zhu, Jiehua; Wang, Ge (2003) A pointwise limit theorem for filtered backprojection in computed tomography. Med Phys 30:816-22
He, Jianchun; Christensen, Gary E (2003) Large deformation inverse consistent elastic image registration. Inf Process Med Imaging 18:438-49
Jiang, Ming; Wang, Ge; Skinner, Margaret W et al. (2003) Blind deblurring of spiral CT images. IEEE Trans Med Imaging 22:837-45
Jiang, Ming; Wang, Ge (2003) Convergence studies on iterative algorithms for image reconstruction. IEEE Trans Med Imaging 22:569-79
Hellier, P; Barillot, C; Corouge, I et al. (2003) Retrospective evaluation of intersubject brain registration. IEEE Trans Med Imaging 22:1120-30
Liu, Vinson; Lariviere, Nicholas R; Wang, Ge (2003) X-ray micro-CT with a displaced detector array: application to helical cone-beam reconstruction. Med Phys 30:2758-61
Meinel Jr, John F; Wang, Ge; Jiang, Ming et al. (2003) Spatial variation of resolution and noise in multi-detector row spiral CT. Acad Radiol 10:607-13

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